LOG file for integration channel /P0_gg_httx/GB1, 0
==== LHAPDF6 USING DEFAULT-TYPE LHAGLUE INTERFACE ====
LHAPDF 6.1.6 loading /afs/cern.ch/work/s/sesanche/private/TTH_k3/MG5_aMC_v2_5_5/HEPTools/lhapdf6/share/LHAPDF/NNPDF30_nnlo_as_0118/NNPDF30_nnlo_as_0118_0000.dat
NNPDF30_nnlo_as_0118 PDF set, member #0, version 2; LHAPDF ID = 261000
 ===============================================================
 INFO: MadFKS read these parameters from FKS_params.dat                                                  
 ===============================================================
  > IRPoleCheckThreshold      =    1.0000000000000001E-005
  > PrecisionVirtualAtRunTime =    1.0000000000000000E-003
  > NHelForMCoverHels         =            4
  > VirtualFraction           =    1.0000000000000000     
  > MinVirtualFraction        =    5.0000000000000001E-003
 ===============================================================
 A PDF is used, so alpha_s(MZ) is going to be modified
 Old value of alpha_s from param_card:   0.11799999999999999     
 New value of alpha_s from PDF lhapdf :  0.11800222249017472     
 using LHAPDF
WARNING: the value of maxjetflavorspecified in the run_card (  4) is inconsistent with the number of light flavours inthe model. Hence it will be set to:  5
 *****************************************************
 *               MadGraph/MadEvent                   *
 *        --------------------------------           *
 *          http://madgraph.hep.uiuc.edu             *
 *          http://madgraph.phys.ucl.ac.be           *
 *          http://madgraph.roma2.infn.it            *
 *        --------------------------------           *
 *                                                   *
 *          PARAMETER AND COUPLING VALUES            *
 *                                                   *
 *****************************************************

  External Params
  ---------------------------------
  
 MU_R =    91.188000000000002     
 mdl_Gf =    1.1663789999999999E-005
 mdl_MW =    80.385000000000005     
 aS =   0.11799999999999999     
 mdl_ymt =    172.50000000000000     
 mdl_MZ =    91.187600000000003     
 mdl_MT =    172.50000000000000     
 mdl_MH =    125.00000000000000     
 mdl_WZ =    2.5047899999999998     
 mdl_WW =    2.0929099999999998     
 mdl_WT =    0.0000000000000000     
 mdl_WH =    3.5138499999999998E-003
  Internal Params
  ---------------------------------
  
 mdl_yb =    0.0000000000000000     
 mdl_CKM31 =    0.0000000000000000     
 mdl_CKM32 =    0.0000000000000000     
 mdl_MB__exp__4 =    0.0000000000000000     
 mdl_MB__exp__2 =    0.0000000000000000     
 mdl_CKM11 =    1.0000000000000000     
 mdl_SCKM33 =    1.0000000000000000     
 mdl_SCKM11 =    1.0000000000000000     
 mdl_vep =    0.0000000000000000     
 mdl_CKM33 =    1.0000000000000000     
 mdl_CMSParam =    0.0000000000000000     
 mdl_MC__exp__2 =    0.0000000000000000     
 mdl_SCKM33__exp__2 =    1.0000000000000000     
 mdl_Ql__exp__2 =    1.0000000000000000     
 mdl_conjg__CKM22 =    1.0000000000000000     
 mdl_SCKM22 =    1.0000000000000000     
 mdl_CKM22 =    1.0000000000000000     
 mdl_SCKM22__exp__2 =    1.0000000000000000     
 mdl_MD__exp__2 =    0.0000000000000000     
 mdl_MU__exp__2 =    0.0000000000000000     
 mdl_MM__exp__2 =    0.0000000000000000     
 mdl_MTA__exp__2 =    0.0000000000000000     
 mdl_Ql__exp__4 =    1.0000000000000000     
 mdl_conjg__CKM11 =    1.0000000000000000     
 mdl_lhv =    1.0000000000000000     
 mdl_conjg__CKM31 =    0.0000000000000000     
 mdl_conjg__CKM32 =    0.0000000000000000     
 mdl_conjg__CKM33 =    1.0000000000000000     
 mdl_Ncol =    3.0000000000000000     
 mdl_CA =    3.0000000000000000     
 mdl_TF =   0.50000000000000000     
 mdl_CF =    1.3333333333333333     
 mdl_MW__exp__2 =    6461.7482250000012     
 mdl_MZ__exp__2 =    8315.1783937600012     
 mdl_sw2 =   0.22289722252391819     
 mdl_complexi =  (  0.0000000000000000     ,  1.0000000000000000     )
 mdl_cw =   0.88153433142225479     
 mdl_sqrt__sw2 =   0.47211992387942936     
 mdl_sw =   0.47211992387942936     
 mdl_MH__exp__2 =    15625.000000000000     
 mdl_sqrt__2 =    1.4142135623730951     
 mdl_I3d =  -0.50000000000000000     
 mdl_I3u =   0.50000000000000000     
 mdl_I3l =  -0.50000000000000000     
 mdl_I3v =   0.50000000000000000     
 mdl_Qd =  -0.33333333333333331     
 mdl_Qu =   0.66666666666666663     
 mdl_Ql =   -1.0000000000000000     
 mdl_Ncol__exp__2 =    9.0000000000000000     
 mdl_sw__exp__2 =   0.22289722252391816     
 mdl_MT__exp__2 =    29756.250000000000     
 mdl_cw__exp__2 =   0.77710277747608170     
 mdl_MT__exp__4 =    885434414.06250000     
 mdl_sw__exp__4 =    4.9683171808877089E-002
 mdl_MW__exp__4 =    41754190.123290665     
 mdl_MT__exp__3 =    5132953.1250000000     
 mdl_MH__exp__4 =    244140625.00000000     
 mdl_MZ__exp__4 =    69142191.720053151     
 mdl_MT__exp__6 =    26347207783447.266     
 mdl_MW__exp__6 =    269805063915.48602     
 mdl_MT__exp__8 =    7.8399410160620275E+017
 mdl_MW__exp__8 =    1743412392851903.8     
 mdl_MT__exp__10 =    2.3328724485919570E+022
 mdl_MW__exp__10 =    1.1265491934953794E+019
 mdl_MZ__exp__6 =    574929658687.79749     
 mdl_sw__exp__6 =    1.1074241002377336E-002
 mdl_sw__exp__3 =   0.10523421973092847     
 mdl_MZ__exp__3 =    758241.16129882948     
 mdl_cw__exp__4 =   0.60388872676104055     
 mdl_cw__exp__6 =   0.46928360685249931     
 mdl_MH__exp__8 =    59604644775390624.     
 mdl_MH__exp__6 =    3814697265625.0000     
 mdl_cw__exp__3 =   0.68504277738875496     
 mdl_MW__exp__3 =    519427.63106662512     
 mdl_sw__exp__8 =    2.4684175609903992E-003
 mdl_sw__exp__10 =    5.5020341837402442E-004
 mdl_Qd__exp__3 =   -3.7037037037037028E-002
 mdl_Qd__exp__2 =   0.11111111111111110     
 mdl_I3d__exp__2 =   0.25000000000000000     
 mdl_I3d__exp__3 =  -0.12500000000000000     
 mdl_Qu__exp__3 =   0.29629629629629622     
 mdl_Qu__exp__2 =   0.44444444444444442     
 mdl_I3u__exp__2 =   0.25000000000000000     
 mdl_I3u__exp__3 =   0.12500000000000000     
 mdl_Ql__exp__3 =   -1.0000000000000000     
 mdl_I3l__exp__2 =   0.25000000000000000     
 mdl_I3l__exp__3 =  -0.12500000000000000     
 mdl_I3v__exp__3 =   0.12500000000000000     
 mdl_Qu__exp__4 =   0.19753086419753083     
 mdl_Qd__exp__4 =    1.2345679012345677E-002
 mdl_I3l__exp__4 =    6.2500000000000000E-002
 mdl_I3u__exp__4 =    6.2500000000000000E-002
 mdl_I3d__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__2 =   0.25000000000000000     
 mdl_aEW =    7.5623975817934608E-003
 aEWM1 =    132.23319578006701     
 mdl_sqrt__aEW =    8.6962046789352085E-002
 mdl_ee =   0.30827242942882549     
 mdl_g1 =   0.34969985676163423     
 mdl_gw =   0.65295365401175598     
 mdl_vev =    246.21961912951551     
 mdl_vev__exp__2 =    60624.100844283676     
 mdl_lam =   0.12886789067712254     
 mdl_yt =   0.99078960633529489     
 mdl_muH =    88.388347648318444     
 mdl_I233 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_I333 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_AxialZUp =  -0.18517533314848042     
 mdl_AxialZDown =   0.18517533314848042     
 mdl_VectorZUp =    7.5108486645180356E-002
 mdl_VectorZDown =  -0.13014190989683039     
 mdl_AxialG0Up3 =  -0.70059404936883685     
 mdl_VectorHUp3 =  ( -0.0000000000000000     ,-0.70059404936883685     )
 mdl_VectorAUp =   0.20551495295255032     
 mdl_VectorADown =  -0.10275747647627516     
 mdl_VectorWmDxU =   0.23085397827612369     
 mdl_AxialWmDxU =  -0.23085397827612369     
 mdl_VectorWpUxD =   0.23085397827612369     
 mdl_AxialWpUxD =  -0.23085397827612369     
 mdl_VectorGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_VectorGmDx3U3 =  ( 0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGmDx3U3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_ee__exp__2 =    9.5031890745950198E-002
 mdl_ee__exp__3 =    2.9295711833468786E-002
 mdl_ee__exp__4 =    9.0310602587502144E-003
  Internal Params evaluated point by point
  ----------------------------------------
  
 mdl_sqrt__aS =   0.34351128074635334     
 mdl_G__exp__4 =    2.1987899468922913     
 mdl_G__exp__2 =    1.4828317324943823     
 mdl_G_UVc_1EPS_ =    3.1300472141406080E-003
 mdl_GWcft_UV_t_1EPS_ =   -3.1300472141406080E-003
 mdl_tWcft_UV_1EPS_ =   -1.8780283284843650E-002
 mdl_G__exp__3 =    1.8056676068262196     
 mdl_MU_R__exp__2 =    8315.2513440000002     
 mdl_GWcft_UV_t_FIN_ =    3.9906469785607433E-003
 mdl_tWcft_UV_FIN_ =   -1.0964958417604036E-003
  Couplings of hhh-model
  ---------------------------------
  
        GC_10 =  -0.12177E+01   0.00000E+00
        GC_11 =   0.00000E+00   0.12177E+01
       GC_116 =  -0.00000E+00  -0.70059E+00

 Collider parameters:
 --------------------

 Running at P P   machine @    13000.000000000000       GeV
 PDF set = lhapdf 
 alpha_s(Mz)= 0.1180 running at 3 loops.
 alpha_s(Mz)= 0.1180 running at 3 loops.
 Renormalization scale set on event-by-event basis
 Factorization   scale set on event-by-event basis


 Diagram information for  clustering has been set-up for nFKSprocess           1
 getting user params
Enter number of events and iterations: 
 Number of events and iterations           -1          12
Enter desired fractional accuracy: 
 Desired fractional accuracy:    2.9999999999999999E-002
 Enter alpha, beta for G_soft
   Enter alpha<0 to set G_soft=1 (no ME soft)
 for G_soft: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Enter alpha, beta for G_azi
   Enter alpha>0 to set G_azi=0 (no azi corr)
 for G_azi: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Doing the S and H events together
Suppress amplitude (0 no, 1 yes)? 
 Using suppressed amplitude.
Exact helicity sum (0 yes, n = number/event)? 
 Do MC over helicities for the virtuals
Enter Configuration Number: 
Running Configuration Number:    1
Enter running mode for MINT:
0 to set-up grids, 1 to integrate, 2 to generate events
 MINT running mode:           0
Set the three folding parameters for MINT
xi_i, phi_i, y_ij
           1           1           1
 'all ', 'born', 'real', 'virt', 'novi' or 'grid'?
 Enter 'born0' or 'virt0' to perform
  a pure n-body integration (no S functions)
 Process generated with [LOonly=QCD]. Setting abrv to "born".
 doing the born of this channel
 Normal integration (Sfunction != 1)
 Not subdividing B.W.
 about to integrate           10          -1          12           1
 imode is            0
channel    1 :     1 T        0        0  0.1000E+01  0.0000E+00  0.1000E+01
 ------- iteration           1
 Update # PS points (even):          800  -->          800
Using random seed offsets:     1 ,      1 ,      0
  with seed                   46
 Ranmar initialization seeds       27796        9421
 Total number of FKS directories is           1
 FKS process map (sum=           3 ) :
           1 -->           1 :           1
 ================================
 process combination map (specified per FKS dir):
  1 map         1
  1 inv. map    1
 ================================
tau_min   1     1 : 0.47000E+03  0.47000E+03  0.47000E+03
 bpower is   2.0000000000000000     
 Scale values (may change event by event):
 muR,  muR_reference:  0.279850D+03 0.279850D+03  1.00
 muF1, muF1_reference: 0.279850D+03 0.279850D+03  1.00
 muF2, muF2_reference: 0.279850D+03 0.279850D+03  1.00
 QES,  QES_reference:  0.279850D+03 0.279850D+03  1.00
  
 muR_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF1_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF2_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 QES_reference [functional form]: 
    H_T/2 := sum_i mT(i)/2, i=final state
  
 alpha_s=  0.10095951392403983     
ABS integral  = 0.6507E-02  +/-  0.4760E-03  (   7.315 %)
Integral      = 0.6507E-02  +/-  0.4760E-03  (   7.315 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2 per d.o.f. 0.0000E+00
accumulated results ABS integral  = 0.6507E-02  +/-  0.4760E-03  (   7.315 %)
accumulated results Integral      = 0.6507E-02  +/-  0.4760E-03  (   7.315 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.0000E+00
  1:  0                                                                                                   1
channel    1 :     1 T      800        0  0.6507E-02  0.6507E-02  0.2500E+00
 ------- iteration           2
 Update # PS points (even):         1600  -->         1600
ABS integral  = 0.7204E-02  +/-  0.2811E-03  (   3.902 %)
Integral      = 0.7204E-02  +/-  0.2811E-03  (   3.902 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.8481E+00
accumulated results ABS integral  = 0.6945E-02  +/-  0.2420E-03  (   3.485 %)
accumulated results Integral      = 0.6945E-02  +/-  0.2420E-03  (   3.485 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.8481E+00
  1:  0                                                                                                   1
channel    1 :     1 T     1600      800  0.6945E-02  0.6945E-02  0.6250E-01
 ------- iteration           3
 Update # PS points (even):         3200  -->         3072
ABS integral  = 0.7251E-02  +/-  0.1689E-03  (   2.330 %)
Integral      = 0.7251E-02  +/-  0.1689E-03  (   2.330 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.5530E+00
accumulated results ABS integral  = 0.7125E-02  +/-  0.1385E-03  (   1.944 %)
accumulated results Integral      = 0.7125E-02  +/-  0.1385E-03  (   1.944 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.7006E+00
  1:  0                                                                                                   1
channel    1 :     1 T     3072     1600  0.7125E-02  0.7125E-02  0.1562E-01
 ------- iteration           4
 Update # PS points (even):         6400  -->         6144
ABS integral  = 0.7013E-02  +/-  0.1012E-03  (   1.444 %)
Integral      = 0.7013E-02  +/-  0.1012E-03  (   1.444 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.2188E+00
accumulated results ABS integral  = 0.7060E-02  +/-  0.8173E-04  (   1.158 %)
accumulated results Integral      = 0.7060E-02  +/-  0.8173E-04  (   1.158 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.5400E+00
accumulated results last 3 iterations ABS integral  = 0.7103E-02  +/-  0.8296E-04  (   1.168 %)
accumulated results last 3 iterations Integral      = 0.7103E-02  +/-  0.8296E-04  (   1.168 %)
accumulated result last 3 iterrations Chi^2 per DoF = 0.4060E+00
  1:  0                                                                                                   1
 Found desired accuracy
channel    1 :     1 T     6155     3072  0.7060E-02  0.7060E-02  0.5000E-02
Thanks for using LHAPDF 6.1.6. Please make sure to cite the paper:
  Eur.Phys.J. C75 (2015) 3, 132  (http://arxiv.org/abs/1412.7420)
 -------
 Final result [ABS]:   7.0601437234219218E-003  +/-   8.1732376395709586E-005
 Final result:   7.0601268840297998E-003  +/-   8.1732512404308894E-005
 chi**2 per D.o.F.:  0.53998603910164533     
 Time spent in Born :   0.203064054    
 Time spent in PS_Generation :    5.54650687E-02
 Time spent in Reals_evaluation:    0.00000000    
 Time spent in MCsubtraction :    0.00000000    
 Time spent in Counter_terms :    0.00000000    
 Time spent in Integrated_CT :    0.00000000    
 Time spent in Virtuals :    0.00000000    
 Time spent in FxFx_cluster :    0.00000000    
 Time spent in Nbody_prefactor :   0.207308382    
 Time spent in N1body_prefactor :    0.00000000    
 Time spent in Adding_alphas_pdf :   0.192264304    
 Time spent in Reweight_scale :    0.00000000    
 Time spent in Reweight_pdf :    0.00000000    
 Time spent in Filling_plots :    0.00000000    
 Time spent in Applying_cuts :    2.11203955E-02
 Time spent in Sum_ident_contr :    1.45459734E-02
 Time spent in Pick_unwgt :    0.00000000    
 Time spent in Write_events :    0.00000000    
 Time spent in Other_tasks :   0.224595845    
 Time spent in Total :   0.918363988    
Time in seconds: 2



LOG file for integration channel /P0_gg_httx/GB2, 0
==== LHAPDF6 USING DEFAULT-TYPE LHAGLUE INTERFACE ====
LHAPDF 6.1.6 loading /afs/cern.ch/work/s/sesanche/private/TTH_k3/MG5_aMC_v2_5_5/HEPTools/lhapdf6/share/LHAPDF/NNPDF30_nnlo_as_0118/NNPDF30_nnlo_as_0118_0000.dat
NNPDF30_nnlo_as_0118 PDF set, member #0, version 2; LHAPDF ID = 261000
 ===============================================================
 INFO: MadFKS read these parameters from FKS_params.dat                                                  
 ===============================================================
  > IRPoleCheckThreshold      =    1.0000000000000001E-005
  > PrecisionVirtualAtRunTime =    1.0000000000000000E-003
  > NHelForMCoverHels         =            4
  > VirtualFraction           =    1.0000000000000000     
  > MinVirtualFraction        =    5.0000000000000001E-003
 ===============================================================
 A PDF is used, so alpha_s(MZ) is going to be modified
 Old value of alpha_s from param_card:   0.11799999999999999     
 New value of alpha_s from PDF lhapdf :  0.11800222249017472     
 using LHAPDF
WARNING: the value of maxjetflavorspecified in the run_card (  4) is inconsistent with the number of light flavours inthe model. Hence it will be set to:  5
 *****************************************************
 *               MadGraph/MadEvent                   *
 *        --------------------------------           *
 *          http://madgraph.hep.uiuc.edu             *
 *          http://madgraph.phys.ucl.ac.be           *
 *          http://madgraph.roma2.infn.it            *
 *        --------------------------------           *
 *                                                   *
 *          PARAMETER AND COUPLING VALUES            *
 *                                                   *
 *****************************************************

  External Params
  ---------------------------------
  
 MU_R =    91.188000000000002     
 mdl_Gf =    1.1663789999999999E-005
 mdl_MW =    80.385000000000005     
 aS =   0.11799999999999999     
 mdl_ymt =    172.50000000000000     
 mdl_MZ =    91.187600000000003     
 mdl_MT =    172.50000000000000     
 mdl_MH =    125.00000000000000     
 mdl_WZ =    2.5047899999999998     
 mdl_WW =    2.0929099999999998     
 mdl_WT =    0.0000000000000000     
 mdl_WH =    3.5138499999999998E-003
  Internal Params
  ---------------------------------
  
 mdl_yb =    0.0000000000000000     
 mdl_CKM31 =    0.0000000000000000     
 mdl_CKM32 =    0.0000000000000000     
 mdl_MB__exp__4 =    0.0000000000000000     
 mdl_MB__exp__2 =    0.0000000000000000     
 mdl_CKM11 =    1.0000000000000000     
 mdl_SCKM33 =    1.0000000000000000     
 mdl_SCKM11 =    1.0000000000000000     
 mdl_vep =    0.0000000000000000     
 mdl_CKM33 =    1.0000000000000000     
 mdl_CMSParam =    0.0000000000000000     
 mdl_MC__exp__2 =    0.0000000000000000     
 mdl_SCKM33__exp__2 =    1.0000000000000000     
 mdl_Ql__exp__2 =    1.0000000000000000     
 mdl_conjg__CKM22 =    1.0000000000000000     
 mdl_SCKM22 =    1.0000000000000000     
 mdl_CKM22 =    1.0000000000000000     
 mdl_SCKM22__exp__2 =    1.0000000000000000     
 mdl_MD__exp__2 =    0.0000000000000000     
 mdl_MU__exp__2 =    0.0000000000000000     
 mdl_MM__exp__2 =    0.0000000000000000     
 mdl_MTA__exp__2 =    0.0000000000000000     
 mdl_Ql__exp__4 =    1.0000000000000000     
 mdl_conjg__CKM11 =    1.0000000000000000     
 mdl_lhv =    1.0000000000000000     
 mdl_conjg__CKM31 =    0.0000000000000000     
 mdl_conjg__CKM32 =    0.0000000000000000     
 mdl_conjg__CKM33 =    1.0000000000000000     
 mdl_Ncol =    3.0000000000000000     
 mdl_CA =    3.0000000000000000     
 mdl_TF =   0.50000000000000000     
 mdl_CF =    1.3333333333333333     
 mdl_MW__exp__2 =    6461.7482250000012     
 mdl_MZ__exp__2 =    8315.1783937600012     
 mdl_sw2 =   0.22289722252391819     
 mdl_complexi =  (  0.0000000000000000     ,  1.0000000000000000     )
 mdl_cw =   0.88153433142225479     
 mdl_sqrt__sw2 =   0.47211992387942936     
 mdl_sw =   0.47211992387942936     
 mdl_MH__exp__2 =    15625.000000000000     
 mdl_sqrt__2 =    1.4142135623730951     
 mdl_I3d =  -0.50000000000000000     
 mdl_I3u =   0.50000000000000000     
 mdl_I3l =  -0.50000000000000000     
 mdl_I3v =   0.50000000000000000     
 mdl_Qd =  -0.33333333333333331     
 mdl_Qu =   0.66666666666666663     
 mdl_Ql =   -1.0000000000000000     
 mdl_Ncol__exp__2 =    9.0000000000000000     
 mdl_sw__exp__2 =   0.22289722252391816     
 mdl_MT__exp__2 =    29756.250000000000     
 mdl_cw__exp__2 =   0.77710277747608170     
 mdl_MT__exp__4 =    885434414.06250000     
 mdl_sw__exp__4 =    4.9683171808877089E-002
 mdl_MW__exp__4 =    41754190.123290665     
 mdl_MT__exp__3 =    5132953.1250000000     
 mdl_MH__exp__4 =    244140625.00000000     
 mdl_MZ__exp__4 =    69142191.720053151     
 mdl_MT__exp__6 =    26347207783447.266     
 mdl_MW__exp__6 =    269805063915.48602     
 mdl_MT__exp__8 =    7.8399410160620275E+017
 mdl_MW__exp__8 =    1743412392851903.8     
 mdl_MT__exp__10 =    2.3328724485919570E+022
 mdl_MW__exp__10 =    1.1265491934953794E+019
 mdl_MZ__exp__6 =    574929658687.79749     
 mdl_sw__exp__6 =    1.1074241002377336E-002
 mdl_sw__exp__3 =   0.10523421973092847     
 mdl_MZ__exp__3 =    758241.16129882948     
 mdl_cw__exp__4 =   0.60388872676104055     
 mdl_cw__exp__6 =   0.46928360685249931     
 mdl_MH__exp__8 =    59604644775390624.     
 mdl_MH__exp__6 =    3814697265625.0000     
 mdl_cw__exp__3 =   0.68504277738875496     
 mdl_MW__exp__3 =    519427.63106662512     
 mdl_sw__exp__8 =    2.4684175609903992E-003
 mdl_sw__exp__10 =    5.5020341837402442E-004
 mdl_Qd__exp__3 =   -3.7037037037037028E-002
 mdl_Qd__exp__2 =   0.11111111111111110     
 mdl_I3d__exp__2 =   0.25000000000000000     
 mdl_I3d__exp__3 =  -0.12500000000000000     
 mdl_Qu__exp__3 =   0.29629629629629622     
 mdl_Qu__exp__2 =   0.44444444444444442     
 mdl_I3u__exp__2 =   0.25000000000000000     
 mdl_I3u__exp__3 =   0.12500000000000000     
 mdl_Ql__exp__3 =   -1.0000000000000000     
 mdl_I3l__exp__2 =   0.25000000000000000     
 mdl_I3l__exp__3 =  -0.12500000000000000     
 mdl_I3v__exp__3 =   0.12500000000000000     
 mdl_Qu__exp__4 =   0.19753086419753083     
 mdl_Qd__exp__4 =    1.2345679012345677E-002
 mdl_I3l__exp__4 =    6.2500000000000000E-002
 mdl_I3u__exp__4 =    6.2500000000000000E-002
 mdl_I3d__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__2 =   0.25000000000000000     
 mdl_aEW =    7.5623975817934608E-003
 aEWM1 =    132.23319578006701     
 mdl_sqrt__aEW =    8.6962046789352085E-002
 mdl_ee =   0.30827242942882549     
 mdl_g1 =   0.34969985676163423     
 mdl_gw =   0.65295365401175598     
 mdl_vev =    246.21961912951551     
 mdl_vev__exp__2 =    60624.100844283676     
 mdl_lam =   0.12886789067712254     
 mdl_yt =   0.99078960633529489     
 mdl_muH =    88.388347648318444     
 mdl_I233 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_I333 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_AxialZUp =  -0.18517533314848042     
 mdl_AxialZDown =   0.18517533314848042     
 mdl_VectorZUp =    7.5108486645180356E-002
 mdl_VectorZDown =  -0.13014190989683039     
 mdl_AxialG0Up3 =  -0.70059404936883685     
 mdl_VectorHUp3 =  ( -0.0000000000000000     ,-0.70059404936883685     )
 mdl_VectorAUp =   0.20551495295255032     
 mdl_VectorADown =  -0.10275747647627516     
 mdl_VectorWmDxU =   0.23085397827612369     
 mdl_AxialWmDxU =  -0.23085397827612369     
 mdl_VectorWpUxD =   0.23085397827612369     
 mdl_AxialWpUxD =  -0.23085397827612369     
 mdl_VectorGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_VectorGmDx3U3 =  ( 0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGmDx3U3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_ee__exp__2 =    9.5031890745950198E-002
 mdl_ee__exp__3 =    2.9295711833468786E-002
 mdl_ee__exp__4 =    9.0310602587502144E-003
  Internal Params evaluated point by point
  ----------------------------------------
  
 mdl_sqrt__aS =   0.34351128074635334     
 mdl_G__exp__4 =    2.1987899468922913     
 mdl_G__exp__2 =    1.4828317324943823     
 mdl_G_UVc_1EPS_ =    3.1300472141406080E-003
 mdl_GWcft_UV_t_1EPS_ =   -3.1300472141406080E-003
 mdl_tWcft_UV_1EPS_ =   -1.8780283284843650E-002
 mdl_G__exp__3 =    1.8056676068262196     
 mdl_MU_R__exp__2 =    8315.2513440000002     
 mdl_GWcft_UV_t_FIN_ =    3.9906469785607433E-003
 mdl_tWcft_UV_FIN_ =   -1.0964958417604036E-003
  Couplings of hhh-model
  ---------------------------------
  
        GC_10 =  -0.12177E+01   0.00000E+00
        GC_11 =   0.00000E+00   0.12177E+01
       GC_116 =  -0.00000E+00  -0.70059E+00

 Collider parameters:
 --------------------

 Running at P P   machine @    13000.000000000000       GeV
 PDF set = lhapdf 
 alpha_s(Mz)= 0.1180 running at 3 loops.
 alpha_s(Mz)= 0.1180 running at 3 loops.
 Renormalization scale set on event-by-event basis
 Factorization   scale set on event-by-event basis


 Diagram information for  clustering has been set-up for nFKSprocess           1
 getting user params
Enter number of events and iterations: 
 Number of events and iterations           -1          12
Enter desired fractional accuracy: 
 Desired fractional accuracy:    2.9999999999999999E-002
 Enter alpha, beta for G_soft
   Enter alpha<0 to set G_soft=1 (no ME soft)
 for G_soft: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Enter alpha, beta for G_azi
   Enter alpha>0 to set G_azi=0 (no azi corr)
 for G_azi: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Doing the S and H events together
Suppress amplitude (0 no, 1 yes)? 
 Using suppressed amplitude.
Exact helicity sum (0 yes, n = number/event)? 
 Do MC over helicities for the virtuals
Enter Configuration Number: 
Running Configuration Number:    2
Enter running mode for MINT:
0 to set-up grids, 1 to integrate, 2 to generate events
 MINT running mode:           0
Set the three folding parameters for MINT
xi_i, phi_i, y_ij
           1           1           1
 'all ', 'born', 'real', 'virt', 'novi' or 'grid'?
 Enter 'born0' or 'virt0' to perform
  a pure n-body integration (no S functions)
 Process generated with [LOonly=QCD]. Setting abrv to "born".
 doing the born of this channel
 Normal integration (Sfunction != 1)
 Not subdividing B.W.
 about to integrate           10          -1          12           2
 imode is            0
channel    1 :     2 T        0        0  0.1000E+01  0.0000E+00  0.1000E+01
 ------- iteration           1
 Update # PS points (even):          800  -->          800
Using random seed offsets:     2 ,      1 ,      0
  with seed                   46
 Ranmar initialization seeds       27797        9421
 Total number of FKS directories is           1
 FKS process map (sum=           3 ) :
           1 -->           1 :           1
 ================================
 process combination map (specified per FKS dir):
  1 map         1
  1 inv. map    1
 ================================
tau_min   1     1 : 0.47000E+03  0.47000E+03  0.47000E+03
 bpower is   2.0000000000000000     
 Scale values (may change event by event):
 muR,  muR_reference:  0.354943D+03 0.354943D+03  1.00
 muF1, muF1_reference: 0.354943D+03 0.354943D+03  1.00
 muF2, muF2_reference: 0.354943D+03 0.354943D+03  1.00
 QES,  QES_reference:  0.354943D+03 0.354943D+03  1.00
  
 muR_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF1_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF2_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 QES_reference [functional form]: 
    H_T/2 := sum_i mT(i)/2, i=final state
  
 alpha_s=   9.7971481415879844E-002
ABS integral  = 0.6363E-02  +/-  0.4681E-03  (   7.356 %)
Integral      = 0.6363E-02  +/-  0.4681E-03  (   7.356 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2 per d.o.f. 0.0000E+00
accumulated results ABS integral  = 0.6363E-02  +/-  0.4681E-03  (   7.356 %)
accumulated results Integral      = 0.6363E-02  +/-  0.4681E-03  (   7.356 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.0000E+00
  1:  0                                                                                                   1
channel    1 :     2 T      800        0  0.6363E-02  0.6363E-02  0.2500E+00
 ------- iteration           2
 Update # PS points (even):         1600  -->         1600
ABS integral  = 0.6748E-02  +/-  0.2460E-03  (   3.646 %)
Integral      = 0.6748E-02  +/-  0.2460E-03  (   3.646 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.2897E+00
accumulated results ABS integral  = 0.6615E-02  +/-  0.2178E-03  (   3.292 %)
accumulated results Integral      = 0.6615E-02  +/-  0.2178E-03  (   3.292 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.2897E+00
  1:  0                                                                                                   1
channel    1 :     2 T     1600      800  0.6615E-02  0.6615E-02  0.6250E-01
 ------- iteration           3
 Update # PS points (even):         3200  -->         3072
ABS integral  = 0.7131E-02  +/-  0.1548E-03  (   2.170 %)
Integral      = 0.7131E-02  +/-  0.1548E-03  (   2.170 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.1916E+01
accumulated results ABS integral  = 0.6917E-02  +/-  0.1261E-03  (   1.824 %)
accumulated results Integral      = 0.6917E-02  +/-  0.1261E-03  (   1.824 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.1103E+01
  1:  0                                                                                                   1
channel    1 :     2 T     3072     1600  0.6917E-02  0.6917E-02  0.1562E-01
 ------- iteration           4
 Update # PS points (even):         6400  -->         6144
ABS integral  = 0.7042E-02  +/-  0.1022E-03  (   1.451 %)
Integral      = 0.7042E-02  +/-  0.1022E-03  (   1.451 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.3027E+00
accumulated results ABS integral  = 0.6986E-02  +/-  0.7940E-04  (   1.137 %)
accumulated results Integral      = 0.6986E-02  +/-  0.7940E-04  (   1.137 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.8362E+00
accumulated results last 3 iterations ABS integral  = 0.7016E-02  +/-  0.8057E-04  (   1.148 %)
accumulated results last 3 iterations Integral      = 0.7016E-02  +/-  0.8057E-04  (   1.148 %)
accumulated result last 3 iterrations Chi^2 per DoF = 0.4896E+00
  1:  0                                                                                                   1
 Found desired accuracy
channel    1 :     2 T     6138     3072  0.6986E-02  0.6986E-02  0.5000E-02
Thanks for using LHAPDF 6.1.6. Please make sure to cite the paper:
  Eur.Phys.J. C75 (2015) 3, 132  (http://arxiv.org/abs/1412.7420)
 -------
 Final result [ABS]:   6.9862351443137531E-003  +/-   7.9399490638801766E-005
 Final result:   6.9862189699704640E-003  +/-   7.9399617917982139E-005
 chi**2 per D.o.F.:  0.83618712637929093     
 Time spent in Born :   0.204027176    
 Time spent in PS_Generation :    5.54069206E-02
 Time spent in Reals_evaluation:    0.00000000    
 Time spent in MCsubtraction :    0.00000000    
 Time spent in Counter_terms :    0.00000000    
 Time spent in Integrated_CT :    0.00000000    
 Time spent in Virtuals :    0.00000000    
 Time spent in FxFx_cluster :    0.00000000    
 Time spent in Nbody_prefactor :   0.207117215    
 Time spent in N1body_prefactor :    0.00000000    
 Time spent in Adding_alphas_pdf :   0.192887366    
 Time spent in Reweight_scale :    0.00000000    
 Time spent in Reweight_pdf :    0.00000000    
 Time spent in Filling_plots :    0.00000000    
 Time spent in Applying_cuts :    2.12782435E-02
 Time spent in Sum_ident_contr :    1.44182071E-02
 Time spent in Pick_unwgt :    0.00000000    
 Time spent in Write_events :    0.00000000    
 Time spent in Other_tasks :   0.226067901    
 Time spent in Total :   0.921203017    
Time in seconds: 2



LOG file for integration channel /P0_gg_httx/GB3, 0
==== LHAPDF6 USING DEFAULT-TYPE LHAGLUE INTERFACE ====
LHAPDF 6.1.6 loading /afs/cern.ch/work/s/sesanche/private/TTH_k3/MG5_aMC_v2_5_5/HEPTools/lhapdf6/share/LHAPDF/NNPDF30_nnlo_as_0118/NNPDF30_nnlo_as_0118_0000.dat
NNPDF30_nnlo_as_0118 PDF set, member #0, version 2; LHAPDF ID = 261000
 ===============================================================
 INFO: MadFKS read these parameters from FKS_params.dat                                                  
 ===============================================================
  > IRPoleCheckThreshold      =    1.0000000000000001E-005
  > PrecisionVirtualAtRunTime =    1.0000000000000000E-003
  > NHelForMCoverHels         =            4
  > VirtualFraction           =    1.0000000000000000     
  > MinVirtualFraction        =    5.0000000000000001E-003
 ===============================================================
 A PDF is used, so alpha_s(MZ) is going to be modified
 Old value of alpha_s from param_card:   0.11799999999999999     
 New value of alpha_s from PDF lhapdf :  0.11800222249017472     
 using LHAPDF
WARNING: the value of maxjetflavorspecified in the run_card (  4) is inconsistent with the number of light flavours inthe model. Hence it will be set to:  5
 *****************************************************
 *               MadGraph/MadEvent                   *
 *        --------------------------------           *
 *          http://madgraph.hep.uiuc.edu             *
 *          http://madgraph.phys.ucl.ac.be           *
 *          http://madgraph.roma2.infn.it            *
 *        --------------------------------           *
 *                                                   *
 *          PARAMETER AND COUPLING VALUES            *
 *                                                   *
 *****************************************************

  External Params
  ---------------------------------
  
 MU_R =    91.188000000000002     
 mdl_Gf =    1.1663789999999999E-005
 mdl_MW =    80.385000000000005     
 aS =   0.11799999999999999     
 mdl_ymt =    172.50000000000000     
 mdl_MZ =    91.187600000000003     
 mdl_MT =    172.50000000000000     
 mdl_MH =    125.00000000000000     
 mdl_WZ =    2.5047899999999998     
 mdl_WW =    2.0929099999999998     
 mdl_WT =    0.0000000000000000     
 mdl_WH =    3.5138499999999998E-003
  Internal Params
  ---------------------------------
  
 mdl_yb =    0.0000000000000000     
 mdl_CKM31 =    0.0000000000000000     
 mdl_CKM32 =    0.0000000000000000     
 mdl_MB__exp__4 =    0.0000000000000000     
 mdl_MB__exp__2 =    0.0000000000000000     
 mdl_CKM11 =    1.0000000000000000     
 mdl_SCKM33 =    1.0000000000000000     
 mdl_SCKM11 =    1.0000000000000000     
 mdl_vep =    0.0000000000000000     
 mdl_CKM33 =    1.0000000000000000     
 mdl_CMSParam =    0.0000000000000000     
 mdl_MC__exp__2 =    0.0000000000000000     
 mdl_SCKM33__exp__2 =    1.0000000000000000     
 mdl_Ql__exp__2 =    1.0000000000000000     
 mdl_conjg__CKM22 =    1.0000000000000000     
 mdl_SCKM22 =    1.0000000000000000     
 mdl_CKM22 =    1.0000000000000000     
 mdl_SCKM22__exp__2 =    1.0000000000000000     
 mdl_MD__exp__2 =    0.0000000000000000     
 mdl_MU__exp__2 =    0.0000000000000000     
 mdl_MM__exp__2 =    0.0000000000000000     
 mdl_MTA__exp__2 =    0.0000000000000000     
 mdl_Ql__exp__4 =    1.0000000000000000     
 mdl_conjg__CKM11 =    1.0000000000000000     
 mdl_lhv =    1.0000000000000000     
 mdl_conjg__CKM31 =    0.0000000000000000     
 mdl_conjg__CKM32 =    0.0000000000000000     
 mdl_conjg__CKM33 =    1.0000000000000000     
 mdl_Ncol =    3.0000000000000000     
 mdl_CA =    3.0000000000000000     
 mdl_TF =   0.50000000000000000     
 mdl_CF =    1.3333333333333333     
 mdl_MW__exp__2 =    6461.7482250000012     
 mdl_MZ__exp__2 =    8315.1783937600012     
 mdl_sw2 =   0.22289722252391819     
 mdl_complexi =  (  0.0000000000000000     ,  1.0000000000000000     )
 mdl_cw =   0.88153433142225479     
 mdl_sqrt__sw2 =   0.47211992387942936     
 mdl_sw =   0.47211992387942936     
 mdl_MH__exp__2 =    15625.000000000000     
 mdl_sqrt__2 =    1.4142135623730951     
 mdl_I3d =  -0.50000000000000000     
 mdl_I3u =   0.50000000000000000     
 mdl_I3l =  -0.50000000000000000     
 mdl_I3v =   0.50000000000000000     
 mdl_Qd =  -0.33333333333333331     
 mdl_Qu =   0.66666666666666663     
 mdl_Ql =   -1.0000000000000000     
 mdl_Ncol__exp__2 =    9.0000000000000000     
 mdl_sw__exp__2 =   0.22289722252391816     
 mdl_MT__exp__2 =    29756.250000000000     
 mdl_cw__exp__2 =   0.77710277747608170     
 mdl_MT__exp__4 =    885434414.06250000     
 mdl_sw__exp__4 =    4.9683171808877089E-002
 mdl_MW__exp__4 =    41754190.123290665     
 mdl_MT__exp__3 =    5132953.1250000000     
 mdl_MH__exp__4 =    244140625.00000000     
 mdl_MZ__exp__4 =    69142191.720053151     
 mdl_MT__exp__6 =    26347207783447.266     
 mdl_MW__exp__6 =    269805063915.48602     
 mdl_MT__exp__8 =    7.8399410160620275E+017
 mdl_MW__exp__8 =    1743412392851903.8     
 mdl_MT__exp__10 =    2.3328724485919570E+022
 mdl_MW__exp__10 =    1.1265491934953794E+019
 mdl_MZ__exp__6 =    574929658687.79749     
 mdl_sw__exp__6 =    1.1074241002377336E-002
 mdl_sw__exp__3 =   0.10523421973092847     
 mdl_MZ__exp__3 =    758241.16129882948     
 mdl_cw__exp__4 =   0.60388872676104055     
 mdl_cw__exp__6 =   0.46928360685249931     
 mdl_MH__exp__8 =    59604644775390624.     
 mdl_MH__exp__6 =    3814697265625.0000     
 mdl_cw__exp__3 =   0.68504277738875496     
 mdl_MW__exp__3 =    519427.63106662512     
 mdl_sw__exp__8 =    2.4684175609903992E-003
 mdl_sw__exp__10 =    5.5020341837402442E-004
 mdl_Qd__exp__3 =   -3.7037037037037028E-002
 mdl_Qd__exp__2 =   0.11111111111111110     
 mdl_I3d__exp__2 =   0.25000000000000000     
 mdl_I3d__exp__3 =  -0.12500000000000000     
 mdl_Qu__exp__3 =   0.29629629629629622     
 mdl_Qu__exp__2 =   0.44444444444444442     
 mdl_I3u__exp__2 =   0.25000000000000000     
 mdl_I3u__exp__3 =   0.12500000000000000     
 mdl_Ql__exp__3 =   -1.0000000000000000     
 mdl_I3l__exp__2 =   0.25000000000000000     
 mdl_I3l__exp__3 =  -0.12500000000000000     
 mdl_I3v__exp__3 =   0.12500000000000000     
 mdl_Qu__exp__4 =   0.19753086419753083     
 mdl_Qd__exp__4 =    1.2345679012345677E-002
 mdl_I3l__exp__4 =    6.2500000000000000E-002
 mdl_I3u__exp__4 =    6.2500000000000000E-002
 mdl_I3d__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__2 =   0.25000000000000000     
 mdl_aEW =    7.5623975817934608E-003
 aEWM1 =    132.23319578006701     
 mdl_sqrt__aEW =    8.6962046789352085E-002
 mdl_ee =   0.30827242942882549     
 mdl_g1 =   0.34969985676163423     
 mdl_gw =   0.65295365401175598     
 mdl_vev =    246.21961912951551     
 mdl_vev__exp__2 =    60624.100844283676     
 mdl_lam =   0.12886789067712254     
 mdl_yt =   0.99078960633529489     
 mdl_muH =    88.388347648318444     
 mdl_I233 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_I333 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_AxialZUp =  -0.18517533314848042     
 mdl_AxialZDown =   0.18517533314848042     
 mdl_VectorZUp =    7.5108486645180356E-002
 mdl_VectorZDown =  -0.13014190989683039     
 mdl_AxialG0Up3 =  -0.70059404936883685     
 mdl_VectorHUp3 =  ( -0.0000000000000000     ,-0.70059404936883685     )
 mdl_VectorAUp =   0.20551495295255032     
 mdl_VectorADown =  -0.10275747647627516     
 mdl_VectorWmDxU =   0.23085397827612369     
 mdl_AxialWmDxU =  -0.23085397827612369     
 mdl_VectorWpUxD =   0.23085397827612369     
 mdl_AxialWpUxD =  -0.23085397827612369     
 mdl_VectorGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_VectorGmDx3U3 =  ( 0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGmDx3U3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_ee__exp__2 =    9.5031890745950198E-002
 mdl_ee__exp__3 =    2.9295711833468786E-002
 mdl_ee__exp__4 =    9.0310602587502144E-003
  Internal Params evaluated point by point
  ----------------------------------------
  
 mdl_sqrt__aS =   0.34351128074635334     
 mdl_G__exp__4 =    2.1987899468922913     
 mdl_G__exp__2 =    1.4828317324943823     
 mdl_G_UVc_1EPS_ =    3.1300472141406080E-003
 mdl_GWcft_UV_t_1EPS_ =   -3.1300472141406080E-003
 mdl_tWcft_UV_1EPS_ =   -1.8780283284843650E-002
 mdl_G__exp__3 =    1.8056676068262196     
 mdl_MU_R__exp__2 =    8315.2513440000002     
 mdl_GWcft_UV_t_FIN_ =    3.9906469785607433E-003
 mdl_tWcft_UV_FIN_ =   -1.0964958417604036E-003
  Couplings of hhh-model
  ---------------------------------
  
        GC_10 =  -0.12177E+01   0.00000E+00
        GC_11 =   0.00000E+00   0.12177E+01
       GC_116 =  -0.00000E+00  -0.70059E+00

 Collider parameters:
 --------------------

 Running at P P   machine @    13000.000000000000       GeV
 PDF set = lhapdf 
 alpha_s(Mz)= 0.1180 running at 3 loops.
 alpha_s(Mz)= 0.1180 running at 3 loops.
 Renormalization scale set on event-by-event basis
 Factorization   scale set on event-by-event basis


 Diagram information for  clustering has been set-up for nFKSprocess           1
 getting user params
Enter number of events and iterations: 
 Number of events and iterations           -1          12
Enter desired fractional accuracy: 
 Desired fractional accuracy:    2.9999999999999999E-002
 Enter alpha, beta for G_soft
   Enter alpha<0 to set G_soft=1 (no ME soft)
 for G_soft: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Enter alpha, beta for G_azi
   Enter alpha>0 to set G_azi=0 (no azi corr)
 for G_azi: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Doing the S and H events together
Suppress amplitude (0 no, 1 yes)? 
 Using suppressed amplitude.
Exact helicity sum (0 yes, n = number/event)? 
 Do MC over helicities for the virtuals
Enter Configuration Number: 
Running Configuration Number:    3
Enter running mode for MINT:
0 to set-up grids, 1 to integrate, 2 to generate events
 MINT running mode:           0
Set the three folding parameters for MINT
xi_i, phi_i, y_ij
           1           1           1
 'all ', 'born', 'real', 'virt', 'novi' or 'grid'?
 Enter 'born0' or 'virt0' to perform
  a pure n-body integration (no S functions)
 Process generated with [LOonly=QCD]. Setting abrv to "born".
 doing the born of this channel
 Normal integration (Sfunction != 1)
 Not subdividing B.W.
 about to integrate           10          -1          12           3
 imode is            0
channel    1 :     3 T        0        0  0.1000E+01  0.0000E+00  0.1000E+01
 ------- iteration           1
 Update # PS points (even):          800  -->          800
Using random seed offsets:     3 ,      1 ,      0
  with seed                   46
 Ranmar initialization seeds       27798        9421
 Total number of FKS directories is           1
 FKS process map (sum=           3 ) :
           1 -->           1 :           1
 ================================
 process combination map (specified per FKS dir):
  1 map         1
  1 inv. map    1
 ================================
tau_min   1     1 : 0.47000E+03  0.47000E+03  0.47000E+03
 bpower is   2.0000000000000000     
 Scale values (may change event by event):
 muR,  muR_reference:  0.733437D+03 0.733437D+03  1.00
 muF1, muF1_reference: 0.733437D+03 0.733437D+03  1.00
 muF2, muF2_reference: 0.733437D+03 0.733437D+03  1.00
 QES,  QES_reference:  0.733437D+03 0.733437D+03  1.00
  
 muR_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF1_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF2_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 QES_reference [functional form]: 
    H_T/2 := sum_i mT(i)/2, i=final state
  
 alpha_s=   8.9870013283601030E-002
ABS integral  = 0.2458E-01  +/-  0.2331E-02  (   9.480 %)
Integral      = 0.2458E-01  +/-  0.2331E-02  (   9.480 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2 per d.o.f. 0.0000E+00
accumulated results ABS integral  = 0.2458E-01  +/-  0.2331E-02  (   9.480 %)
accumulated results Integral      = 0.2458E-01  +/-  0.2331E-02  (   9.480 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.0000E+00
  1:  0                                                                                                   1
channel    1 :     3 T      800        0  0.2458E-01  0.2458E-01  0.2500E+00
 ------- iteration           2
 Update # PS points (even):         1600  -->         1600
ABS integral  = 0.2704E-01  +/-  0.1706E-02  (   6.309 %)
Integral      = 0.2704E-01  +/-  0.1706E-02  (   6.309 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.3708E+00
accumulated results ABS integral  = 0.2600E-01  +/-  0.1377E-02  (   5.294 %)
accumulated results Integral      = 0.2600E-01  +/-  0.1377E-02  (   5.294 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.3708E+00
  1:  0                                                                                                   1
channel    1 :     3 T     1600      800  0.2600E-01  0.2600E-01  0.6250E-01
 ------- iteration           3
 Update # PS points (even):         3200  -->         3072
ABS integral  = 0.2909E-01  +/-  0.1473E-02  (   5.065 %)
Integral      = 0.2909E-01  +/-  0.1473E-02  (   5.065 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.1169E+01
accumulated results ABS integral  = 0.2749E-01  +/-  0.1006E-02  (   3.659 %)
accumulated results Integral      = 0.2749E-01  +/-  0.1006E-02  (   3.659 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.7699E+00
  1:  0                                                                                                   1
channel    1 :     3 T     3072     1600  0.2749E-01  0.2749E-01  0.1562E-01
 ------- iteration           4
 Update # PS points (even):         6400  -->         6144
ABS integral  = 0.2932E-01  +/-  0.5364E-03  (   1.830 %)
Integral      = 0.2931E-01  +/-  0.5364E-03  (   1.830 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.1397E+01
accumulated results ABS integral  = 0.2868E-01  +/-  0.4733E-03  (   1.650 %)
accumulated results Integral      = 0.2868E-01  +/-  0.4733E-03  (   1.650 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.9788E+00
accumulated results last 3 iterations ABS integral  = 0.2893E-01  +/-  0.4834E-03  (   1.671 %)
accumulated results last 3 iterations Integral      = 0.2893E-01  +/-  0.4834E-03  (   1.671 %)
accumulated result last 3 iterrations Chi^2 per DoF = 0.4599E+00
  1:  0                                                                                                   1
 Found desired accuracy
channel    1 :     3 T     6148     3072  0.2868E-01  0.2868E-01  0.5000E-02
Thanks for using LHAPDF 6.1.6. Please make sure to cite the paper:
  Eur.Phys.J. C75 (2015) 3, 132  (http://arxiv.org/abs/1412.7420)
 -------
 Final result [ABS]:   2.8681076552445825E-002  +/-   4.7332870222152129E-004
 Final result:   2.8681004202959381E-002  +/-   4.7332922262815596E-004
 chi**2 per D.o.F.:  0.97876291964849926     
 Time spent in Born :   0.205292791    
 Time spent in PS_Generation :    5.90529591E-02
 Time spent in Reals_evaluation:    0.00000000    
 Time spent in MCsubtraction :    0.00000000    
 Time spent in Counter_terms :    0.00000000    
 Time spent in Integrated_CT :    0.00000000    
 Time spent in Virtuals :    0.00000000    
 Time spent in FxFx_cluster :    0.00000000    
 Time spent in Nbody_prefactor :   0.207791045    
 Time spent in N1body_prefactor :    0.00000000    
 Time spent in Adding_alphas_pdf :   0.192345530    
 Time spent in Reweight_scale :    0.00000000    
 Time spent in Reweight_pdf :    0.00000000    
 Time spent in Filling_plots :    0.00000000    
 Time spent in Applying_cuts :    2.10340284E-02
 Time spent in Sum_ident_contr :    1.44141056E-02
 Time spent in Pick_unwgt :    0.00000000    
 Time spent in Write_events :    0.00000000    
 Time spent in Other_tasks :   0.226951540    
 Time spent in Total :   0.926882029    
Time in seconds: 2



LOG file for integration channel /P0_gg_httx/GB4, 0
==== LHAPDF6 USING DEFAULT-TYPE LHAGLUE INTERFACE ====
LHAPDF 6.1.6 loading /afs/cern.ch/work/s/sesanche/private/TTH_k3/MG5_aMC_v2_5_5/HEPTools/lhapdf6/share/LHAPDF/NNPDF30_nnlo_as_0118/NNPDF30_nnlo_as_0118_0000.dat
NNPDF30_nnlo_as_0118 PDF set, member #0, version 2; LHAPDF ID = 261000
 ===============================================================
 INFO: MadFKS read these parameters from FKS_params.dat                                                  
 ===============================================================
  > IRPoleCheckThreshold      =    1.0000000000000001E-005
  > PrecisionVirtualAtRunTime =    1.0000000000000000E-003
  > NHelForMCoverHels         =            4
  > VirtualFraction           =    1.0000000000000000     
  > MinVirtualFraction        =    5.0000000000000001E-003
 ===============================================================
 A PDF is used, so alpha_s(MZ) is going to be modified
 Old value of alpha_s from param_card:   0.11799999999999999     
 New value of alpha_s from PDF lhapdf :  0.11800222249017472     
 using LHAPDF
WARNING: the value of maxjetflavorspecified in the run_card (  4) is inconsistent with the number of light flavours inthe model. Hence it will be set to:  5
 *****************************************************
 *               MadGraph/MadEvent                   *
 *        --------------------------------           *
 *          http://madgraph.hep.uiuc.edu             *
 *          http://madgraph.phys.ucl.ac.be           *
 *          http://madgraph.roma2.infn.it            *
 *        --------------------------------           *
 *                                                   *
 *          PARAMETER AND COUPLING VALUES            *
 *                                                   *
 *****************************************************

  External Params
  ---------------------------------
  
 MU_R =    91.188000000000002     
 mdl_Gf =    1.1663789999999999E-005
 mdl_MW =    80.385000000000005     
 aS =   0.11799999999999999     
 mdl_ymt =    172.50000000000000     
 mdl_MZ =    91.187600000000003     
 mdl_MT =    172.50000000000000     
 mdl_MH =    125.00000000000000     
 mdl_WZ =    2.5047899999999998     
 mdl_WW =    2.0929099999999998     
 mdl_WT =    0.0000000000000000     
 mdl_WH =    3.5138499999999998E-003
  Internal Params
  ---------------------------------
  
 mdl_yb =    0.0000000000000000     
 mdl_CKM31 =    0.0000000000000000     
 mdl_CKM32 =    0.0000000000000000     
 mdl_MB__exp__4 =    0.0000000000000000     
 mdl_MB__exp__2 =    0.0000000000000000     
 mdl_CKM11 =    1.0000000000000000     
 mdl_SCKM33 =    1.0000000000000000     
 mdl_SCKM11 =    1.0000000000000000     
 mdl_vep =    0.0000000000000000     
 mdl_CKM33 =    1.0000000000000000     
 mdl_CMSParam =    0.0000000000000000     
 mdl_MC__exp__2 =    0.0000000000000000     
 mdl_SCKM33__exp__2 =    1.0000000000000000     
 mdl_Ql__exp__2 =    1.0000000000000000     
 mdl_conjg__CKM22 =    1.0000000000000000     
 mdl_SCKM22 =    1.0000000000000000     
 mdl_CKM22 =    1.0000000000000000     
 mdl_SCKM22__exp__2 =    1.0000000000000000     
 mdl_MD__exp__2 =    0.0000000000000000     
 mdl_MU__exp__2 =    0.0000000000000000     
 mdl_MM__exp__2 =    0.0000000000000000     
 mdl_MTA__exp__2 =    0.0000000000000000     
 mdl_Ql__exp__4 =    1.0000000000000000     
 mdl_conjg__CKM11 =    1.0000000000000000     
 mdl_lhv =    1.0000000000000000     
 mdl_conjg__CKM31 =    0.0000000000000000     
 mdl_conjg__CKM32 =    0.0000000000000000     
 mdl_conjg__CKM33 =    1.0000000000000000     
 mdl_Ncol =    3.0000000000000000     
 mdl_CA =    3.0000000000000000     
 mdl_TF =   0.50000000000000000     
 mdl_CF =    1.3333333333333333     
 mdl_MW__exp__2 =    6461.7482250000012     
 mdl_MZ__exp__2 =    8315.1783937600012     
 mdl_sw2 =   0.22289722252391819     
 mdl_complexi =  (  0.0000000000000000     ,  1.0000000000000000     )
 mdl_cw =   0.88153433142225479     
 mdl_sqrt__sw2 =   0.47211992387942936     
 mdl_sw =   0.47211992387942936     
 mdl_MH__exp__2 =    15625.000000000000     
 mdl_sqrt__2 =    1.4142135623730951     
 mdl_I3d =  -0.50000000000000000     
 mdl_I3u =   0.50000000000000000     
 mdl_I3l =  -0.50000000000000000     
 mdl_I3v =   0.50000000000000000     
 mdl_Qd =  -0.33333333333333331     
 mdl_Qu =   0.66666666666666663     
 mdl_Ql =   -1.0000000000000000     
 mdl_Ncol__exp__2 =    9.0000000000000000     
 mdl_sw__exp__2 =   0.22289722252391816     
 mdl_MT__exp__2 =    29756.250000000000     
 mdl_cw__exp__2 =   0.77710277747608170     
 mdl_MT__exp__4 =    885434414.06250000     
 mdl_sw__exp__4 =    4.9683171808877089E-002
 mdl_MW__exp__4 =    41754190.123290665     
 mdl_MT__exp__3 =    5132953.1250000000     
 mdl_MH__exp__4 =    244140625.00000000     
 mdl_MZ__exp__4 =    69142191.720053151     
 mdl_MT__exp__6 =    26347207783447.266     
 mdl_MW__exp__6 =    269805063915.48602     
 mdl_MT__exp__8 =    7.8399410160620275E+017
 mdl_MW__exp__8 =    1743412392851903.8     
 mdl_MT__exp__10 =    2.3328724485919570E+022
 mdl_MW__exp__10 =    1.1265491934953794E+019
 mdl_MZ__exp__6 =    574929658687.79749     
 mdl_sw__exp__6 =    1.1074241002377336E-002
 mdl_sw__exp__3 =   0.10523421973092847     
 mdl_MZ__exp__3 =    758241.16129882948     
 mdl_cw__exp__4 =   0.60388872676104055     
 mdl_cw__exp__6 =   0.46928360685249931     
 mdl_MH__exp__8 =    59604644775390624.     
 mdl_MH__exp__6 =    3814697265625.0000     
 mdl_cw__exp__3 =   0.68504277738875496     
 mdl_MW__exp__3 =    519427.63106662512     
 mdl_sw__exp__8 =    2.4684175609903992E-003
 mdl_sw__exp__10 =    5.5020341837402442E-004
 mdl_Qd__exp__3 =   -3.7037037037037028E-002
 mdl_Qd__exp__2 =   0.11111111111111110     
 mdl_I3d__exp__2 =   0.25000000000000000     
 mdl_I3d__exp__3 =  -0.12500000000000000     
 mdl_Qu__exp__3 =   0.29629629629629622     
 mdl_Qu__exp__2 =   0.44444444444444442     
 mdl_I3u__exp__2 =   0.25000000000000000     
 mdl_I3u__exp__3 =   0.12500000000000000     
 mdl_Ql__exp__3 =   -1.0000000000000000     
 mdl_I3l__exp__2 =   0.25000000000000000     
 mdl_I3l__exp__3 =  -0.12500000000000000     
 mdl_I3v__exp__3 =   0.12500000000000000     
 mdl_Qu__exp__4 =   0.19753086419753083     
 mdl_Qd__exp__4 =    1.2345679012345677E-002
 mdl_I3l__exp__4 =    6.2500000000000000E-002
 mdl_I3u__exp__4 =    6.2500000000000000E-002
 mdl_I3d__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__2 =   0.25000000000000000     
 mdl_aEW =    7.5623975817934608E-003
 aEWM1 =    132.23319578006701     
 mdl_sqrt__aEW =    8.6962046789352085E-002
 mdl_ee =   0.30827242942882549     
 mdl_g1 =   0.34969985676163423     
 mdl_gw =   0.65295365401175598     
 mdl_vev =    246.21961912951551     
 mdl_vev__exp__2 =    60624.100844283676     
 mdl_lam =   0.12886789067712254     
 mdl_yt =   0.99078960633529489     
 mdl_muH =    88.388347648318444     
 mdl_I233 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_I333 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_AxialZUp =  -0.18517533314848042     
 mdl_AxialZDown =   0.18517533314848042     
 mdl_VectorZUp =    7.5108486645180356E-002
 mdl_VectorZDown =  -0.13014190989683039     
 mdl_AxialG0Up3 =  -0.70059404936883685     
 mdl_VectorHUp3 =  ( -0.0000000000000000     ,-0.70059404936883685     )
 mdl_VectorAUp =   0.20551495295255032     
 mdl_VectorADown =  -0.10275747647627516     
 mdl_VectorWmDxU =   0.23085397827612369     
 mdl_AxialWmDxU =  -0.23085397827612369     
 mdl_VectorWpUxD =   0.23085397827612369     
 mdl_AxialWpUxD =  -0.23085397827612369     
 mdl_VectorGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_VectorGmDx3U3 =  ( 0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGmDx3U3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_ee__exp__2 =    9.5031890745950198E-002
 mdl_ee__exp__3 =    2.9295711833468786E-002
 mdl_ee__exp__4 =    9.0310602587502144E-003
  Internal Params evaluated point by point
  ----------------------------------------
  
 mdl_sqrt__aS =   0.34351128074635334     
 mdl_G__exp__4 =    2.1987899468922913     
 mdl_G__exp__2 =    1.4828317324943823     
 mdl_G_UVc_1EPS_ =    3.1300472141406080E-003
 mdl_GWcft_UV_t_1EPS_ =   -3.1300472141406080E-003
 mdl_tWcft_UV_1EPS_ =   -1.8780283284843650E-002
 mdl_G__exp__3 =    1.8056676068262196     
 mdl_MU_R__exp__2 =    8315.2513440000002     
 mdl_GWcft_UV_t_FIN_ =    3.9906469785607433E-003
 mdl_tWcft_UV_FIN_ =   -1.0964958417604036E-003
  Couplings of hhh-model
  ---------------------------------
  
        GC_10 =  -0.12177E+01   0.00000E+00
        GC_11 =   0.00000E+00   0.12177E+01
       GC_116 =  -0.00000E+00  -0.70059E+00

 Collider parameters:
 --------------------

 Running at P P   machine @    13000.000000000000       GeV
 PDF set = lhapdf 
 alpha_s(Mz)= 0.1180 running at 3 loops.
 alpha_s(Mz)= 0.1180 running at 3 loops.
 Renormalization scale set on event-by-event basis
 Factorization   scale set on event-by-event basis


 Diagram information for  clustering has been set-up for nFKSprocess           1
 getting user params
Enter number of events and iterations: 
 Number of events and iterations           -1          12
Enter desired fractional accuracy: 
 Desired fractional accuracy:    2.9999999999999999E-002
 Enter alpha, beta for G_soft
   Enter alpha<0 to set G_soft=1 (no ME soft)
 for G_soft: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Enter alpha, beta for G_azi
   Enter alpha>0 to set G_azi=0 (no azi corr)
 for G_azi: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Doing the S and H events together
Suppress amplitude (0 no, 1 yes)? 
 Using suppressed amplitude.
Exact helicity sum (0 yes, n = number/event)? 
 Do MC over helicities for the virtuals
Enter Configuration Number: 
Running Configuration Number:    4
Enter running mode for MINT:
0 to set-up grids, 1 to integrate, 2 to generate events
 MINT running mode:           0
Set the three folding parameters for MINT
xi_i, phi_i, y_ij
           1           1           1
 'all ', 'born', 'real', 'virt', 'novi' or 'grid'?
 Enter 'born0' or 'virt0' to perform
  a pure n-body integration (no S functions)
 Process generated with [LOonly=QCD]. Setting abrv to "born".
 doing the born of this channel
 Normal integration (Sfunction != 1)
 Not subdividing B.W.
 about to integrate           10          -1          12           4
 imode is            0
channel    1 :     4 T        0        0  0.1000E+01  0.0000E+00  0.1000E+01
 ------- iteration           1
 Update # PS points (even):          800  -->          800
Using random seed offsets:     4 ,      1 ,      0
  with seed                   46
 Ranmar initialization seeds       27799        9421
 Total number of FKS directories is           1
 FKS process map (sum=           3 ) :
           1 -->           1 :           1
 ================================
 process combination map (specified per FKS dir):
  1 map         1
  1 inv. map    1
 ================================
tau_min   1     1 : 0.47000E+03  0.47000E+03  0.47000E+03
 bpower is   2.0000000000000000     
 Scale values (may change event by event):
 muR,  muR_reference:  0.277700D+03 0.277700D+03  1.00
 muF1, muF1_reference: 0.277700D+03 0.277700D+03  1.00
 muF2, muF2_reference: 0.277700D+03 0.277700D+03  1.00
 QES,  QES_reference:  0.277700D+03 0.277700D+03  1.00
  
 muR_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF1_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF2_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 QES_reference [functional form]: 
    H_T/2 := sum_i mT(i)/2, i=final state
  
 alpha_s=  0.10105956875144438     
ABS integral  = 0.3970E-01  +/-  0.4047E-02  (  10.194 %)
Integral      = 0.3970E-01  +/-  0.4047E-02  (  10.194 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2 per d.o.f. 0.0000E+00
accumulated results ABS integral  = 0.3970E-01  +/-  0.4047E-02  (  10.194 %)
accumulated results Integral      = 0.3970E-01  +/-  0.4047E-02  (  10.194 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.0000E+00
  1:  0                                                                                                   1
channel    1 :     4 T      800        0  0.3970E-01  0.3970E-01  0.2500E+00
 ------- iteration           2
 Update # PS points (even):         1600  -->         1600
ABS integral  = 0.4076E-01  +/-  0.1628E-02  (   3.996 %)
Integral      = 0.4076E-01  +/-  0.1628E-02  (   3.996 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.3483E-01
accumulated results ABS integral  = 0.4045E-01  +/-  0.1511E-02  (   3.735 %)
accumulated results Integral      = 0.4045E-01  +/-  0.1511E-02  (   3.735 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.3483E-01
  1:  0                                                                                                   1
channel    1 :     4 T     1600      800  0.4045E-01  0.4045E-01  0.6250E-01
 ------- iteration           3
 Update # PS points (even):         3200  -->         3072
ABS integral  = 0.4199E-01  +/-  0.1024E-02  (   2.438 %)
Integral      = 0.4199E-01  +/-  0.1024E-02  (   2.438 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.3681E+00
accumulated results ABS integral  = 0.4137E-01  +/-  0.8476E-03  (   2.049 %)
accumulated results Integral      = 0.4137E-01  +/-  0.8476E-03  (   2.049 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.2015E+00
  1:  0                                                                                                   1
channel    1 :     4 T     3072     1600  0.4137E-01  0.4137E-01  0.1562E-01
 ------- iteration           4
 Update # PS points (even):         6400  -->         6144
ABS integral  = 0.4141E-01  +/-  0.6993E-03  (   1.689 %)
Integral      = 0.4141E-01  +/-  0.6993E-03  (   1.689 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.8723E-03
accumulated results ABS integral  = 0.4139E-01  +/-  0.5394E-03  (   1.303 %)
accumulated results Integral      = 0.4139E-01  +/-  0.5394E-03  (   1.303 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.1346E+00
accumulated results last 3 iterations ABS integral  = 0.4146E-01  +/-  0.5443E-03  (   1.313 %)
accumulated results last 3 iterations Integral      = 0.4146E-01  +/-  0.5443E-03  (   1.313 %)
accumulated result last 3 iterrations Chi^2 per DoF = 0.1102E+00
  1:  0                                                                                                   1
 Found desired accuracy
channel    1 :     4 T     6142     3072  0.4139E-01  0.4139E-01  0.5000E-02
Thanks for using LHAPDF 6.1.6. Please make sure to cite the paper:
  Eur.Phys.J. C75 (2015) 3, 132  (http://arxiv.org/abs/1412.7420)
 -------
 Final result [ABS]:   4.1394185766267542E-002  +/-   5.3941402709741166E-004
 Final result:   4.1394085264688733E-002  +/-   5.3941470895959838E-004
 chi**2 per D.o.F.:  0.13460251466222006     
 Time spent in Born :   0.208319604    
 Time spent in PS_Generation :    6.19604327E-02
 Time spent in Reals_evaluation:    0.00000000    
 Time spent in MCsubtraction :    0.00000000    
 Time spent in Counter_terms :    0.00000000    
 Time spent in Integrated_CT :    0.00000000    
 Time spent in Virtuals :    0.00000000    
 Time spent in FxFx_cluster :    0.00000000    
 Time spent in Nbody_prefactor :   0.212247968    
 Time spent in N1body_prefactor :    0.00000000    
 Time spent in Adding_alphas_pdf :   0.197135597    
 Time spent in Reweight_scale :    0.00000000    
 Time spent in Reweight_pdf :    0.00000000    
 Time spent in Filling_plots :    0.00000000    
 Time spent in Applying_cuts :    2.18662024E-02
 Time spent in Sum_ident_contr :    1.45282820E-02
 Time spent in Pick_unwgt :    0.00000000    
 Time spent in Write_events :    0.00000000    
 Time spent in Other_tasks :   0.232706904    
 Time spent in Total :   0.948764980    
Time in seconds: 2



LOG file for integration channel /P0_gg_httx/GB5, 0
==== LHAPDF6 USING DEFAULT-TYPE LHAGLUE INTERFACE ====
LHAPDF 6.1.6 loading /afs/cern.ch/work/s/sesanche/private/TTH_k3/MG5_aMC_v2_5_5/HEPTools/lhapdf6/share/LHAPDF/NNPDF30_nnlo_as_0118/NNPDF30_nnlo_as_0118_0000.dat
NNPDF30_nnlo_as_0118 PDF set, member #0, version 2; LHAPDF ID = 261000
 ===============================================================
 INFO: MadFKS read these parameters from FKS_params.dat                                                  
 ===============================================================
  > IRPoleCheckThreshold      =    1.0000000000000001E-005
  > PrecisionVirtualAtRunTime =    1.0000000000000000E-003
  > NHelForMCoverHels         =            4
  > VirtualFraction           =    1.0000000000000000     
  > MinVirtualFraction        =    5.0000000000000001E-003
 ===============================================================
 A PDF is used, so alpha_s(MZ) is going to be modified
 Old value of alpha_s from param_card:   0.11799999999999999     
 New value of alpha_s from PDF lhapdf :  0.11800222249017472     
 using LHAPDF
WARNING: the value of maxjetflavorspecified in the run_card (  4) is inconsistent with the number of light flavours inthe model. Hence it will be set to:  5
 *****************************************************
 *               MadGraph/MadEvent                   *
 *        --------------------------------           *
 *          http://madgraph.hep.uiuc.edu             *
 *          http://madgraph.phys.ucl.ac.be           *
 *          http://madgraph.roma2.infn.it            *
 *        --------------------------------           *
 *                                                   *
 *          PARAMETER AND COUPLING VALUES            *
 *                                                   *
 *****************************************************

  External Params
  ---------------------------------
  
 MU_R =    91.188000000000002     
 mdl_Gf =    1.1663789999999999E-005
 mdl_MW =    80.385000000000005     
 aS =   0.11799999999999999     
 mdl_ymt =    172.50000000000000     
 mdl_MZ =    91.187600000000003     
 mdl_MT =    172.50000000000000     
 mdl_MH =    125.00000000000000     
 mdl_WZ =    2.5047899999999998     
 mdl_WW =    2.0929099999999998     
 mdl_WT =    0.0000000000000000     
 mdl_WH =    3.5138499999999998E-003
  Internal Params
  ---------------------------------
  
 mdl_yb =    0.0000000000000000     
 mdl_CKM31 =    0.0000000000000000     
 mdl_CKM32 =    0.0000000000000000     
 mdl_MB__exp__4 =    0.0000000000000000     
 mdl_MB__exp__2 =    0.0000000000000000     
 mdl_CKM11 =    1.0000000000000000     
 mdl_SCKM33 =    1.0000000000000000     
 mdl_SCKM11 =    1.0000000000000000     
 mdl_vep =    0.0000000000000000     
 mdl_CKM33 =    1.0000000000000000     
 mdl_CMSParam =    0.0000000000000000     
 mdl_MC__exp__2 =    0.0000000000000000     
 mdl_SCKM33__exp__2 =    1.0000000000000000     
 mdl_Ql__exp__2 =    1.0000000000000000     
 mdl_conjg__CKM22 =    1.0000000000000000     
 mdl_SCKM22 =    1.0000000000000000     
 mdl_CKM22 =    1.0000000000000000     
 mdl_SCKM22__exp__2 =    1.0000000000000000     
 mdl_MD__exp__2 =    0.0000000000000000     
 mdl_MU__exp__2 =    0.0000000000000000     
 mdl_MM__exp__2 =    0.0000000000000000     
 mdl_MTA__exp__2 =    0.0000000000000000     
 mdl_Ql__exp__4 =    1.0000000000000000     
 mdl_conjg__CKM11 =    1.0000000000000000     
 mdl_lhv =    1.0000000000000000     
 mdl_conjg__CKM31 =    0.0000000000000000     
 mdl_conjg__CKM32 =    0.0000000000000000     
 mdl_conjg__CKM33 =    1.0000000000000000     
 mdl_Ncol =    3.0000000000000000     
 mdl_CA =    3.0000000000000000     
 mdl_TF =   0.50000000000000000     
 mdl_CF =    1.3333333333333333     
 mdl_MW__exp__2 =    6461.7482250000012     
 mdl_MZ__exp__2 =    8315.1783937600012     
 mdl_sw2 =   0.22289722252391819     
 mdl_complexi =  (  0.0000000000000000     ,  1.0000000000000000     )
 mdl_cw =   0.88153433142225479     
 mdl_sqrt__sw2 =   0.47211992387942936     
 mdl_sw =   0.47211992387942936     
 mdl_MH__exp__2 =    15625.000000000000     
 mdl_sqrt__2 =    1.4142135623730951     
 mdl_I3d =  -0.50000000000000000     
 mdl_I3u =   0.50000000000000000     
 mdl_I3l =  -0.50000000000000000     
 mdl_I3v =   0.50000000000000000     
 mdl_Qd =  -0.33333333333333331     
 mdl_Qu =   0.66666666666666663     
 mdl_Ql =   -1.0000000000000000     
 mdl_Ncol__exp__2 =    9.0000000000000000     
 mdl_sw__exp__2 =   0.22289722252391816     
 mdl_MT__exp__2 =    29756.250000000000     
 mdl_cw__exp__2 =   0.77710277747608170     
 mdl_MT__exp__4 =    885434414.06250000     
 mdl_sw__exp__4 =    4.9683171808877089E-002
 mdl_MW__exp__4 =    41754190.123290665     
 mdl_MT__exp__3 =    5132953.1250000000     
 mdl_MH__exp__4 =    244140625.00000000     
 mdl_MZ__exp__4 =    69142191.720053151     
 mdl_MT__exp__6 =    26347207783447.266     
 mdl_MW__exp__6 =    269805063915.48602     
 mdl_MT__exp__8 =    7.8399410160620275E+017
 mdl_MW__exp__8 =    1743412392851903.8     
 mdl_MT__exp__10 =    2.3328724485919570E+022
 mdl_MW__exp__10 =    1.1265491934953794E+019
 mdl_MZ__exp__6 =    574929658687.79749     
 mdl_sw__exp__6 =    1.1074241002377336E-002
 mdl_sw__exp__3 =   0.10523421973092847     
 mdl_MZ__exp__3 =    758241.16129882948     
 mdl_cw__exp__4 =   0.60388872676104055     
 mdl_cw__exp__6 =   0.46928360685249931     
 mdl_MH__exp__8 =    59604644775390624.     
 mdl_MH__exp__6 =    3814697265625.0000     
 mdl_cw__exp__3 =   0.68504277738875496     
 mdl_MW__exp__3 =    519427.63106662512     
 mdl_sw__exp__8 =    2.4684175609903992E-003
 mdl_sw__exp__10 =    5.5020341837402442E-004
 mdl_Qd__exp__3 =   -3.7037037037037028E-002
 mdl_Qd__exp__2 =   0.11111111111111110     
 mdl_I3d__exp__2 =   0.25000000000000000     
 mdl_I3d__exp__3 =  -0.12500000000000000     
 mdl_Qu__exp__3 =   0.29629629629629622     
 mdl_Qu__exp__2 =   0.44444444444444442     
 mdl_I3u__exp__2 =   0.25000000000000000     
 mdl_I3u__exp__3 =   0.12500000000000000     
 mdl_Ql__exp__3 =   -1.0000000000000000     
 mdl_I3l__exp__2 =   0.25000000000000000     
 mdl_I3l__exp__3 =  -0.12500000000000000     
 mdl_I3v__exp__3 =   0.12500000000000000     
 mdl_Qu__exp__4 =   0.19753086419753083     
 mdl_Qd__exp__4 =    1.2345679012345677E-002
 mdl_I3l__exp__4 =    6.2500000000000000E-002
 mdl_I3u__exp__4 =    6.2500000000000000E-002
 mdl_I3d__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__2 =   0.25000000000000000     
 mdl_aEW =    7.5623975817934608E-003
 aEWM1 =    132.23319578006701     
 mdl_sqrt__aEW =    8.6962046789352085E-002
 mdl_ee =   0.30827242942882549     
 mdl_g1 =   0.34969985676163423     
 mdl_gw =   0.65295365401175598     
 mdl_vev =    246.21961912951551     
 mdl_vev__exp__2 =    60624.100844283676     
 mdl_lam =   0.12886789067712254     
 mdl_yt =   0.99078960633529489     
 mdl_muH =    88.388347648318444     
 mdl_I233 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_I333 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_AxialZUp =  -0.18517533314848042     
 mdl_AxialZDown =   0.18517533314848042     
 mdl_VectorZUp =    7.5108486645180356E-002
 mdl_VectorZDown =  -0.13014190989683039     
 mdl_AxialG0Up3 =  -0.70059404936883685     
 mdl_VectorHUp3 =  ( -0.0000000000000000     ,-0.70059404936883685     )
 mdl_VectorAUp =   0.20551495295255032     
 mdl_VectorADown =  -0.10275747647627516     
 mdl_VectorWmDxU =   0.23085397827612369     
 mdl_AxialWmDxU =  -0.23085397827612369     
 mdl_VectorWpUxD =   0.23085397827612369     
 mdl_AxialWpUxD =  -0.23085397827612369     
 mdl_VectorGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_VectorGmDx3U3 =  ( 0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGmDx3U3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_ee__exp__2 =    9.5031890745950198E-002
 mdl_ee__exp__3 =    2.9295711833468786E-002
 mdl_ee__exp__4 =    9.0310602587502144E-003
  Internal Params evaluated point by point
  ----------------------------------------
  
 mdl_sqrt__aS =   0.34351128074635334     
 mdl_G__exp__4 =    2.1987899468922913     
 mdl_G__exp__2 =    1.4828317324943823     
 mdl_G_UVc_1EPS_ =    3.1300472141406080E-003
 mdl_GWcft_UV_t_1EPS_ =   -3.1300472141406080E-003
 mdl_tWcft_UV_1EPS_ =   -1.8780283284843650E-002
 mdl_G__exp__3 =    1.8056676068262196     
 mdl_MU_R__exp__2 =    8315.2513440000002     
 mdl_GWcft_UV_t_FIN_ =    3.9906469785607433E-003
 mdl_tWcft_UV_FIN_ =   -1.0964958417604036E-003
  Couplings of hhh-model
  ---------------------------------
  
        GC_10 =  -0.12177E+01   0.00000E+00
        GC_11 =   0.00000E+00   0.12177E+01
       GC_116 =  -0.00000E+00  -0.70059E+00

 Collider parameters:
 --------------------

 Running at P P   machine @    13000.000000000000       GeV
 PDF set = lhapdf 
 alpha_s(Mz)= 0.1180 running at 3 loops.
 alpha_s(Mz)= 0.1180 running at 3 loops.
 Renormalization scale set on event-by-event basis
 Factorization   scale set on event-by-event basis


 Diagram information for  clustering has been set-up for nFKSprocess           1
 getting user params
Enter number of events and iterations: 
 Number of events and iterations           -1          12
Enter desired fractional accuracy: 
 Desired fractional accuracy:    2.9999999999999999E-002
 Enter alpha, beta for G_soft
   Enter alpha<0 to set G_soft=1 (no ME soft)
 for G_soft: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Enter alpha, beta for G_azi
   Enter alpha>0 to set G_azi=0 (no azi corr)
 for G_azi: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Doing the S and H events together
Suppress amplitude (0 no, 1 yes)? 
 Using suppressed amplitude.
Exact helicity sum (0 yes, n = number/event)? 
 Do MC over helicities for the virtuals
Enter Configuration Number: 
Running Configuration Number:    5
Enter running mode for MINT:
0 to set-up grids, 1 to integrate, 2 to generate events
 MINT running mode:           0
Set the three folding parameters for MINT
xi_i, phi_i, y_ij
           1           1           1
 'all ', 'born', 'real', 'virt', 'novi' or 'grid'?
 Enter 'born0' or 'virt0' to perform
  a pure n-body integration (no S functions)
 Process generated with [LOonly=QCD]. Setting abrv to "born".
 doing the born of this channel
 Normal integration (Sfunction != 1)
 Not subdividing B.W.
 about to integrate           10          -1          12           5
 imode is            0
channel    1 :     5 T        0        0  0.1000E+01  0.0000E+00  0.1000E+01
 ------- iteration           1
 Update # PS points (even):          800  -->          800
Using random seed offsets:     5 ,      1 ,      0
  with seed                   46
 Ranmar initialization seeds       27800        9421
 Total number of FKS directories is           1
 FKS process map (sum=           3 ) :
           1 -->           1 :           1
 ================================
 process combination map (specified per FKS dir):
  1 map         1
  1 inv. map    1
 ================================
tau_min   1     1 : 0.47000E+03  0.47000E+03  0.47000E+03
 bpower is   2.0000000000000000     
 Scale values (may change event by event):
 muR,  muR_reference:  0.810965D+03 0.810965D+03  1.00
 muF1, muF1_reference: 0.810965D+03 0.810965D+03  1.00
 muF2, muF2_reference: 0.810965D+03 0.810965D+03  1.00
 QES,  QES_reference:  0.810965D+03 0.810965D+03  1.00
  
 muR_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF1_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF2_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 QES_reference [functional form]: 
    H_T/2 := sum_i mT(i)/2, i=final state
  
 alpha_s=   8.8854769562066671E-002
ABS integral  = 0.2541E-01  +/-  0.3378E-02  (  13.293 %)
Integral      = 0.2541E-01  +/-  0.3378E-02  (  13.293 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2 per d.o.f. 0.0000E+00
accumulated results ABS integral  = 0.2541E-01  +/-  0.3378E-02  (  13.293 %)
accumulated results Integral      = 0.2541E-01  +/-  0.3378E-02  (  13.293 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.0000E+00
  1:  0                                                                                                   1
channel    1 :     5 T      800        0  0.2541E-01  0.2541E-01  0.2500E+00
 ------- iteration           2
 Update # PS points (even):         1600  -->         1600
ABS integral  = 0.2619E-01  +/-  0.1156E-02  (   4.416 %)
Integral      = 0.2619E-01  +/-  0.1156E-02  (   4.416 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.2933E-01
accumulated results ABS integral  = 0.2599E-01  +/-  0.1094E-02  (   4.210 %)
accumulated results Integral      = 0.2599E-01  +/-  0.1094E-02  (   4.210 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.2933E-01
  1:  0                                                                                                   1
channel    1 :     5 T     1600      800  0.2599E-01  0.2599E-01  0.6250E-01
 ------- iteration           3
 Update # PS points (even):         3200  -->         3072
ABS integral  = 0.2750E-01  +/-  0.7788E-03  (   2.832 %)
Integral      = 0.2750E-01  +/-  0.7788E-03  (   2.832 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.6518E+00
accumulated results ABS integral  = 0.2687E-01  +/-  0.6345E-03  (   2.361 %)
accumulated results Integral      = 0.2687E-01  +/-  0.6345E-03  (   2.361 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.3406E+00
  1:  0                                                                                                   1
channel    1 :     5 T     3072     1600  0.2687E-01  0.2687E-01  0.1562E-01
 ------- iteration           4
 Update # PS points (even):         6400  -->         6144
ABS integral  = 0.3032E-01  +/-  0.8082E-03  (   2.665 %)
Integral      = 0.3032E-01  +/-  0.8082E-03  (   2.665 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.5731E+01
accumulated results ABS integral  = 0.2839E-01  +/-  0.4991E-03  (   1.758 %)
accumulated results Integral      = 0.2839E-01  +/-  0.4991E-03  (   1.758 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.2137E+01
accumulated results last 3 iterations ABS integral  = 0.2846E-01  +/-  0.5046E-03  (   1.773 %)
accumulated results last 3 iterations Integral      = 0.2846E-01  +/-  0.5046E-03  (   1.773 %)
accumulated result last 3 iterrations Chi^2 per DoF = 0.2890E+01
  1:  0                                                                                                   1
channel    1 :     5 T     6144     3072  0.2839E-01  0.2839E-01  0.5000E-02
 ------- iteration           5
 Update # PS points (even):        12800  -->        12288
ABS integral  = 0.2846E-01  +/-  0.3819E-03  (   1.342 %)
Integral      = 0.2846E-01  +/-  0.3819E-03  (   1.342 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.6863E-02
accumulated results ABS integral  = 0.2843E-01  +/-  0.3033E-03  (   1.067 %)
accumulated results Integral      = 0.2843E-01  +/-  0.3033E-03  (   1.067 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.1605E+01
accumulated results last 3 iterations ABS integral  = 0.2863E-01  +/-  0.3156E-03  (   1.102 %)
accumulated results last 3 iterations Integral      = 0.2863E-01  +/-  0.3156E-03  (   1.102 %)
accumulated result last 3 iterrations Chi^2 per DoF = 0.1685E+01
  1:  0                                                                                                   1
 Found desired accuracy
channel    1 :     5 T    12289     6144  0.2843E-01  0.2843E-01  0.5000E-02
Thanks for using LHAPDF 6.1.6. Please make sure to cite the paper:
  Eur.Phys.J. C75 (2015) 3, 132  (http://arxiv.org/abs/1412.7420)
 -------
 Final result [ABS]:   2.8431377102345633E-002  +/-   3.0327078106349303E-004
 Final result:   2.8431295368218902E-002  +/-   3.0327116295805409E-004
 chi**2 per D.o.F.:   1.6048074442771612     
 Time spent in Born :   0.420844913    
 Time spent in PS_Generation :   0.120085940    
 Time spent in Reals_evaluation:    0.00000000    
 Time spent in MCsubtraction :    0.00000000    
 Time spent in Counter_terms :    0.00000000    
 Time spent in Integrated_CT :    0.00000000    
 Time spent in Virtuals :    0.00000000    
 Time spent in FxFx_cluster :    0.00000000    
 Time spent in Nbody_prefactor :   0.429150939    
 Time spent in N1body_prefactor :    0.00000000    
 Time spent in Adding_alphas_pdf :   0.397798240    
 Time spent in Reweight_scale :    0.00000000    
 Time spent in Reweight_pdf :    0.00000000    
 Time spent in Filling_plots :    0.00000000    
 Time spent in Applying_cuts :    4.39329930E-02
 Time spent in Sum_ident_contr :    2.96781696E-02
 Time spent in Pick_unwgt :    0.00000000    
 Time spent in Write_events :    0.00000000    
 Time spent in Other_tasks :   0.420301676    
 Time spent in Total :    1.86179304    
Time in seconds: 2



LOG file for integration channel /P0_gg_httx/GB6, 0
==== LHAPDF6 USING DEFAULT-TYPE LHAGLUE INTERFACE ====
LHAPDF 6.1.6 loading /afs/cern.ch/work/s/sesanche/private/TTH_k3/MG5_aMC_v2_5_5/HEPTools/lhapdf6/share/LHAPDF/NNPDF30_nnlo_as_0118/NNPDF30_nnlo_as_0118_0000.dat
NNPDF30_nnlo_as_0118 PDF set, member #0, version 2; LHAPDF ID = 261000
 ===============================================================
 INFO: MadFKS read these parameters from FKS_params.dat                                                  
 ===============================================================
  > IRPoleCheckThreshold      =    1.0000000000000001E-005
  > PrecisionVirtualAtRunTime =    1.0000000000000000E-003
  > NHelForMCoverHels         =            4
  > VirtualFraction           =    1.0000000000000000     
  > MinVirtualFraction        =    5.0000000000000001E-003
 ===============================================================
 A PDF is used, so alpha_s(MZ) is going to be modified
 Old value of alpha_s from param_card:   0.11799999999999999     
 New value of alpha_s from PDF lhapdf :  0.11800222249017472     
 using LHAPDF
WARNING: the value of maxjetflavorspecified in the run_card (  4) is inconsistent with the number of light flavours inthe model. Hence it will be set to:  5
 *****************************************************
 *               MadGraph/MadEvent                   *
 *        --------------------------------           *
 *          http://madgraph.hep.uiuc.edu             *
 *          http://madgraph.phys.ucl.ac.be           *
 *          http://madgraph.roma2.infn.it            *
 *        --------------------------------           *
 *                                                   *
 *          PARAMETER AND COUPLING VALUES            *
 *                                                   *
 *****************************************************

  External Params
  ---------------------------------
  
 MU_R =    91.188000000000002     
 mdl_Gf =    1.1663789999999999E-005
 mdl_MW =    80.385000000000005     
 aS =   0.11799999999999999     
 mdl_ymt =    172.50000000000000     
 mdl_MZ =    91.187600000000003     
 mdl_MT =    172.50000000000000     
 mdl_MH =    125.00000000000000     
 mdl_WZ =    2.5047899999999998     
 mdl_WW =    2.0929099999999998     
 mdl_WT =    0.0000000000000000     
 mdl_WH =    3.5138499999999998E-003
  Internal Params
  ---------------------------------
  
 mdl_yb =    0.0000000000000000     
 mdl_CKM31 =    0.0000000000000000     
 mdl_CKM32 =    0.0000000000000000     
 mdl_MB__exp__4 =    0.0000000000000000     
 mdl_MB__exp__2 =    0.0000000000000000     
 mdl_CKM11 =    1.0000000000000000     
 mdl_SCKM33 =    1.0000000000000000     
 mdl_SCKM11 =    1.0000000000000000     
 mdl_vep =    0.0000000000000000     
 mdl_CKM33 =    1.0000000000000000     
 mdl_CMSParam =    0.0000000000000000     
 mdl_MC__exp__2 =    0.0000000000000000     
 mdl_SCKM33__exp__2 =    1.0000000000000000     
 mdl_Ql__exp__2 =    1.0000000000000000     
 mdl_conjg__CKM22 =    1.0000000000000000     
 mdl_SCKM22 =    1.0000000000000000     
 mdl_CKM22 =    1.0000000000000000     
 mdl_SCKM22__exp__2 =    1.0000000000000000     
 mdl_MD__exp__2 =    0.0000000000000000     
 mdl_MU__exp__2 =    0.0000000000000000     
 mdl_MM__exp__2 =    0.0000000000000000     
 mdl_MTA__exp__2 =    0.0000000000000000     
 mdl_Ql__exp__4 =    1.0000000000000000     
 mdl_conjg__CKM11 =    1.0000000000000000     
 mdl_lhv =    1.0000000000000000     
 mdl_conjg__CKM31 =    0.0000000000000000     
 mdl_conjg__CKM32 =    0.0000000000000000     
 mdl_conjg__CKM33 =    1.0000000000000000     
 mdl_Ncol =    3.0000000000000000     
 mdl_CA =    3.0000000000000000     
 mdl_TF =   0.50000000000000000     
 mdl_CF =    1.3333333333333333     
 mdl_MW__exp__2 =    6461.7482250000012     
 mdl_MZ__exp__2 =    8315.1783937600012     
 mdl_sw2 =   0.22289722252391819     
 mdl_complexi =  (  0.0000000000000000     ,  1.0000000000000000     )
 mdl_cw =   0.88153433142225479     
 mdl_sqrt__sw2 =   0.47211992387942936     
 mdl_sw =   0.47211992387942936     
 mdl_MH__exp__2 =    15625.000000000000     
 mdl_sqrt__2 =    1.4142135623730951     
 mdl_I3d =  -0.50000000000000000     
 mdl_I3u =   0.50000000000000000     
 mdl_I3l =  -0.50000000000000000     
 mdl_I3v =   0.50000000000000000     
 mdl_Qd =  -0.33333333333333331     
 mdl_Qu =   0.66666666666666663     
 mdl_Ql =   -1.0000000000000000     
 mdl_Ncol__exp__2 =    9.0000000000000000     
 mdl_sw__exp__2 =   0.22289722252391816     
 mdl_MT__exp__2 =    29756.250000000000     
 mdl_cw__exp__2 =   0.77710277747608170     
 mdl_MT__exp__4 =    885434414.06250000     
 mdl_sw__exp__4 =    4.9683171808877089E-002
 mdl_MW__exp__4 =    41754190.123290665     
 mdl_MT__exp__3 =    5132953.1250000000     
 mdl_MH__exp__4 =    244140625.00000000     
 mdl_MZ__exp__4 =    69142191.720053151     
 mdl_MT__exp__6 =    26347207783447.266     
 mdl_MW__exp__6 =    269805063915.48602     
 mdl_MT__exp__8 =    7.8399410160620275E+017
 mdl_MW__exp__8 =    1743412392851903.8     
 mdl_MT__exp__10 =    2.3328724485919570E+022
 mdl_MW__exp__10 =    1.1265491934953794E+019
 mdl_MZ__exp__6 =    574929658687.79749     
 mdl_sw__exp__6 =    1.1074241002377336E-002
 mdl_sw__exp__3 =   0.10523421973092847     
 mdl_MZ__exp__3 =    758241.16129882948     
 mdl_cw__exp__4 =   0.60388872676104055     
 mdl_cw__exp__6 =   0.46928360685249931     
 mdl_MH__exp__8 =    59604644775390624.     
 mdl_MH__exp__6 =    3814697265625.0000     
 mdl_cw__exp__3 =   0.68504277738875496     
 mdl_MW__exp__3 =    519427.63106662512     
 mdl_sw__exp__8 =    2.4684175609903992E-003
 mdl_sw__exp__10 =    5.5020341837402442E-004
 mdl_Qd__exp__3 =   -3.7037037037037028E-002
 mdl_Qd__exp__2 =   0.11111111111111110     
 mdl_I3d__exp__2 =   0.25000000000000000     
 mdl_I3d__exp__3 =  -0.12500000000000000     
 mdl_Qu__exp__3 =   0.29629629629629622     
 mdl_Qu__exp__2 =   0.44444444444444442     
 mdl_I3u__exp__2 =   0.25000000000000000     
 mdl_I3u__exp__3 =   0.12500000000000000     
 mdl_Ql__exp__3 =   -1.0000000000000000     
 mdl_I3l__exp__2 =   0.25000000000000000     
 mdl_I3l__exp__3 =  -0.12500000000000000     
 mdl_I3v__exp__3 =   0.12500000000000000     
 mdl_Qu__exp__4 =   0.19753086419753083     
 mdl_Qd__exp__4 =    1.2345679012345677E-002
 mdl_I3l__exp__4 =    6.2500000000000000E-002
 mdl_I3u__exp__4 =    6.2500000000000000E-002
 mdl_I3d__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__2 =   0.25000000000000000     
 mdl_aEW =    7.5623975817934608E-003
 aEWM1 =    132.23319578006701     
 mdl_sqrt__aEW =    8.6962046789352085E-002
 mdl_ee =   0.30827242942882549     
 mdl_g1 =   0.34969985676163423     
 mdl_gw =   0.65295365401175598     
 mdl_vev =    246.21961912951551     
 mdl_vev__exp__2 =    60624.100844283676     
 mdl_lam =   0.12886789067712254     
 mdl_yt =   0.99078960633529489     
 mdl_muH =    88.388347648318444     
 mdl_I233 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_I333 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_AxialZUp =  -0.18517533314848042     
 mdl_AxialZDown =   0.18517533314848042     
 mdl_VectorZUp =    7.5108486645180356E-002
 mdl_VectorZDown =  -0.13014190989683039     
 mdl_AxialG0Up3 =  -0.70059404936883685     
 mdl_VectorHUp3 =  ( -0.0000000000000000     ,-0.70059404936883685     )
 mdl_VectorAUp =   0.20551495295255032     
 mdl_VectorADown =  -0.10275747647627516     
 mdl_VectorWmDxU =   0.23085397827612369     
 mdl_AxialWmDxU =  -0.23085397827612369     
 mdl_VectorWpUxD =   0.23085397827612369     
 mdl_AxialWpUxD =  -0.23085397827612369     
 mdl_VectorGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_VectorGmDx3U3 =  ( 0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGmDx3U3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_ee__exp__2 =    9.5031890745950198E-002
 mdl_ee__exp__3 =    2.9295711833468786E-002
 mdl_ee__exp__4 =    9.0310602587502144E-003
  Internal Params evaluated point by point
  ----------------------------------------
  
 mdl_sqrt__aS =   0.34351128074635334     
 mdl_G__exp__4 =    2.1987899468922913     
 mdl_G__exp__2 =    1.4828317324943823     
 mdl_G_UVc_1EPS_ =    3.1300472141406080E-003
 mdl_GWcft_UV_t_1EPS_ =   -3.1300472141406080E-003
 mdl_tWcft_UV_1EPS_ =   -1.8780283284843650E-002
 mdl_G__exp__3 =    1.8056676068262196     
 mdl_MU_R__exp__2 =    8315.2513440000002     
 mdl_GWcft_UV_t_FIN_ =    3.9906469785607433E-003
 mdl_tWcft_UV_FIN_ =   -1.0964958417604036E-003
  Couplings of hhh-model
  ---------------------------------
  
        GC_10 =  -0.12177E+01   0.00000E+00
        GC_11 =   0.00000E+00   0.12177E+01
       GC_116 =  -0.00000E+00  -0.70059E+00

 Collider parameters:
 --------------------

 Running at P P   machine @    13000.000000000000       GeV
 PDF set = lhapdf 
 alpha_s(Mz)= 0.1180 running at 3 loops.
 alpha_s(Mz)= 0.1180 running at 3 loops.
 Renormalization scale set on event-by-event basis
 Factorization   scale set on event-by-event basis


 Diagram information for  clustering has been set-up for nFKSprocess           1
 getting user params
Enter number of events and iterations: 
 Number of events and iterations           -1          12
Enter desired fractional accuracy: 
 Desired fractional accuracy:    2.9999999999999999E-002
 Enter alpha, beta for G_soft
   Enter alpha<0 to set G_soft=1 (no ME soft)
 for G_soft: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Enter alpha, beta for G_azi
   Enter alpha>0 to set G_azi=0 (no azi corr)
 for G_azi: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Doing the S and H events together
Suppress amplitude (0 no, 1 yes)? 
 Using suppressed amplitude.
Exact helicity sum (0 yes, n = number/event)? 
 Do MC over helicities for the virtuals
Enter Configuration Number: 
Running Configuration Number:    6
Enter running mode for MINT:
0 to set-up grids, 1 to integrate, 2 to generate events
 MINT running mode:           0
Set the three folding parameters for MINT
xi_i, phi_i, y_ij
           1           1           1
 'all ', 'born', 'real', 'virt', 'novi' or 'grid'?
 Enter 'born0' or 'virt0' to perform
  a pure n-body integration (no S functions)
 Process generated with [LOonly=QCD]. Setting abrv to "born".
 doing the born of this channel
 Normal integration (Sfunction != 1)
 Not subdividing B.W.
 about to integrate           10          -1          12           6
 imode is            0
channel    1 :     6 T        0        0  0.1000E+01  0.0000E+00  0.1000E+01
 ------- iteration           1
 Update # PS points (even):          800  -->          800
Using random seed offsets:     6 ,      1 ,      0
  with seed                   46
 Ranmar initialization seeds       27801        9421
 Total number of FKS directories is           1
 FKS process map (sum=           3 ) :
           1 -->           1 :           1
 ================================
 process combination map (specified per FKS dir):
  1 map         1
  1 inv. map    1
 ================================
tau_min   1     1 : 0.47000E+03  0.47000E+03  0.47000E+03
 bpower is   2.0000000000000000     
 Scale values (may change event by event):
 muR,  muR_reference:  0.294916D+03 0.294916D+03  1.00
 muF1, muF1_reference: 0.294916D+03 0.294916D+03  1.00
 muF2, muF2_reference: 0.294916D+03 0.294916D+03  1.00
 QES,  QES_reference:  0.294916D+03 0.294916D+03  1.00
  
 muR_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF1_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF2_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 QES_reference [functional form]: 
    H_T/2 := sum_i mT(i)/2, i=final state
  
 alpha_s=  0.10028433063502812     
ABS integral  = 0.4055E-01  +/-  0.4499E-02  (  11.095 %)
Integral      = 0.4055E-01  +/-  0.4499E-02  (  11.095 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2 per d.o.f. 0.0000E+00
accumulated results ABS integral  = 0.4055E-01  +/-  0.4499E-02  (  11.095 %)
accumulated results Integral      = 0.4055E-01  +/-  0.4499E-02  (  11.095 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.0000E+00
  1:  0                                                                                                   1
channel    1 :     6 T      800        0  0.4055E-01  0.4055E-01  0.2500E+00
 ------- iteration           2
 Update # PS points (even):         1600  -->         1600
ABS integral  = 0.4138E-01  +/-  0.1844E-02  (   4.456 %)
Integral      = 0.4138E-01  +/-  0.1844E-02  (   4.456 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.1710E-01
accumulated results ABS integral  = 0.4113E-01  +/-  0.1706E-02  (   4.147 %)
accumulated results Integral      = 0.4113E-01  +/-  0.1706E-02  (   4.147 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.1710E-01
  1:  0                                                                                                   1
channel    1 :     6 T     1600      800  0.4113E-01  0.4113E-01  0.6250E-01
 ------- iteration           3
 Update # PS points (even):         3200  -->         3072
ABS integral  = 0.4183E-01  +/-  0.1019E-02  (   2.436 %)
Integral      = 0.4183E-01  +/-  0.1019E-02  (   2.436 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.6530E-01
accumulated results ABS integral  = 0.4157E-01  +/-  0.8749E-03  (   2.105 %)
accumulated results Integral      = 0.4157E-01  +/-  0.8749E-03  (   2.105 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.4120E-01
  1:  0                                                                                                   1
channel    1 :     6 T     3072     1600  0.4157E-01  0.4157E-01  0.1562E-01
 ------- iteration           4
 Update # PS points (even):         6400  -->         6144
ABS integral  = 0.4051E-01  +/-  0.6321E-03  (   1.560 %)
Integral      = 0.4051E-01  +/-  0.6321E-03  (   1.560 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.4971E+00
accumulated results ABS integral  = 0.4095E-01  +/-  0.5123E-03  (   1.251 %)
accumulated results Integral      = 0.4095E-01  +/-  0.5123E-03  (   1.251 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.1932E+00
accumulated results last 3 iterations ABS integral  = 0.4099E-01  +/-  0.5157E-03  (   1.258 %)
accumulated results last 3 iterations Integral      = 0.4099E-01  +/-  0.5157E-03  (   1.258 %)
accumulated result last 3 iterrations Chi^2 per DoF = 0.3027E+00
  1:  0                                                                                                   1
 Found desired accuracy
channel    1 :     6 T     6142     3072  0.4095E-01  0.4095E-01  0.5000E-02
Thanks for using LHAPDF 6.1.6. Please make sure to cite the paper:
  Eur.Phys.J. C75 (2015) 3, 132  (http://arxiv.org/abs/1412.7420)
 -------
 Final result [ABS]:   4.0953995242831012E-002  +/-   5.1234074288698740E-004
 Final result:   4.0953885306275910E-002  +/-   5.1234159853398554E-004
 chi**2 per D.o.F.:  0.19316237959050175     
 Time spent in Born :   0.204570189    
 Time spent in PS_Generation :    5.89857996E-02
 Time spent in Reals_evaluation:    0.00000000    
 Time spent in MCsubtraction :    0.00000000    
 Time spent in Counter_terms :    0.00000000    
 Time spent in Integrated_CT :    0.00000000    
 Time spent in Virtuals :    0.00000000    
 Time spent in FxFx_cluster :    0.00000000    
 Time spent in Nbody_prefactor :   0.208215684    
 Time spent in N1body_prefactor :    0.00000000    
 Time spent in Adding_alphas_pdf :   0.194391221    
 Time spent in Reweight_scale :    0.00000000    
 Time spent in Reweight_pdf :    0.00000000    
 Time spent in Filling_plots :    0.00000000    
 Time spent in Applying_cuts :    2.15044394E-02
 Time spent in Sum_ident_contr :    1.44042969E-02
 Time spent in Pick_unwgt :    0.00000000    
 Time spent in Write_events :    0.00000000    
 Time spent in Other_tasks :   0.227161348    
 Time spent in Total :   0.929233015    
Time in seconds: 2



LOG file for integration channel /P0_gg_httx/GB7, 0
==== LHAPDF6 USING DEFAULT-TYPE LHAGLUE INTERFACE ====
LHAPDF 6.1.6 loading /afs/cern.ch/work/s/sesanche/private/TTH_k3/MG5_aMC_v2_5_5/HEPTools/lhapdf6/share/LHAPDF/NNPDF30_nnlo_as_0118/NNPDF30_nnlo_as_0118_0000.dat
NNPDF30_nnlo_as_0118 PDF set, member #0, version 2; LHAPDF ID = 261000
 ===============================================================
 INFO: MadFKS read these parameters from FKS_params.dat                                                  
 ===============================================================
  > IRPoleCheckThreshold      =    1.0000000000000001E-005
  > PrecisionVirtualAtRunTime =    1.0000000000000000E-003
  > NHelForMCoverHels         =            4
  > VirtualFraction           =    1.0000000000000000     
  > MinVirtualFraction        =    5.0000000000000001E-003
 ===============================================================
 A PDF is used, so alpha_s(MZ) is going to be modified
 Old value of alpha_s from param_card:   0.11799999999999999     
 New value of alpha_s from PDF lhapdf :  0.11800222249017472     
 using LHAPDF
WARNING: the value of maxjetflavorspecified in the run_card (  4) is inconsistent with the number of light flavours inthe model. Hence it will be set to:  5
 *****************************************************
 *               MadGraph/MadEvent                   *
 *        --------------------------------           *
 *          http://madgraph.hep.uiuc.edu             *
 *          http://madgraph.phys.ucl.ac.be           *
 *          http://madgraph.roma2.infn.it            *
 *        --------------------------------           *
 *                                                   *
 *          PARAMETER AND COUPLING VALUES            *
 *                                                   *
 *****************************************************

  External Params
  ---------------------------------
  
 MU_R =    91.188000000000002     
 mdl_Gf =    1.1663789999999999E-005
 mdl_MW =    80.385000000000005     
 aS =   0.11799999999999999     
 mdl_ymt =    172.50000000000000     
 mdl_MZ =    91.187600000000003     
 mdl_MT =    172.50000000000000     
 mdl_MH =    125.00000000000000     
 mdl_WZ =    2.5047899999999998     
 mdl_WW =    2.0929099999999998     
 mdl_WT =    0.0000000000000000     
 mdl_WH =    3.5138499999999998E-003
  Internal Params
  ---------------------------------
  
 mdl_yb =    0.0000000000000000     
 mdl_CKM31 =    0.0000000000000000     
 mdl_CKM32 =    0.0000000000000000     
 mdl_MB__exp__4 =    0.0000000000000000     
 mdl_MB__exp__2 =    0.0000000000000000     
 mdl_CKM11 =    1.0000000000000000     
 mdl_SCKM33 =    1.0000000000000000     
 mdl_SCKM11 =    1.0000000000000000     
 mdl_vep =    0.0000000000000000     
 mdl_CKM33 =    1.0000000000000000     
 mdl_CMSParam =    0.0000000000000000     
 mdl_MC__exp__2 =    0.0000000000000000     
 mdl_SCKM33__exp__2 =    1.0000000000000000     
 mdl_Ql__exp__2 =    1.0000000000000000     
 mdl_conjg__CKM22 =    1.0000000000000000     
 mdl_SCKM22 =    1.0000000000000000     
 mdl_CKM22 =    1.0000000000000000     
 mdl_SCKM22__exp__2 =    1.0000000000000000     
 mdl_MD__exp__2 =    0.0000000000000000     
 mdl_MU__exp__2 =    0.0000000000000000     
 mdl_MM__exp__2 =    0.0000000000000000     
 mdl_MTA__exp__2 =    0.0000000000000000     
 mdl_Ql__exp__4 =    1.0000000000000000     
 mdl_conjg__CKM11 =    1.0000000000000000     
 mdl_lhv =    1.0000000000000000     
 mdl_conjg__CKM31 =    0.0000000000000000     
 mdl_conjg__CKM32 =    0.0000000000000000     
 mdl_conjg__CKM33 =    1.0000000000000000     
 mdl_Ncol =    3.0000000000000000     
 mdl_CA =    3.0000000000000000     
 mdl_TF =   0.50000000000000000     
 mdl_CF =    1.3333333333333333     
 mdl_MW__exp__2 =    6461.7482250000012     
 mdl_MZ__exp__2 =    8315.1783937600012     
 mdl_sw2 =   0.22289722252391819     
 mdl_complexi =  (  0.0000000000000000     ,  1.0000000000000000     )
 mdl_cw =   0.88153433142225479     
 mdl_sqrt__sw2 =   0.47211992387942936     
 mdl_sw =   0.47211992387942936     
 mdl_MH__exp__2 =    15625.000000000000     
 mdl_sqrt__2 =    1.4142135623730951     
 mdl_I3d =  -0.50000000000000000     
 mdl_I3u =   0.50000000000000000     
 mdl_I3l =  -0.50000000000000000     
 mdl_I3v =   0.50000000000000000     
 mdl_Qd =  -0.33333333333333331     
 mdl_Qu =   0.66666666666666663     
 mdl_Ql =   -1.0000000000000000     
 mdl_Ncol__exp__2 =    9.0000000000000000     
 mdl_sw__exp__2 =   0.22289722252391816     
 mdl_MT__exp__2 =    29756.250000000000     
 mdl_cw__exp__2 =   0.77710277747608170     
 mdl_MT__exp__4 =    885434414.06250000     
 mdl_sw__exp__4 =    4.9683171808877089E-002
 mdl_MW__exp__4 =    41754190.123290665     
 mdl_MT__exp__3 =    5132953.1250000000     
 mdl_MH__exp__4 =    244140625.00000000     
 mdl_MZ__exp__4 =    69142191.720053151     
 mdl_MT__exp__6 =    26347207783447.266     
 mdl_MW__exp__6 =    269805063915.48602     
 mdl_MT__exp__8 =    7.8399410160620275E+017
 mdl_MW__exp__8 =    1743412392851903.8     
 mdl_MT__exp__10 =    2.3328724485919570E+022
 mdl_MW__exp__10 =    1.1265491934953794E+019
 mdl_MZ__exp__6 =    574929658687.79749     
 mdl_sw__exp__6 =    1.1074241002377336E-002
 mdl_sw__exp__3 =   0.10523421973092847     
 mdl_MZ__exp__3 =    758241.16129882948     
 mdl_cw__exp__4 =   0.60388872676104055     
 mdl_cw__exp__6 =   0.46928360685249931     
 mdl_MH__exp__8 =    59604644775390624.     
 mdl_MH__exp__6 =    3814697265625.0000     
 mdl_cw__exp__3 =   0.68504277738875496     
 mdl_MW__exp__3 =    519427.63106662512     
 mdl_sw__exp__8 =    2.4684175609903992E-003
 mdl_sw__exp__10 =    5.5020341837402442E-004
 mdl_Qd__exp__3 =   -3.7037037037037028E-002
 mdl_Qd__exp__2 =   0.11111111111111110     
 mdl_I3d__exp__2 =   0.25000000000000000     
 mdl_I3d__exp__3 =  -0.12500000000000000     
 mdl_Qu__exp__3 =   0.29629629629629622     
 mdl_Qu__exp__2 =   0.44444444444444442     
 mdl_I3u__exp__2 =   0.25000000000000000     
 mdl_I3u__exp__3 =   0.12500000000000000     
 mdl_Ql__exp__3 =   -1.0000000000000000     
 mdl_I3l__exp__2 =   0.25000000000000000     
 mdl_I3l__exp__3 =  -0.12500000000000000     
 mdl_I3v__exp__3 =   0.12500000000000000     
 mdl_Qu__exp__4 =   0.19753086419753083     
 mdl_Qd__exp__4 =    1.2345679012345677E-002
 mdl_I3l__exp__4 =    6.2500000000000000E-002
 mdl_I3u__exp__4 =    6.2500000000000000E-002
 mdl_I3d__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__2 =   0.25000000000000000     
 mdl_aEW =    7.5623975817934608E-003
 aEWM1 =    132.23319578006701     
 mdl_sqrt__aEW =    8.6962046789352085E-002
 mdl_ee =   0.30827242942882549     
 mdl_g1 =   0.34969985676163423     
 mdl_gw =   0.65295365401175598     
 mdl_vev =    246.21961912951551     
 mdl_vev__exp__2 =    60624.100844283676     
 mdl_lam =   0.12886789067712254     
 mdl_yt =   0.99078960633529489     
 mdl_muH =    88.388347648318444     
 mdl_I233 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_I333 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_AxialZUp =  -0.18517533314848042     
 mdl_AxialZDown =   0.18517533314848042     
 mdl_VectorZUp =    7.5108486645180356E-002
 mdl_VectorZDown =  -0.13014190989683039     
 mdl_AxialG0Up3 =  -0.70059404936883685     
 mdl_VectorHUp3 =  ( -0.0000000000000000     ,-0.70059404936883685     )
 mdl_VectorAUp =   0.20551495295255032     
 mdl_VectorADown =  -0.10275747647627516     
 mdl_VectorWmDxU =   0.23085397827612369     
 mdl_AxialWmDxU =  -0.23085397827612369     
 mdl_VectorWpUxD =   0.23085397827612369     
 mdl_AxialWpUxD =  -0.23085397827612369     
 mdl_VectorGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_VectorGmDx3U3 =  ( 0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGmDx3U3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_ee__exp__2 =    9.5031890745950198E-002
 mdl_ee__exp__3 =    2.9295711833468786E-002
 mdl_ee__exp__4 =    9.0310602587502144E-003
  Internal Params evaluated point by point
  ----------------------------------------
  
 mdl_sqrt__aS =   0.34351128074635334     
 mdl_G__exp__4 =    2.1987899468922913     
 mdl_G__exp__2 =    1.4828317324943823     
 mdl_G_UVc_1EPS_ =    3.1300472141406080E-003
 mdl_GWcft_UV_t_1EPS_ =   -3.1300472141406080E-003
 mdl_tWcft_UV_1EPS_ =   -1.8780283284843650E-002
 mdl_G__exp__3 =    1.8056676068262196     
 mdl_MU_R__exp__2 =    8315.2513440000002     
 mdl_GWcft_UV_t_FIN_ =    3.9906469785607433E-003
 mdl_tWcft_UV_FIN_ =   -1.0964958417604036E-003
  Couplings of hhh-model
  ---------------------------------
  
        GC_10 =  -0.12177E+01   0.00000E+00
        GC_11 =   0.00000E+00   0.12177E+01
       GC_116 =  -0.00000E+00  -0.70059E+00

 Collider parameters:
 --------------------

 Running at P P   machine @    13000.000000000000       GeV
 PDF set = lhapdf 
 alpha_s(Mz)= 0.1180 running at 3 loops.
 alpha_s(Mz)= 0.1180 running at 3 loops.
 Renormalization scale set on event-by-event basis
 Factorization   scale set on event-by-event basis


 Diagram information for  clustering has been set-up for nFKSprocess           1
 getting user params
Enter number of events and iterations: 
 Number of events and iterations           -1          12
Enter desired fractional accuracy: 
 Desired fractional accuracy:    2.9999999999999999E-002
 Enter alpha, beta for G_soft
   Enter alpha<0 to set G_soft=1 (no ME soft)
 for G_soft: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Enter alpha, beta for G_azi
   Enter alpha>0 to set G_azi=0 (no azi corr)
 for G_azi: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Doing the S and H events together
Suppress amplitude (0 no, 1 yes)? 
 Using suppressed amplitude.
Exact helicity sum (0 yes, n = number/event)? 
 Do MC over helicities for the virtuals
Enter Configuration Number: 
Running Configuration Number:    7
Enter running mode for MINT:
0 to set-up grids, 1 to integrate, 2 to generate events
 MINT running mode:           0
Set the three folding parameters for MINT
xi_i, phi_i, y_ij
           1           1           1
 'all ', 'born', 'real', 'virt', 'novi' or 'grid'?
 Enter 'born0' or 'virt0' to perform
  a pure n-body integration (no S functions)
 Process generated with [LOonly=QCD]. Setting abrv to "born".
 doing the born of this channel
 Normal integration (Sfunction != 1)
 Not subdividing B.W.
 about to integrate           10          -1          12           7
 imode is            0
channel    1 :     7 T        0        0  0.1000E+01  0.0000E+00  0.1000E+01
 ------- iteration           1
 Update # PS points (even):          800  -->          800
Using random seed offsets:     7 ,      1 ,      0
  with seed                   46
 Ranmar initialization seeds       27802        9421
 Total number of FKS directories is           1
 FKS process map (sum=           3 ) :
           1 -->           1 :           1
 ================================
 process combination map (specified per FKS dir):
  1 map         1
  1 inv. map    1
 ================================
tau_min   1     1 : 0.47000E+03  0.47000E+03  0.47000E+03
 bpower is   2.0000000000000000     
 Scale values (may change event by event):
 muR,  muR_reference:  0.361860D+03 0.361860D+03  1.00
 muF1, muF1_reference: 0.361860D+03 0.361860D+03  1.00
 muF2, muF2_reference: 0.361860D+03 0.361860D+03  1.00
 QES,  QES_reference:  0.361860D+03 0.361860D+03  1.00
  
 muR_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF1_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF2_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 QES_reference [functional form]: 
    H_T/2 := sum_i mT(i)/2, i=final state
  
 alpha_s=   9.7736873941481853E-002
ABS integral  = 0.3686E-01  +/-  0.3134E-02  (   8.502 %)
Integral      = 0.3686E-01  +/-  0.3134E-02  (   8.502 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2 per d.o.f. 0.0000E+00
accumulated results ABS integral  = 0.3686E-01  +/-  0.3134E-02  (   8.502 %)
accumulated results Integral      = 0.3686E-01  +/-  0.3134E-02  (   8.502 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.0000E+00
  1:  0                                                                                                   1
channel    1 :     7 T      800        0  0.3686E-01  0.3686E-01  0.2500E+00
 ------- iteration           2
 Update # PS points (even):         1600  -->         1600
ABS integral  = 0.4001E-01  +/-  0.1666E-02  (   4.164 %)
Integral      = 0.4001E-01  +/-  0.1666E-02  (   4.164 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.4298E+00
accumulated results ABS integral  = 0.3892E-01  +/-  0.1471E-02  (   3.780 %)
accumulated results Integral      = 0.3892E-01  +/-  0.1471E-02  (   3.780 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.4298E+00
  1:  0                                                                                                   1
channel    1 :     7 T     1600      800  0.3892E-01  0.3892E-01  0.6250E-01
 ------- iteration           3
 Update # PS points (even):         3200  -->         3072
ABS integral  = 0.3988E-01  +/-  0.9495E-03  (   2.381 %)
Integral      = 0.3988E-01  +/-  0.9495E-03  (   2.381 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.1578E+00
accumulated results ABS integral  = 0.3950E-01  +/-  0.7978E-03  (   2.019 %)
accumulated results Integral      = 0.3950E-01  +/-  0.7978E-03  (   2.019 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.2938E+00
  1:  0                                                                                                   1
channel    1 :     7 T     3072     1600  0.3950E-01  0.3950E-01  0.1562E-01
 ------- iteration           4
 Update # PS points (even):         6400  -->         6144
ABS integral  = 0.3919E-01  +/-  0.6073E-03  (   1.550 %)
Integral      = 0.3919E-01  +/-  0.6073E-03  (   1.550 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.5063E-01
accumulated results ABS integral  = 0.3932E-01  +/-  0.4832E-03  (   1.229 %)
accumulated results Integral      = 0.3932E-01  +/-  0.4832E-03  (   1.229 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.2127E+00
accumulated results last 3 iterations ABS integral  = 0.3950E-01  +/-  0.4890E-03  (   1.238 %)
accumulated results last 3 iterations Integral      = 0.3950E-01  +/-  0.4890E-03  (   1.238 %)
accumulated result last 3 iterrations Chi^2 per DoF = 0.1350E+00
  1:  0                                                                                                   1
 Found desired accuracy
channel    1 :     7 T     6144     3072  0.3932E-01  0.3932E-01  0.5000E-02
Thanks for using LHAPDF 6.1.6. Please make sure to cite the paper:
  Eur.Phys.J. C75 (2015) 3, 132  (http://arxiv.org/abs/1412.7420)
 -------
 Final result [ABS]:   3.9324053300251419E-002  +/-   4.8319827436908849E-004
 Final result:   3.9323915892028306E-002  +/-   4.8319931264117675E-004
 chi**2 per D.o.F.:  0.21271971014425473     
 Time spent in Born :   0.204944760    
 Time spent in PS_Generation :    5.89746051E-02
 Time spent in Reals_evaluation:    0.00000000    
 Time spent in MCsubtraction :    0.00000000    
 Time spent in Counter_terms :    0.00000000    
 Time spent in Integrated_CT :    0.00000000    
 Time spent in Virtuals :    0.00000000    
 Time spent in FxFx_cluster :    0.00000000    
 Time spent in Nbody_prefactor :   0.208488181    
 Time spent in N1body_prefactor :    0.00000000    
 Time spent in Adding_alphas_pdf :   0.193245634    
 Time spent in Reweight_scale :    0.00000000    
 Time spent in Reweight_pdf :    0.00000000    
 Time spent in Filling_plots :    0.00000000    
 Time spent in Applying_cuts :    2.14723758E-02
 Time spent in Sum_ident_contr :    1.43757537E-02
 Time spent in Pick_unwgt :    0.00000000    
 Time spent in Write_events :    0.00000000    
 Time spent in Other_tasks :   0.227242708    
 Time spent in Total :   0.928744018    
Time in seconds: 2



LOG file for integration channel /P0_gg_httx/GB8, 0
==== LHAPDF6 USING DEFAULT-TYPE LHAGLUE INTERFACE ====
LHAPDF 6.1.6 loading /afs/cern.ch/work/s/sesanche/private/TTH_k3/MG5_aMC_v2_5_5/HEPTools/lhapdf6/share/LHAPDF/NNPDF30_nnlo_as_0118/NNPDF30_nnlo_as_0118_0000.dat
NNPDF30_nnlo_as_0118 PDF set, member #0, version 2; LHAPDF ID = 261000
 ===============================================================
 INFO: MadFKS read these parameters from FKS_params.dat                                                  
 ===============================================================
  > IRPoleCheckThreshold      =    1.0000000000000001E-005
  > PrecisionVirtualAtRunTime =    1.0000000000000000E-003
  > NHelForMCoverHels         =            4
  > VirtualFraction           =    1.0000000000000000     
  > MinVirtualFraction        =    5.0000000000000001E-003
 ===============================================================
 A PDF is used, so alpha_s(MZ) is going to be modified
 Old value of alpha_s from param_card:   0.11799999999999999     
 New value of alpha_s from PDF lhapdf :  0.11800222249017472     
 using LHAPDF
WARNING: the value of maxjetflavorspecified in the run_card (  4) is inconsistent with the number of light flavours inthe model. Hence it will be set to:  5
 *****************************************************
 *               MadGraph/MadEvent                   *
 *        --------------------------------           *
 *          http://madgraph.hep.uiuc.edu             *
 *          http://madgraph.phys.ucl.ac.be           *
 *          http://madgraph.roma2.infn.it            *
 *        --------------------------------           *
 *                                                   *
 *          PARAMETER AND COUPLING VALUES            *
 *                                                   *
 *****************************************************

  External Params
  ---------------------------------
  
 MU_R =    91.188000000000002     
 mdl_Gf =    1.1663789999999999E-005
 mdl_MW =    80.385000000000005     
 aS =   0.11799999999999999     
 mdl_ymt =    172.50000000000000     
 mdl_MZ =    91.187600000000003     
 mdl_MT =    172.50000000000000     
 mdl_MH =    125.00000000000000     
 mdl_WZ =    2.5047899999999998     
 mdl_WW =    2.0929099999999998     
 mdl_WT =    0.0000000000000000     
 mdl_WH =    3.5138499999999998E-003
  Internal Params
  ---------------------------------
  
 mdl_yb =    0.0000000000000000     
 mdl_CKM31 =    0.0000000000000000     
 mdl_CKM32 =    0.0000000000000000     
 mdl_MB__exp__4 =    0.0000000000000000     
 mdl_MB__exp__2 =    0.0000000000000000     
 mdl_CKM11 =    1.0000000000000000     
 mdl_SCKM33 =    1.0000000000000000     
 mdl_SCKM11 =    1.0000000000000000     
 mdl_vep =    0.0000000000000000     
 mdl_CKM33 =    1.0000000000000000     
 mdl_CMSParam =    0.0000000000000000     
 mdl_MC__exp__2 =    0.0000000000000000     
 mdl_SCKM33__exp__2 =    1.0000000000000000     
 mdl_Ql__exp__2 =    1.0000000000000000     
 mdl_conjg__CKM22 =    1.0000000000000000     
 mdl_SCKM22 =    1.0000000000000000     
 mdl_CKM22 =    1.0000000000000000     
 mdl_SCKM22__exp__2 =    1.0000000000000000     
 mdl_MD__exp__2 =    0.0000000000000000     
 mdl_MU__exp__2 =    0.0000000000000000     
 mdl_MM__exp__2 =    0.0000000000000000     
 mdl_MTA__exp__2 =    0.0000000000000000     
 mdl_Ql__exp__4 =    1.0000000000000000     
 mdl_conjg__CKM11 =    1.0000000000000000     
 mdl_lhv =    1.0000000000000000     
 mdl_conjg__CKM31 =    0.0000000000000000     
 mdl_conjg__CKM32 =    0.0000000000000000     
 mdl_conjg__CKM33 =    1.0000000000000000     
 mdl_Ncol =    3.0000000000000000     
 mdl_CA =    3.0000000000000000     
 mdl_TF =   0.50000000000000000     
 mdl_CF =    1.3333333333333333     
 mdl_MW__exp__2 =    6461.7482250000012     
 mdl_MZ__exp__2 =    8315.1783937600012     
 mdl_sw2 =   0.22289722252391819     
 mdl_complexi =  (  0.0000000000000000     ,  1.0000000000000000     )
 mdl_cw =   0.88153433142225479     
 mdl_sqrt__sw2 =   0.47211992387942936     
 mdl_sw =   0.47211992387942936     
 mdl_MH__exp__2 =    15625.000000000000     
 mdl_sqrt__2 =    1.4142135623730951     
 mdl_I3d =  -0.50000000000000000     
 mdl_I3u =   0.50000000000000000     
 mdl_I3l =  -0.50000000000000000     
 mdl_I3v =   0.50000000000000000     
 mdl_Qd =  -0.33333333333333331     
 mdl_Qu =   0.66666666666666663     
 mdl_Ql =   -1.0000000000000000     
 mdl_Ncol__exp__2 =    9.0000000000000000     
 mdl_sw__exp__2 =   0.22289722252391816     
 mdl_MT__exp__2 =    29756.250000000000     
 mdl_cw__exp__2 =   0.77710277747608170     
 mdl_MT__exp__4 =    885434414.06250000     
 mdl_sw__exp__4 =    4.9683171808877089E-002
 mdl_MW__exp__4 =    41754190.123290665     
 mdl_MT__exp__3 =    5132953.1250000000     
 mdl_MH__exp__4 =    244140625.00000000     
 mdl_MZ__exp__4 =    69142191.720053151     
 mdl_MT__exp__6 =    26347207783447.266     
 mdl_MW__exp__6 =    269805063915.48602     
 mdl_MT__exp__8 =    7.8399410160620275E+017
 mdl_MW__exp__8 =    1743412392851903.8     
 mdl_MT__exp__10 =    2.3328724485919570E+022
 mdl_MW__exp__10 =    1.1265491934953794E+019
 mdl_MZ__exp__6 =    574929658687.79749     
 mdl_sw__exp__6 =    1.1074241002377336E-002
 mdl_sw__exp__3 =   0.10523421973092847     
 mdl_MZ__exp__3 =    758241.16129882948     
 mdl_cw__exp__4 =   0.60388872676104055     
 mdl_cw__exp__6 =   0.46928360685249931     
 mdl_MH__exp__8 =    59604644775390624.     
 mdl_MH__exp__6 =    3814697265625.0000     
 mdl_cw__exp__3 =   0.68504277738875496     
 mdl_MW__exp__3 =    519427.63106662512     
 mdl_sw__exp__8 =    2.4684175609903992E-003
 mdl_sw__exp__10 =    5.5020341837402442E-004
 mdl_Qd__exp__3 =   -3.7037037037037028E-002
 mdl_Qd__exp__2 =   0.11111111111111110     
 mdl_I3d__exp__2 =   0.25000000000000000     
 mdl_I3d__exp__3 =  -0.12500000000000000     
 mdl_Qu__exp__3 =   0.29629629629629622     
 mdl_Qu__exp__2 =   0.44444444444444442     
 mdl_I3u__exp__2 =   0.25000000000000000     
 mdl_I3u__exp__3 =   0.12500000000000000     
 mdl_Ql__exp__3 =   -1.0000000000000000     
 mdl_I3l__exp__2 =   0.25000000000000000     
 mdl_I3l__exp__3 =  -0.12500000000000000     
 mdl_I3v__exp__3 =   0.12500000000000000     
 mdl_Qu__exp__4 =   0.19753086419753083     
 mdl_Qd__exp__4 =    1.2345679012345677E-002
 mdl_I3l__exp__4 =    6.2500000000000000E-002
 mdl_I3u__exp__4 =    6.2500000000000000E-002
 mdl_I3d__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__2 =   0.25000000000000000     
 mdl_aEW =    7.5623975817934608E-003
 aEWM1 =    132.23319578006701     
 mdl_sqrt__aEW =    8.6962046789352085E-002
 mdl_ee =   0.30827242942882549     
 mdl_g1 =   0.34969985676163423     
 mdl_gw =   0.65295365401175598     
 mdl_vev =    246.21961912951551     
 mdl_vev__exp__2 =    60624.100844283676     
 mdl_lam =   0.12886789067712254     
 mdl_yt =   0.99078960633529489     
 mdl_muH =    88.388347648318444     
 mdl_I233 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_I333 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_AxialZUp =  -0.18517533314848042     
 mdl_AxialZDown =   0.18517533314848042     
 mdl_VectorZUp =    7.5108486645180356E-002
 mdl_VectorZDown =  -0.13014190989683039     
 mdl_AxialG0Up3 =  -0.70059404936883685     
 mdl_VectorHUp3 =  ( -0.0000000000000000     ,-0.70059404936883685     )
 mdl_VectorAUp =   0.20551495295255032     
 mdl_VectorADown =  -0.10275747647627516     
 mdl_VectorWmDxU =   0.23085397827612369     
 mdl_AxialWmDxU =  -0.23085397827612369     
 mdl_VectorWpUxD =   0.23085397827612369     
 mdl_AxialWpUxD =  -0.23085397827612369     
 mdl_VectorGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_VectorGmDx3U3 =  ( 0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGmDx3U3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_ee__exp__2 =    9.5031890745950198E-002
 mdl_ee__exp__3 =    2.9295711833468786E-002
 mdl_ee__exp__4 =    9.0310602587502144E-003
  Internal Params evaluated point by point
  ----------------------------------------
  
 mdl_sqrt__aS =   0.34351128074635334     
 mdl_G__exp__4 =    2.1987899468922913     
 mdl_G__exp__2 =    1.4828317324943823     
 mdl_G_UVc_1EPS_ =    3.1300472141406080E-003
 mdl_GWcft_UV_t_1EPS_ =   -3.1300472141406080E-003
 mdl_tWcft_UV_1EPS_ =   -1.8780283284843650E-002
 mdl_G__exp__3 =    1.8056676068262196     
 mdl_MU_R__exp__2 =    8315.2513440000002     
 mdl_GWcft_UV_t_FIN_ =    3.9906469785607433E-003
 mdl_tWcft_UV_FIN_ =   -1.0964958417604036E-003
  Couplings of hhh-model
  ---------------------------------
  
        GC_10 =  -0.12177E+01   0.00000E+00
        GC_11 =   0.00000E+00   0.12177E+01
       GC_116 =  -0.00000E+00  -0.70059E+00

 Collider parameters:
 --------------------

 Running at P P   machine @    13000.000000000000       GeV
 PDF set = lhapdf 
 alpha_s(Mz)= 0.1180 running at 3 loops.
 alpha_s(Mz)= 0.1180 running at 3 loops.
 Renormalization scale set on event-by-event basis
 Factorization   scale set on event-by-event basis


 Diagram information for  clustering has been set-up for nFKSprocess           1
 getting user params
Enter number of events and iterations: 
 Number of events and iterations           -1          12
Enter desired fractional accuracy: 
 Desired fractional accuracy:    2.9999999999999999E-002
 Enter alpha, beta for G_soft
   Enter alpha<0 to set G_soft=1 (no ME soft)
 for G_soft: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Enter alpha, beta for G_azi
   Enter alpha>0 to set G_azi=0 (no azi corr)
 for G_azi: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Doing the S and H events together
Suppress amplitude (0 no, 1 yes)? 
 Using suppressed amplitude.
Exact helicity sum (0 yes, n = number/event)? 
 Do MC over helicities for the virtuals
Enter Configuration Number: 
Running Configuration Number:    8
Enter running mode for MINT:
0 to set-up grids, 1 to integrate, 2 to generate events
 MINT running mode:           0
Set the three folding parameters for MINT
xi_i, phi_i, y_ij
           1           1           1
 'all ', 'born', 'real', 'virt', 'novi' or 'grid'?
 Enter 'born0' or 'virt0' to perform
  a pure n-body integration (no S functions)
 Process generated with [LOonly=QCD]. Setting abrv to "born".
 doing the born of this channel
 Normal integration (Sfunction != 1)
 Not subdividing B.W.
 about to integrate           10          -1          12           8
 imode is            0
channel    1 :     8 T        0        0  0.1000E+01  0.0000E+00  0.1000E+01
 ------- iteration           1
 Update # PS points (even):          800  -->          800
Using random seed offsets:     8 ,      1 ,      0
  with seed                   46
 Ranmar initialization seeds       27803        9421
 Total number of FKS directories is           1
 FKS process map (sum=           3 ) :
           1 -->           1 :           1
 ================================
 process combination map (specified per FKS dir):
  1 map         1
  1 inv. map    1
 ================================
tau_min   1     1 : 0.47000E+03  0.47000E+03  0.47000E+03
 bpower is   2.0000000000000000     
 Scale values (may change event by event):
 muR,  muR_reference:  0.329451D+03 0.329451D+03  1.00
 muF1, muF1_reference: 0.329451D+03 0.329451D+03  1.00
 muF2, muF2_reference: 0.329451D+03 0.329451D+03  1.00
 QES,  QES_reference:  0.329451D+03 0.329451D+03  1.00
  
 muR_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF1_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF2_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 QES_reference [functional form]: 
    H_T/2 := sum_i mT(i)/2, i=final state
  
 alpha_s=   9.8888321753389463E-002
ABS integral  = 0.3731E-01  +/-  0.3268E-02  (   8.761 %)
Integral      = 0.3731E-01  +/-  0.3268E-02  (   8.761 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2 per d.o.f. 0.0000E+00
accumulated results ABS integral  = 0.3731E-01  +/-  0.3268E-02  (   8.761 %)
accumulated results Integral      = 0.3731E-01  +/-  0.3268E-02  (   8.761 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.0000E+00
  1:  0                                                                                                   1
channel    1 :     8 T      800        0  0.3731E-01  0.3731E-01  0.2500E+00
 ------- iteration           2
 Update # PS points (even):         1600  -->         1600
ABS integral  = 0.4129E-01  +/-  0.1962E-02  (   4.752 %)
Integral      = 0.4129E-01  +/-  0.1962E-02  (   4.752 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.5794E+00
accumulated results ABS integral  = 0.3979E-01  +/-  0.1682E-02  (   4.227 %)
accumulated results Integral      = 0.3979E-01  +/-  0.1682E-02  (   4.227 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.5794E+00
  1:  0                                                                                                   1
channel    1 :     8 T     1600      800  0.3979E-01  0.3979E-01  0.6250E-01
 ------- iteration           3
 Update # PS points (even):         3200  -->         3072
ABS integral  = 0.3945E-01  +/-  0.8988E-03  (   2.278 %)
Integral      = 0.3945E-01  +/-  0.8988E-03  (   2.278 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.1720E-01
accumulated results ABS integral  = 0.3957E-01  +/-  0.7927E-03  (   2.003 %)
accumulated results Integral      = 0.3957E-01  +/-  0.7927E-03  (   2.003 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.2983E+00
  1:  0                                                                                                   1
channel    1 :     8 T     3072     1600  0.3957E-01  0.3957E-01  0.1562E-01
 ------- iteration           4
 Update # PS points (even):         6400  -->         6144
ABS integral  = 0.4106E-01  +/-  0.6302E-03  (   1.535 %)
Integral      = 0.4106E-01  +/-  0.6302E-03  (   1.535 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.1096E+01
accumulated results ABS integral  = 0.4040E-01  +/-  0.4933E-03  (   1.221 %)
accumulated results Integral      = 0.4040E-01  +/-  0.4933E-03  (   1.221 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.5642E+00
accumulated results last 3 iterations ABS integral  = 0.4061E-01  +/-  0.4990E-03  (   1.229 %)
accumulated results last 3 iterations Integral      = 0.4061E-01  +/-  0.4990E-03  (   1.229 %)
accumulated result last 3 iterrations Chi^2 per DoF = 0.4592E+00
  1:  0                                                                                                   1
 Found desired accuracy
channel    1 :     8 T     6145     3072  0.4040E-01  0.4040E-01  0.5000E-02
Thanks for using LHAPDF 6.1.6. Please make sure to cite the paper:
  Eur.Phys.J. C75 (2015) 3, 132  (http://arxiv.org/abs/1412.7420)
 -------
 Final result [ABS]:   4.0402287480247462E-002  +/-   4.9330622831027585E-004
 Final result:   4.0402153670809668E-002  +/-   4.9330732097274102E-004
 chi**2 per D.o.F.:  0.56418538462810774     
 Time spent in Born :   0.206813067    
 Time spent in PS_Generation :    6.08053952E-02
 Time spent in Reals_evaluation:    0.00000000    
 Time spent in MCsubtraction :    0.00000000    
 Time spent in Counter_terms :    0.00000000    
 Time spent in Integrated_CT :    0.00000000    
 Time spent in Virtuals :    0.00000000    
 Time spent in FxFx_cluster :    0.00000000    
 Time spent in Nbody_prefactor :   0.209698215    
 Time spent in N1body_prefactor :    0.00000000    
 Time spent in Adding_alphas_pdf :   0.195033565    
 Time spent in Reweight_scale :    0.00000000    
 Time spent in Reweight_pdf :    0.00000000    
 Time spent in Filling_plots :    0.00000000    
 Time spent in Applying_cuts :    2.18737833E-02
 Time spent in Sum_ident_contr :    1.45555325E-02
 Time spent in Pick_unwgt :    0.00000000    
 Time spent in Write_events :    0.00000000    
 Time spent in Other_tasks :   0.231697500    
 Time spent in Total :   0.940477014    
Time in seconds: 2



LOG file for integration channel /P0_uux_httx/GB1, 0
==== LHAPDF6 USING DEFAULT-TYPE LHAGLUE INTERFACE ====
LHAPDF 6.1.6 loading /afs/cern.ch/work/s/sesanche/private/TTH_k3/MG5_aMC_v2_5_5/HEPTools/lhapdf6/share/LHAPDF/NNPDF30_nnlo_as_0118/NNPDF30_nnlo_as_0118_0000.dat
NNPDF30_nnlo_as_0118 PDF set, member #0, version 2; LHAPDF ID = 261000
 ===============================================================
 INFO: MadFKS read these parameters from FKS_params.dat                                                  
 ===============================================================
  > IRPoleCheckThreshold      =    1.0000000000000001E-005
  > PrecisionVirtualAtRunTime =    1.0000000000000000E-003
  > NHelForMCoverHels         =            4
  > VirtualFraction           =    1.0000000000000000     
  > MinVirtualFraction        =    5.0000000000000001E-003
 ===============================================================
 A PDF is used, so alpha_s(MZ) is going to be modified
 Old value of alpha_s from param_card:   0.11799999999999999     
 New value of alpha_s from PDF lhapdf :  0.11800222249017472     
 using LHAPDF
WARNING: the value of maxjetflavorspecified in the run_card (  4) is inconsistent with the number of light flavours inthe model. Hence it will be set to:  5
 *****************************************************
 *               MadGraph/MadEvent                   *
 *        --------------------------------           *
 *          http://madgraph.hep.uiuc.edu             *
 *          http://madgraph.phys.ucl.ac.be           *
 *          http://madgraph.roma2.infn.it            *
 *        --------------------------------           *
 *                                                   *
 *          PARAMETER AND COUPLING VALUES            *
 *                                                   *
 *****************************************************

  External Params
  ---------------------------------
  
 MU_R =    91.188000000000002     
 mdl_Gf =    1.1663789999999999E-005
 mdl_MW =    80.385000000000005     
 aS =   0.11799999999999999     
 mdl_ymt =    172.50000000000000     
 mdl_MZ =    91.187600000000003     
 mdl_MT =    172.50000000000000     
 mdl_MH =    125.00000000000000     
 mdl_WZ =    2.5047899999999998     
 mdl_WW =    2.0929099999999998     
 mdl_WT =    0.0000000000000000     
 mdl_WH =    3.5138499999999998E-003
  Internal Params
  ---------------------------------
  
 mdl_yb =    0.0000000000000000     
 mdl_CKM31 =    0.0000000000000000     
 mdl_CKM32 =    0.0000000000000000     
 mdl_MB__exp__4 =    0.0000000000000000     
 mdl_MB__exp__2 =    0.0000000000000000     
 mdl_CKM11 =    1.0000000000000000     
 mdl_SCKM33 =    1.0000000000000000     
 mdl_SCKM11 =    1.0000000000000000     
 mdl_vep =    0.0000000000000000     
 mdl_CKM33 =    1.0000000000000000     
 mdl_CMSParam =    0.0000000000000000     
 mdl_MC__exp__2 =    0.0000000000000000     
 mdl_SCKM33__exp__2 =    1.0000000000000000     
 mdl_Ql__exp__2 =    1.0000000000000000     
 mdl_conjg__CKM22 =    1.0000000000000000     
 mdl_SCKM22 =    1.0000000000000000     
 mdl_CKM22 =    1.0000000000000000     
 mdl_SCKM22__exp__2 =    1.0000000000000000     
 mdl_MD__exp__2 =    0.0000000000000000     
 mdl_MU__exp__2 =    0.0000000000000000     
 mdl_MM__exp__2 =    0.0000000000000000     
 mdl_MTA__exp__2 =    0.0000000000000000     
 mdl_Ql__exp__4 =    1.0000000000000000     
 mdl_conjg__CKM11 =    1.0000000000000000     
 mdl_lhv =    1.0000000000000000     
 mdl_conjg__CKM31 =    0.0000000000000000     
 mdl_conjg__CKM32 =    0.0000000000000000     
 mdl_conjg__CKM33 =    1.0000000000000000     
 mdl_Ncol =    3.0000000000000000     
 mdl_CA =    3.0000000000000000     
 mdl_TF =   0.50000000000000000     
 mdl_CF =    1.3333333333333333     
 mdl_MW__exp__2 =    6461.7482250000012     
 mdl_MZ__exp__2 =    8315.1783937600012     
 mdl_sw2 =   0.22289722252391819     
 mdl_complexi =  (  0.0000000000000000     ,  1.0000000000000000     )
 mdl_cw =   0.88153433142225479     
 mdl_sqrt__sw2 =   0.47211992387942936     
 mdl_sw =   0.47211992387942936     
 mdl_MH__exp__2 =    15625.000000000000     
 mdl_sqrt__2 =    1.4142135623730951     
 mdl_I3d =  -0.50000000000000000     
 mdl_I3u =   0.50000000000000000     
 mdl_I3l =  -0.50000000000000000     
 mdl_I3v =   0.50000000000000000     
 mdl_Qd =  -0.33333333333333331     
 mdl_Qu =   0.66666666666666663     
 mdl_Ql =   -1.0000000000000000     
 mdl_Ncol__exp__2 =    9.0000000000000000     
 mdl_sw__exp__2 =   0.22289722252391816     
 mdl_MT__exp__2 =    29756.250000000000     
 mdl_cw__exp__2 =   0.77710277747608170     
 mdl_MT__exp__4 =    885434414.06250000     
 mdl_sw__exp__4 =    4.9683171808877089E-002
 mdl_MW__exp__4 =    41754190.123290665     
 mdl_MT__exp__3 =    5132953.1250000000     
 mdl_MH__exp__4 =    244140625.00000000     
 mdl_MZ__exp__4 =    69142191.720053151     
 mdl_MT__exp__6 =    26347207783447.266     
 mdl_MW__exp__6 =    269805063915.48602     
 mdl_MT__exp__8 =    7.8399410160620275E+017
 mdl_MW__exp__8 =    1743412392851903.8     
 mdl_MT__exp__10 =    2.3328724485919570E+022
 mdl_MW__exp__10 =    1.1265491934953794E+019
 mdl_MZ__exp__6 =    574929658687.79749     
 mdl_sw__exp__6 =    1.1074241002377336E-002
 mdl_sw__exp__3 =   0.10523421973092847     
 mdl_MZ__exp__3 =    758241.16129882948     
 mdl_cw__exp__4 =   0.60388872676104055     
 mdl_cw__exp__6 =   0.46928360685249931     
 mdl_MH__exp__8 =    59604644775390624.     
 mdl_MH__exp__6 =    3814697265625.0000     
 mdl_cw__exp__3 =   0.68504277738875496     
 mdl_MW__exp__3 =    519427.63106662512     
 mdl_sw__exp__8 =    2.4684175609903992E-003
 mdl_sw__exp__10 =    5.5020341837402442E-004
 mdl_Qd__exp__3 =   -3.7037037037037028E-002
 mdl_Qd__exp__2 =   0.11111111111111110     
 mdl_I3d__exp__2 =   0.25000000000000000     
 mdl_I3d__exp__3 =  -0.12500000000000000     
 mdl_Qu__exp__3 =   0.29629629629629622     
 mdl_Qu__exp__2 =   0.44444444444444442     
 mdl_I3u__exp__2 =   0.25000000000000000     
 mdl_I3u__exp__3 =   0.12500000000000000     
 mdl_Ql__exp__3 =   -1.0000000000000000     
 mdl_I3l__exp__2 =   0.25000000000000000     
 mdl_I3l__exp__3 =  -0.12500000000000000     
 mdl_I3v__exp__3 =   0.12500000000000000     
 mdl_Qu__exp__4 =   0.19753086419753083     
 mdl_Qd__exp__4 =    1.2345679012345677E-002
 mdl_I3l__exp__4 =    6.2500000000000000E-002
 mdl_I3u__exp__4 =    6.2500000000000000E-002
 mdl_I3d__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__2 =   0.25000000000000000     
 mdl_aEW =    7.5623975817934608E-003
 aEWM1 =    132.23319578006701     
 mdl_sqrt__aEW =    8.6962046789352085E-002
 mdl_ee =   0.30827242942882549     
 mdl_g1 =   0.34969985676163423     
 mdl_gw =   0.65295365401175598     
 mdl_vev =    246.21961912951551     
 mdl_vev__exp__2 =    60624.100844283676     
 mdl_lam =   0.12886789067712254     
 mdl_yt =   0.99078960633529489     
 mdl_muH =    88.388347648318444     
 mdl_I233 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_I333 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_AxialZUp =  -0.18517533314848042     
 mdl_AxialZDown =   0.18517533314848042     
 mdl_VectorZUp =    7.5108486645180356E-002
 mdl_VectorZDown =  -0.13014190989683039     
 mdl_AxialG0Up3 =  -0.70059404936883685     
 mdl_VectorHUp3 =  ( -0.0000000000000000     ,-0.70059404936883685     )
 mdl_VectorAUp =   0.20551495295255032     
 mdl_VectorADown =  -0.10275747647627516     
 mdl_VectorWmDxU =   0.23085397827612369     
 mdl_AxialWmDxU =  -0.23085397827612369     
 mdl_VectorWpUxD =   0.23085397827612369     
 mdl_AxialWpUxD =  -0.23085397827612369     
 mdl_VectorGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_VectorGmDx3U3 =  ( 0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGmDx3U3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_ee__exp__2 =    9.5031890745950198E-002
 mdl_ee__exp__3 =    2.9295711833468786E-002
 mdl_ee__exp__4 =    9.0310602587502144E-003
  Internal Params evaluated point by point
  ----------------------------------------
  
 mdl_sqrt__aS =   0.34351128074635334     
 mdl_G__exp__4 =    2.1987899468922913     
 mdl_G__exp__2 =    1.4828317324943823     
 mdl_G_UVc_1EPS_ =    3.1300472141406080E-003
 mdl_GWcft_UV_t_1EPS_ =   -3.1300472141406080E-003
 mdl_tWcft_UV_1EPS_ =   -1.8780283284843650E-002
 mdl_G__exp__3 =    1.8056676068262196     
 mdl_MU_R__exp__2 =    8315.2513440000002     
 mdl_GWcft_UV_t_FIN_ =    3.9906469785607433E-003
 mdl_tWcft_UV_FIN_ =   -1.0964958417604036E-003
  Couplings of hhh-model
  ---------------------------------
  
        GC_10 =  -0.12177E+01   0.00000E+00
        GC_11 =   0.00000E+00   0.12177E+01
       GC_116 =  -0.00000E+00  -0.70059E+00

 Collider parameters:
 --------------------

 Running at P P   machine @    13000.000000000000       GeV
 PDF set = lhapdf 
 alpha_s(Mz)= 0.1180 running at 3 loops.
 alpha_s(Mz)= 0.1180 running at 3 loops.
 Renormalization scale set on event-by-event basis
 Factorization   scale set on event-by-event basis


 Diagram information for  clustering has been set-up for nFKSprocess           1
 getting user params
Enter number of events and iterations: 
 Number of events and iterations           -1          12
Enter desired fractional accuracy: 
 Desired fractional accuracy:    2.9999999999999999E-002
 Enter alpha, beta for G_soft
   Enter alpha<0 to set G_soft=1 (no ME soft)
 for G_soft: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Enter alpha, beta for G_azi
   Enter alpha>0 to set G_azi=0 (no azi corr)
 for G_azi: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Doing the S and H events together
Suppress amplitude (0 no, 1 yes)? 
 Using suppressed amplitude.
Exact helicity sum (0 yes, n = number/event)? 
 Do MC over helicities for the virtuals
Enter Configuration Number: 
Running Configuration Number:    1
Enter running mode for MINT:
0 to set-up grids, 1 to integrate, 2 to generate events
 MINT running mode:           0
Set the three folding parameters for MINT
xi_i, phi_i, y_ij
           1           1           1
 'all ', 'born', 'real', 'virt', 'novi' or 'grid'?
 Enter 'born0' or 'virt0' to perform
  a pure n-body integration (no S functions)
 Process generated with [LOonly=QCD]. Setting abrv to "born".
 doing the born of this channel
 Normal integration (Sfunction != 1)
 Not subdividing B.W.
 about to integrate           10          -1          12           1
 imode is            0
channel    1 :     1 T        0        0  0.1000E+01  0.0000E+00  0.1000E+01
 ------- iteration           1
 Update # PS points (even):          800  -->          800
Using random seed offsets:     1 ,      2 ,      0
  with seed                   46
 Ranmar initialization seeds       27796        9422
 Total number of FKS directories is           1
 FKS process map (sum=           3 ) :
           1 -->           1 :           1
 ================================
 process combination map (specified per FKS dir):
  1 map         1   2   3   4   5
  1 inv. map    1   2   3   4   5
 ================================
tau_min   1     1 : 0.47000E+03  0.47000E+03  0.47000E+03
 bpower is   2.0000000000000000     
 Scale values (may change event by event):
 muR,  muR_reference:  0.328787D+03 0.328787D+03  1.00
 muF1, muF1_reference: 0.328787D+03 0.328787D+03  1.00
 muF2, muF2_reference: 0.328787D+03 0.328787D+03  1.00
 QES,  QES_reference:  0.328787D+03 0.328787D+03  1.00
  
 muR_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF1_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF2_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 QES_reference [functional form]: 
    H_T/2 := sum_i mT(i)/2, i=final state
  
 alpha_s=   9.8913399188711684E-002
ABS integral  = 0.2952E-01  +/-  0.2132E-02  (   7.222 %)
Integral      = 0.2942E-01  +/-  0.2134E-02  (   7.253 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2 per d.o.f. 0.0000E+00
accumulated results ABS integral  = 0.2952E-01  +/-  0.2132E-02  (   7.222 %)
accumulated results Integral      = 0.2942E-01  +/-  0.2134E-02  (   7.253 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.0000E+00
  1:  0                                                                                                   1
channel    1 :     1 T      800        0  0.2952E-01  0.2942E-01  0.2500E+00
 ------- iteration           2
 Update # PS points (even):         1600  -->         1600
ABS integral  = 0.2762E-01  +/-  0.9188E-03  (   3.327 %)
Integral      = 0.2750E-01  +/-  0.9208E-03  (   3.348 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.3880E+00
accumulated results ABS integral  = 0.2819E-01  +/-  0.8438E-03  (   2.993 %)
accumulated results Integral      = 0.2808E-01  +/-  0.8454E-03  (   3.011 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.3880E+00
  1:  0                                                                                                   1
channel    1 :     1 T     1600      800  0.2819E-01  0.2808E-01  0.6250E-01
 ------- iteration           3
 Update # PS points (even):         3200  -->         3072
ABS integral  = 0.2752E-01  +/-  0.5644E-03  (   2.051 %)
Integral      = 0.2743E-01  +/-  0.5654E-03  (   2.061 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.2295E+00
accumulated results ABS integral  = 0.2779E-01  +/-  0.4691E-03  (   1.688 %)
accumulated results Integral      = 0.2769E-01  +/-  0.4700E-03  (   1.697 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.3088E+00
  1:  0                                                                                                   1
channel    1 :     1 T     3072     1600  0.2779E-01  0.2769E-01  0.1562E-01
 ------- iteration           4
 Update # PS points (even):         6400  -->         6144
ABS integral  = 0.2776E-01  +/-  0.3719E-03  (   1.340 %)
Integral      = 0.2763E-01  +/-  0.3728E-03  (   1.349 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.1404E-02
accumulated results ABS integral  = 0.2777E-01  +/-  0.2914E-03  (   1.049 %)
accumulated results Integral      = 0.2766E-01  +/-  0.2921E-03  (   1.056 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.2063E+00
accumulated results last 3 iterations ABS integral  = 0.2767E-01  +/-  0.2942E-03  (   1.063 %)
accumulated results last 3 iterations Integral      = 0.2755E-01  +/-  0.2948E-03  (   1.070 %)
accumulated result last 3 iterrations Chi^2 per DoF = 0.2987E-01
  1:  0                                                                                                   1
 Found desired accuracy
channel    1 :     1 T     6138     3072  0.2777E-01  0.2766E-01  0.5000E-02
Thanks for using LHAPDF 6.1.6. Please make sure to cite the paper:
  Eur.Phys.J. C75 (2015) 3, 132  (http://arxiv.org/abs/1412.7420)
 -------
 Final result [ABS]:   2.7769931816740479E-002  +/-   2.9141894986986901E-004
 Final result:   2.7655597634382415E-002  +/-   2.9206524151913644E-004
 chi**2 per D.o.F.:  0.20631339144561769     
 Time spent in Born :    9.01545435E-02
 Time spent in PS_Generation :    5.92866316E-02
 Time spent in Reals_evaluation:    0.00000000    
 Time spent in MCsubtraction :    0.00000000    
 Time spent in Counter_terms :    0.00000000    
 Time spent in Integrated_CT :    0.00000000    
 Time spent in Virtuals :    0.00000000    
 Time spent in FxFx_cluster :    0.00000000    
 Time spent in Nbody_prefactor :    9.24205631E-02
 Time spent in N1body_prefactor :    0.00000000    
 Time spent in Adding_alphas_pdf :   0.700373173    
 Time spent in Reweight_scale :    0.00000000    
 Time spent in Reweight_pdf :    0.00000000    
 Time spent in Filling_plots :    0.00000000    
 Time spent in Applying_cuts :    2.26089843E-02
 Time spent in Sum_ident_contr :    1.58519149E-02
 Time spent in Pick_unwgt :    0.00000000    
 Time spent in Write_events :    0.00000000    
 Time spent in Other_tasks :   0.231912136    
 Time spent in Total :    1.21260798    
Time in seconds: 2



LOG file for integration channel /P0_uux_httx/GB2, 0
==== LHAPDF6 USING DEFAULT-TYPE LHAGLUE INTERFACE ====
LHAPDF 6.1.6 loading /afs/cern.ch/work/s/sesanche/private/TTH_k3/MG5_aMC_v2_5_5/HEPTools/lhapdf6/share/LHAPDF/NNPDF30_nnlo_as_0118/NNPDF30_nnlo_as_0118_0000.dat
NNPDF30_nnlo_as_0118 PDF set, member #0, version 2; LHAPDF ID = 261000
 ===============================================================
 INFO: MadFKS read these parameters from FKS_params.dat                                                  
 ===============================================================
  > IRPoleCheckThreshold      =    1.0000000000000001E-005
  > PrecisionVirtualAtRunTime =    1.0000000000000000E-003
  > NHelForMCoverHels         =            4
  > VirtualFraction           =    1.0000000000000000     
  > MinVirtualFraction        =    5.0000000000000001E-003
 ===============================================================
 A PDF is used, so alpha_s(MZ) is going to be modified
 Old value of alpha_s from param_card:   0.11799999999999999     
 New value of alpha_s from PDF lhapdf :  0.11800222249017472     
 using LHAPDF
WARNING: the value of maxjetflavorspecified in the run_card (  4) is inconsistent with the number of light flavours inthe model. Hence it will be set to:  5
 *****************************************************
 *               MadGraph/MadEvent                   *
 *        --------------------------------           *
 *          http://madgraph.hep.uiuc.edu             *
 *          http://madgraph.phys.ucl.ac.be           *
 *          http://madgraph.roma2.infn.it            *
 *        --------------------------------           *
 *                                                   *
 *          PARAMETER AND COUPLING VALUES            *
 *                                                   *
 *****************************************************

  External Params
  ---------------------------------
  
 MU_R =    91.188000000000002     
 mdl_Gf =    1.1663789999999999E-005
 mdl_MW =    80.385000000000005     
 aS =   0.11799999999999999     
 mdl_ymt =    172.50000000000000     
 mdl_MZ =    91.187600000000003     
 mdl_MT =    172.50000000000000     
 mdl_MH =    125.00000000000000     
 mdl_WZ =    2.5047899999999998     
 mdl_WW =    2.0929099999999998     
 mdl_WT =    0.0000000000000000     
 mdl_WH =    3.5138499999999998E-003
  Internal Params
  ---------------------------------
  
 mdl_yb =    0.0000000000000000     
 mdl_CKM31 =    0.0000000000000000     
 mdl_CKM32 =    0.0000000000000000     
 mdl_MB__exp__4 =    0.0000000000000000     
 mdl_MB__exp__2 =    0.0000000000000000     
 mdl_CKM11 =    1.0000000000000000     
 mdl_SCKM33 =    1.0000000000000000     
 mdl_SCKM11 =    1.0000000000000000     
 mdl_vep =    0.0000000000000000     
 mdl_CKM33 =    1.0000000000000000     
 mdl_CMSParam =    0.0000000000000000     
 mdl_MC__exp__2 =    0.0000000000000000     
 mdl_SCKM33__exp__2 =    1.0000000000000000     
 mdl_Ql__exp__2 =    1.0000000000000000     
 mdl_conjg__CKM22 =    1.0000000000000000     
 mdl_SCKM22 =    1.0000000000000000     
 mdl_CKM22 =    1.0000000000000000     
 mdl_SCKM22__exp__2 =    1.0000000000000000     
 mdl_MD__exp__2 =    0.0000000000000000     
 mdl_MU__exp__2 =    0.0000000000000000     
 mdl_MM__exp__2 =    0.0000000000000000     
 mdl_MTA__exp__2 =    0.0000000000000000     
 mdl_Ql__exp__4 =    1.0000000000000000     
 mdl_conjg__CKM11 =    1.0000000000000000     
 mdl_lhv =    1.0000000000000000     
 mdl_conjg__CKM31 =    0.0000000000000000     
 mdl_conjg__CKM32 =    0.0000000000000000     
 mdl_conjg__CKM33 =    1.0000000000000000     
 mdl_Ncol =    3.0000000000000000     
 mdl_CA =    3.0000000000000000     
 mdl_TF =   0.50000000000000000     
 mdl_CF =    1.3333333333333333     
 mdl_MW__exp__2 =    6461.7482250000012     
 mdl_MZ__exp__2 =    8315.1783937600012     
 mdl_sw2 =   0.22289722252391819     
 mdl_complexi =  (  0.0000000000000000     ,  1.0000000000000000     )
 mdl_cw =   0.88153433142225479     
 mdl_sqrt__sw2 =   0.47211992387942936     
 mdl_sw =   0.47211992387942936     
 mdl_MH__exp__2 =    15625.000000000000     
 mdl_sqrt__2 =    1.4142135623730951     
 mdl_I3d =  -0.50000000000000000     
 mdl_I3u =   0.50000000000000000     
 mdl_I3l =  -0.50000000000000000     
 mdl_I3v =   0.50000000000000000     
 mdl_Qd =  -0.33333333333333331     
 mdl_Qu =   0.66666666666666663     
 mdl_Ql =   -1.0000000000000000     
 mdl_Ncol__exp__2 =    9.0000000000000000     
 mdl_sw__exp__2 =   0.22289722252391816     
 mdl_MT__exp__2 =    29756.250000000000     
 mdl_cw__exp__2 =   0.77710277747608170     
 mdl_MT__exp__4 =    885434414.06250000     
 mdl_sw__exp__4 =    4.9683171808877089E-002
 mdl_MW__exp__4 =    41754190.123290665     
 mdl_MT__exp__3 =    5132953.1250000000     
 mdl_MH__exp__4 =    244140625.00000000     
 mdl_MZ__exp__4 =    69142191.720053151     
 mdl_MT__exp__6 =    26347207783447.266     
 mdl_MW__exp__6 =    269805063915.48602     
 mdl_MT__exp__8 =    7.8399410160620275E+017
 mdl_MW__exp__8 =    1743412392851903.8     
 mdl_MT__exp__10 =    2.3328724485919570E+022
 mdl_MW__exp__10 =    1.1265491934953794E+019
 mdl_MZ__exp__6 =    574929658687.79749     
 mdl_sw__exp__6 =    1.1074241002377336E-002
 mdl_sw__exp__3 =   0.10523421973092847     
 mdl_MZ__exp__3 =    758241.16129882948     
 mdl_cw__exp__4 =   0.60388872676104055     
 mdl_cw__exp__6 =   0.46928360685249931     
 mdl_MH__exp__8 =    59604644775390624.     
 mdl_MH__exp__6 =    3814697265625.0000     
 mdl_cw__exp__3 =   0.68504277738875496     
 mdl_MW__exp__3 =    519427.63106662512     
 mdl_sw__exp__8 =    2.4684175609903992E-003
 mdl_sw__exp__10 =    5.5020341837402442E-004
 mdl_Qd__exp__3 =   -3.7037037037037028E-002
 mdl_Qd__exp__2 =   0.11111111111111110     
 mdl_I3d__exp__2 =   0.25000000000000000     
 mdl_I3d__exp__3 =  -0.12500000000000000     
 mdl_Qu__exp__3 =   0.29629629629629622     
 mdl_Qu__exp__2 =   0.44444444444444442     
 mdl_I3u__exp__2 =   0.25000000000000000     
 mdl_I3u__exp__3 =   0.12500000000000000     
 mdl_Ql__exp__3 =   -1.0000000000000000     
 mdl_I3l__exp__2 =   0.25000000000000000     
 mdl_I3l__exp__3 =  -0.12500000000000000     
 mdl_I3v__exp__3 =   0.12500000000000000     
 mdl_Qu__exp__4 =   0.19753086419753083     
 mdl_Qd__exp__4 =    1.2345679012345677E-002
 mdl_I3l__exp__4 =    6.2500000000000000E-002
 mdl_I3u__exp__4 =    6.2500000000000000E-002
 mdl_I3d__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__2 =   0.25000000000000000     
 mdl_aEW =    7.5623975817934608E-003
 aEWM1 =    132.23319578006701     
 mdl_sqrt__aEW =    8.6962046789352085E-002
 mdl_ee =   0.30827242942882549     
 mdl_g1 =   0.34969985676163423     
 mdl_gw =   0.65295365401175598     
 mdl_vev =    246.21961912951551     
 mdl_vev__exp__2 =    60624.100844283676     
 mdl_lam =   0.12886789067712254     
 mdl_yt =   0.99078960633529489     
 mdl_muH =    88.388347648318444     
 mdl_I233 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_I333 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_AxialZUp =  -0.18517533314848042     
 mdl_AxialZDown =   0.18517533314848042     
 mdl_VectorZUp =    7.5108486645180356E-002
 mdl_VectorZDown =  -0.13014190989683039     
 mdl_AxialG0Up3 =  -0.70059404936883685     
 mdl_VectorHUp3 =  ( -0.0000000000000000     ,-0.70059404936883685     )
 mdl_VectorAUp =   0.20551495295255032     
 mdl_VectorADown =  -0.10275747647627516     
 mdl_VectorWmDxU =   0.23085397827612369     
 mdl_AxialWmDxU =  -0.23085397827612369     
 mdl_VectorWpUxD =   0.23085397827612369     
 mdl_AxialWpUxD =  -0.23085397827612369     
 mdl_VectorGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_VectorGmDx3U3 =  ( 0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGmDx3U3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_ee__exp__2 =    9.5031890745950198E-002
 mdl_ee__exp__3 =    2.9295711833468786E-002
 mdl_ee__exp__4 =    9.0310602587502144E-003
  Internal Params evaluated point by point
  ----------------------------------------
  
 mdl_sqrt__aS =   0.34351128074635334     
 mdl_G__exp__4 =    2.1987899468922913     
 mdl_G__exp__2 =    1.4828317324943823     
 mdl_G_UVc_1EPS_ =    3.1300472141406080E-003
 mdl_GWcft_UV_t_1EPS_ =   -3.1300472141406080E-003
 mdl_tWcft_UV_1EPS_ =   -1.8780283284843650E-002
 mdl_G__exp__3 =    1.8056676068262196     
 mdl_MU_R__exp__2 =    8315.2513440000002     
 mdl_GWcft_UV_t_FIN_ =    3.9906469785607433E-003
 mdl_tWcft_UV_FIN_ =   -1.0964958417604036E-003
  Couplings of hhh-model
  ---------------------------------
  
        GC_10 =  -0.12177E+01   0.00000E+00
        GC_11 =   0.00000E+00   0.12177E+01
       GC_116 =  -0.00000E+00  -0.70059E+00

 Collider parameters:
 --------------------

 Running at P P   machine @    13000.000000000000       GeV
 PDF set = lhapdf 
 alpha_s(Mz)= 0.1180 running at 3 loops.
 alpha_s(Mz)= 0.1180 running at 3 loops.
 Renormalization scale set on event-by-event basis
 Factorization   scale set on event-by-event basis


 Diagram information for  clustering has been set-up for nFKSprocess           1
 getting user params
Enter number of events and iterations: 
 Number of events and iterations           -1          12
Enter desired fractional accuracy: 
 Desired fractional accuracy:    2.9999999999999999E-002
 Enter alpha, beta for G_soft
   Enter alpha<0 to set G_soft=1 (no ME soft)
 for G_soft: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Enter alpha, beta for G_azi
   Enter alpha>0 to set G_azi=0 (no azi corr)
 for G_azi: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Doing the S and H events together
Suppress amplitude (0 no, 1 yes)? 
 Using suppressed amplitude.
Exact helicity sum (0 yes, n = number/event)? 
 Do MC over helicities for the virtuals
Enter Configuration Number: 
Running Configuration Number:    2
Enter running mode for MINT:
0 to set-up grids, 1 to integrate, 2 to generate events
 MINT running mode:           0
Set the three folding parameters for MINT
xi_i, phi_i, y_ij
           1           1           1
 'all ', 'born', 'real', 'virt', 'novi' or 'grid'?
 Enter 'born0' or 'virt0' to perform
  a pure n-body integration (no S functions)
 Process generated with [LOonly=QCD]. Setting abrv to "born".
 doing the born of this channel
 Normal integration (Sfunction != 1)
 Not subdividing B.W.
 about to integrate           10          -1          12           2
 imode is            0
channel    1 :     2 T        0        0  0.1000E+01  0.0000E+00  0.1000E+01
 ------- iteration           1
 Update # PS points (even):          800  -->          800
Using random seed offsets:     2 ,      2 ,      0
  with seed                   46
 Ranmar initialization seeds       27797        9422
 Total number of FKS directories is           1
 FKS process map (sum=           3 ) :
           1 -->           1 :           1
 ================================
 process combination map (specified per FKS dir):
  1 map         1   2   3   4   5
  1 inv. map    1   2   3   4   5
 ================================
tau_min   1     1 : 0.47000E+03  0.47000E+03  0.47000E+03
 bpower is   2.0000000000000000     
 Scale values (may change event by event):
 muR,  muR_reference:  0.522263D+03 0.522263D+03  1.00
 muF1, muF1_reference: 0.522263D+03 0.522263D+03  1.00
 muF2, muF2_reference: 0.522263D+03 0.522263D+03  1.00
 QES,  QES_reference:  0.522263D+03 0.522263D+03  1.00
  
 muR_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF1_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF2_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 QES_reference [functional form]: 
    H_T/2 := sum_i mT(i)/2, i=final state
  
 alpha_s=   9.3483702619841569E-002
ABS integral  = 0.2959E-01  +/-  0.2212E-02  (   7.476 %)
Integral      = 0.2949E-01  +/-  0.2214E-02  (   7.508 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2 per d.o.f. 0.0000E+00
accumulated results ABS integral  = 0.2959E-01  +/-  0.2212E-02  (   7.476 %)
accumulated results Integral      = 0.2949E-01  +/-  0.2214E-02  (   7.508 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.0000E+00
  1:  0                                                                                                   1
channel    1 :     2 T      800        0  0.2959E-01  0.2949E-01  0.2500E+00
 ------- iteration           2
 Update # PS points (even):         1600  -->         1600
ABS integral  = 0.2853E-01  +/-  0.9338E-03  (   3.273 %)
Integral      = 0.2842E-01  +/-  0.9357E-03  (   3.293 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.1148E+00
accumulated results ABS integral  = 0.2884E-01  +/-  0.8603E-03  (   2.983 %)
accumulated results Integral      = 0.2873E-01  +/-  0.8618E-03  (   2.999 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.1148E+00
  1:  0                                                                                                   1
channel    1 :     2 T     1600      800  0.2884E-01  0.2873E-01  0.6250E-01
 ------- iteration           3
 Update # PS points (even):         3200  -->         3072
ABS integral  = 0.2791E-01  +/-  0.5774E-03  (   2.069 %)
Integral      = 0.2782E-01  +/-  0.5785E-03  (   2.079 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.4220E+00
accumulated results ABS integral  = 0.2828E-01  +/-  0.4794E-03  (   1.695 %)
accumulated results Integral      = 0.2819E-01  +/-  0.4803E-03  (   1.704 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.2684E+00
  1:  0                                                                                                   1
channel    1 :     2 T     3072     1600  0.2828E-01  0.2819E-01  0.1562E-01
 ------- iteration           4
 Update # PS points (even):         6400  -->         6144
ABS integral  = 0.2781E-01  +/-  0.3687E-03  (   1.326 %)
Integral      = 0.2770E-01  +/-  0.3696E-03  (   1.334 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.3080E+00
accumulated results ABS integral  = 0.2802E-01  +/-  0.2922E-03  (   1.043 %)
accumulated results Integral      = 0.2791E-01  +/-  0.2929E-03  (   1.049 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.2816E+00
accumulated results last 3 iterations ABS integral  = 0.2795E-01  +/-  0.2948E-03  (   1.055 %)
accumulated results last 3 iterations Integral      = 0.2785E-01  +/-  0.2955E-03  (   1.061 %)
accumulated result last 3 iterrations Chi^2 per DoF = 0.1579E+00
  1:  0                                                                                                   1
 Found desired accuracy
channel    1 :     2 T     6144     3072  0.2802E-01  0.2791E-01  0.5000E-02
Thanks for using LHAPDF 6.1.6. Please make sure to cite the paper:
  Eur.Phys.J. C75 (2015) 3, 132  (http://arxiv.org/abs/1412.7420)
 -------
 Final result [ABS]:   2.8016985590049663E-002  +/-   2.9224544280556517E-004
 Final result:   2.7912138805908045E-002  +/-   2.9290950109319525E-004
 chi**2 per D.o.F.:  0.28159884097822618     
 Time spent in Born :    8.78694057E-02
 Time spent in PS_Generation :    5.64286932E-02
 Time spent in Reals_evaluation:    0.00000000    
 Time spent in MCsubtraction :    0.00000000    
 Time spent in Counter_terms :    0.00000000    
 Time spent in Integrated_CT :    0.00000000    
 Time spent in Virtuals :    0.00000000    
 Time spent in FxFx_cluster :    0.00000000    
 Time spent in Nbody_prefactor :    8.99459645E-02
 Time spent in N1body_prefactor :    0.00000000    
 Time spent in Adding_alphas_pdf :   0.685819209    
 Time spent in Reweight_scale :    0.00000000    
 Time spent in Reweight_pdf :    0.00000000    
 Time spent in Filling_plots :    0.00000000    
 Time spent in Applying_cuts :    2.19915882E-02
 Time spent in Sum_ident_contr :    1.51925050E-02
 Time spent in Pick_unwgt :    0.00000000    
 Time spent in Write_events :    0.00000000    
 Time spent in Other_tasks :   0.225648522    
 Time spent in Total :    1.18289590    
Time in seconds: 2



LOG file for integration channel /P0_uxu_httx/GB1, 0
==== LHAPDF6 USING DEFAULT-TYPE LHAGLUE INTERFACE ====
LHAPDF 6.1.6 loading /afs/cern.ch/work/s/sesanche/private/TTH_k3/MG5_aMC_v2_5_5/HEPTools/lhapdf6/share/LHAPDF/NNPDF30_nnlo_as_0118/NNPDF30_nnlo_as_0118_0000.dat
NNPDF30_nnlo_as_0118 PDF set, member #0, version 2; LHAPDF ID = 261000
 ===============================================================
 INFO: MadFKS read these parameters from FKS_params.dat                                                  
 ===============================================================
  > IRPoleCheckThreshold      =    1.0000000000000001E-005
  > PrecisionVirtualAtRunTime =    1.0000000000000000E-003
  > NHelForMCoverHels         =            4
  > VirtualFraction           =    1.0000000000000000     
  > MinVirtualFraction        =    5.0000000000000001E-003
 ===============================================================
 A PDF is used, so alpha_s(MZ) is going to be modified
 Old value of alpha_s from param_card:   0.11799999999999999     
 New value of alpha_s from PDF lhapdf :  0.11800222249017472     
 using LHAPDF
WARNING: the value of maxjetflavorspecified in the run_card (  4) is inconsistent with the number of light flavours inthe model. Hence it will be set to:  5
 *****************************************************
 *               MadGraph/MadEvent                   *
 *        --------------------------------           *
 *          http://madgraph.hep.uiuc.edu             *
 *          http://madgraph.phys.ucl.ac.be           *
 *          http://madgraph.roma2.infn.it            *
 *        --------------------------------           *
 *                                                   *
 *          PARAMETER AND COUPLING VALUES            *
 *                                                   *
 *****************************************************

  External Params
  ---------------------------------
  
 MU_R =    91.188000000000002     
 mdl_Gf =    1.1663789999999999E-005
 mdl_MW =    80.385000000000005     
 aS =   0.11799999999999999     
 mdl_ymt =    172.50000000000000     
 mdl_MZ =    91.187600000000003     
 mdl_MT =    172.50000000000000     
 mdl_MH =    125.00000000000000     
 mdl_WZ =    2.5047899999999998     
 mdl_WW =    2.0929099999999998     
 mdl_WT =    0.0000000000000000     
 mdl_WH =    3.5138499999999998E-003
  Internal Params
  ---------------------------------
  
 mdl_yb =    0.0000000000000000     
 mdl_CKM31 =    0.0000000000000000     
 mdl_CKM32 =    0.0000000000000000     
 mdl_MB__exp__4 =    0.0000000000000000     
 mdl_MB__exp__2 =    0.0000000000000000     
 mdl_CKM11 =    1.0000000000000000     
 mdl_SCKM33 =    1.0000000000000000     
 mdl_SCKM11 =    1.0000000000000000     
 mdl_vep =    0.0000000000000000     
 mdl_CKM33 =    1.0000000000000000     
 mdl_CMSParam =    0.0000000000000000     
 mdl_MC__exp__2 =    0.0000000000000000     
 mdl_SCKM33__exp__2 =    1.0000000000000000     
 mdl_Ql__exp__2 =    1.0000000000000000     
 mdl_conjg__CKM22 =    1.0000000000000000     
 mdl_SCKM22 =    1.0000000000000000     
 mdl_CKM22 =    1.0000000000000000     
 mdl_SCKM22__exp__2 =    1.0000000000000000     
 mdl_MD__exp__2 =    0.0000000000000000     
 mdl_MU__exp__2 =    0.0000000000000000     
 mdl_MM__exp__2 =    0.0000000000000000     
 mdl_MTA__exp__2 =    0.0000000000000000     
 mdl_Ql__exp__4 =    1.0000000000000000     
 mdl_conjg__CKM11 =    1.0000000000000000     
 mdl_lhv =    1.0000000000000000     
 mdl_conjg__CKM31 =    0.0000000000000000     
 mdl_conjg__CKM32 =    0.0000000000000000     
 mdl_conjg__CKM33 =    1.0000000000000000     
 mdl_Ncol =    3.0000000000000000     
 mdl_CA =    3.0000000000000000     
 mdl_TF =   0.50000000000000000     
 mdl_CF =    1.3333333333333333     
 mdl_MW__exp__2 =    6461.7482250000012     
 mdl_MZ__exp__2 =    8315.1783937600012     
 mdl_sw2 =   0.22289722252391819     
 mdl_complexi =  (  0.0000000000000000     ,  1.0000000000000000     )
 mdl_cw =   0.88153433142225479     
 mdl_sqrt__sw2 =   0.47211992387942936     
 mdl_sw =   0.47211992387942936     
 mdl_MH__exp__2 =    15625.000000000000     
 mdl_sqrt__2 =    1.4142135623730951     
 mdl_I3d =  -0.50000000000000000     
 mdl_I3u =   0.50000000000000000     
 mdl_I3l =  -0.50000000000000000     
 mdl_I3v =   0.50000000000000000     
 mdl_Qd =  -0.33333333333333331     
 mdl_Qu =   0.66666666666666663     
 mdl_Ql =   -1.0000000000000000     
 mdl_Ncol__exp__2 =    9.0000000000000000     
 mdl_sw__exp__2 =   0.22289722252391816     
 mdl_MT__exp__2 =    29756.250000000000     
 mdl_cw__exp__2 =   0.77710277747608170     
 mdl_MT__exp__4 =    885434414.06250000     
 mdl_sw__exp__4 =    4.9683171808877089E-002
 mdl_MW__exp__4 =    41754190.123290665     
 mdl_MT__exp__3 =    5132953.1250000000     
 mdl_MH__exp__4 =    244140625.00000000     
 mdl_MZ__exp__4 =    69142191.720053151     
 mdl_MT__exp__6 =    26347207783447.266     
 mdl_MW__exp__6 =    269805063915.48602     
 mdl_MT__exp__8 =    7.8399410160620275E+017
 mdl_MW__exp__8 =    1743412392851903.8     
 mdl_MT__exp__10 =    2.3328724485919570E+022
 mdl_MW__exp__10 =    1.1265491934953794E+019
 mdl_MZ__exp__6 =    574929658687.79749     
 mdl_sw__exp__6 =    1.1074241002377336E-002
 mdl_sw__exp__3 =   0.10523421973092847     
 mdl_MZ__exp__3 =    758241.16129882948     
 mdl_cw__exp__4 =   0.60388872676104055     
 mdl_cw__exp__6 =   0.46928360685249931     
 mdl_MH__exp__8 =    59604644775390624.     
 mdl_MH__exp__6 =    3814697265625.0000     
 mdl_cw__exp__3 =   0.68504277738875496     
 mdl_MW__exp__3 =    519427.63106662512     
 mdl_sw__exp__8 =    2.4684175609903992E-003
 mdl_sw__exp__10 =    5.5020341837402442E-004
 mdl_Qd__exp__3 =   -3.7037037037037028E-002
 mdl_Qd__exp__2 =   0.11111111111111110     
 mdl_I3d__exp__2 =   0.25000000000000000     
 mdl_I3d__exp__3 =  -0.12500000000000000     
 mdl_Qu__exp__3 =   0.29629629629629622     
 mdl_Qu__exp__2 =   0.44444444444444442     
 mdl_I3u__exp__2 =   0.25000000000000000     
 mdl_I3u__exp__3 =   0.12500000000000000     
 mdl_Ql__exp__3 =   -1.0000000000000000     
 mdl_I3l__exp__2 =   0.25000000000000000     
 mdl_I3l__exp__3 =  -0.12500000000000000     
 mdl_I3v__exp__3 =   0.12500000000000000     
 mdl_Qu__exp__4 =   0.19753086419753083     
 mdl_Qd__exp__4 =    1.2345679012345677E-002
 mdl_I3l__exp__4 =    6.2500000000000000E-002
 mdl_I3u__exp__4 =    6.2500000000000000E-002
 mdl_I3d__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__2 =   0.25000000000000000     
 mdl_aEW =    7.5623975817934608E-003
 aEWM1 =    132.23319578006701     
 mdl_sqrt__aEW =    8.6962046789352085E-002
 mdl_ee =   0.30827242942882549     
 mdl_g1 =   0.34969985676163423     
 mdl_gw =   0.65295365401175598     
 mdl_vev =    246.21961912951551     
 mdl_vev__exp__2 =    60624.100844283676     
 mdl_lam =   0.12886789067712254     
 mdl_yt =   0.99078960633529489     
 mdl_muH =    88.388347648318444     
 mdl_I233 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_I333 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_AxialZUp =  -0.18517533314848042     
 mdl_AxialZDown =   0.18517533314848042     
 mdl_VectorZUp =    7.5108486645180356E-002
 mdl_VectorZDown =  -0.13014190989683039     
 mdl_AxialG0Up3 =  -0.70059404936883685     
 mdl_VectorHUp3 =  ( -0.0000000000000000     ,-0.70059404936883685     )
 mdl_VectorAUp =   0.20551495295255032     
 mdl_VectorADown =  -0.10275747647627516     
 mdl_VectorWmDxU =   0.23085397827612369     
 mdl_AxialWmDxU =  -0.23085397827612369     
 mdl_VectorWpUxD =   0.23085397827612369     
 mdl_AxialWpUxD =  -0.23085397827612369     
 mdl_VectorGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_VectorGmDx3U3 =  ( 0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGmDx3U3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_ee__exp__2 =    9.5031890745950198E-002
 mdl_ee__exp__3 =    2.9295711833468786E-002
 mdl_ee__exp__4 =    9.0310602587502144E-003
  Internal Params evaluated point by point
  ----------------------------------------
  
 mdl_sqrt__aS =   0.34351128074635334     
 mdl_G__exp__4 =    2.1987899468922913     
 mdl_G__exp__2 =    1.4828317324943823     
 mdl_G_UVc_1EPS_ =    3.1300472141406080E-003
 mdl_GWcft_UV_t_1EPS_ =   -3.1300472141406080E-003
 mdl_tWcft_UV_1EPS_ =   -1.8780283284843650E-002
 mdl_G__exp__3 =    1.8056676068262196     
 mdl_MU_R__exp__2 =    8315.2513440000002     
 mdl_GWcft_UV_t_FIN_ =    3.9906469785607433E-003
 mdl_tWcft_UV_FIN_ =   -1.0964958417604036E-003
  Couplings of hhh-model
  ---------------------------------
  
        GC_10 =  -0.12177E+01   0.00000E+00
        GC_11 =   0.00000E+00   0.12177E+01
       GC_116 =  -0.00000E+00  -0.70059E+00

 Collider parameters:
 --------------------

 Running at P P   machine @    13000.000000000000       GeV
 PDF set = lhapdf 
 alpha_s(Mz)= 0.1180 running at 3 loops.
 alpha_s(Mz)= 0.1180 running at 3 loops.
 Renormalization scale set on event-by-event basis
 Factorization   scale set on event-by-event basis


 Diagram information for  clustering has been set-up for nFKSprocess           1
 getting user params
Enter number of events and iterations: 
 Number of events and iterations           -1          12
Enter desired fractional accuracy: 
 Desired fractional accuracy:    2.9999999999999999E-002
 Enter alpha, beta for G_soft
   Enter alpha<0 to set G_soft=1 (no ME soft)
 for G_soft: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Enter alpha, beta for G_azi
   Enter alpha>0 to set G_azi=0 (no azi corr)
 for G_azi: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Doing the S and H events together
Suppress amplitude (0 no, 1 yes)? 
 Using suppressed amplitude.
Exact helicity sum (0 yes, n = number/event)? 
 Do MC over helicities for the virtuals
Enter Configuration Number: 
Running Configuration Number:    1
Enter running mode for MINT:
0 to set-up grids, 1 to integrate, 2 to generate events
 MINT running mode:           0
Set the three folding parameters for MINT
xi_i, phi_i, y_ij
           1           1           1
 'all ', 'born', 'real', 'virt', 'novi' or 'grid'?
 Enter 'born0' or 'virt0' to perform
  a pure n-body integration (no S functions)
 Process generated with [LOonly=QCD]. Setting abrv to "born".
 doing the born of this channel
 Normal integration (Sfunction != 1)
 Not subdividing B.W.
 about to integrate           10          -1          12           1
 imode is            0
channel    1 :     1 T        0        0  0.1000E+01  0.0000E+00  0.1000E+01
 ------- iteration           1
 Update # PS points (even):          800  -->          800
Using random seed offsets:     1 ,      3 ,      0
  with seed                   46
 Ranmar initialization seeds       27796        9423
 Total number of FKS directories is           1
 FKS process map (sum=           3 ) :
           1 -->           1 :           1
 ================================
 process combination map (specified per FKS dir):
  1 map         1   2   3   4   5
  1 inv. map    1   2   3   4   5
 ================================
tau_min   1     1 : 0.47000E+03  0.47000E+03  0.47000E+03
 bpower is   2.0000000000000000     
 Scale values (may change event by event):
 muR,  muR_reference:  0.345234D+03 0.345234D+03  1.00
 muF1, muF1_reference: 0.345234D+03 0.345234D+03  1.00
 muF2, muF2_reference: 0.345234D+03 0.345234D+03  1.00
 QES,  QES_reference:  0.345234D+03 0.345234D+03  1.00
  
 muR_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF1_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF2_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 QES_reference [functional form]: 
    H_T/2 := sum_i mT(i)/2, i=final state
  
 alpha_s=   9.8310587439672123E-002
ABS integral  = 0.2726E-01  +/-  0.1911E-02  (   7.011 %)
Integral      = 0.2714E-01  +/-  0.1913E-02  (   7.048 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2 per d.o.f. 0.0000E+00
accumulated results ABS integral  = 0.2726E-01  +/-  0.1911E-02  (   7.011 %)
accumulated results Integral      = 0.2714E-01  +/-  0.1913E-02  (   7.048 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.0000E+00
  1:  0                                                                                                   1
channel    1 :     1 T      800        0  0.2726E-01  0.2714E-01  0.2500E+00
 ------- iteration           2
 Update # PS points (even):         1600  -->         1600
ABS integral  = 0.2874E-01  +/-  0.1020E-02  (   3.548 %)
Integral      = 0.2866E-01  +/-  0.1021E-02  (   3.561 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.2549E+00
accumulated results ABS integral  = 0.2822E-01  +/-  0.8995E-03  (   3.187 %)
accumulated results Integral      = 0.2813E-01  +/-  0.9006E-03  (   3.201 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.2549E+00
  1:  0                                                                                                   1
channel    1 :     1 T     1600      800  0.2822E-01  0.2813E-01  0.6250E-01
 ------- iteration           3
 Update # PS points (even):         3200  -->         3072
ABS integral  = 0.2841E-01  +/-  0.5890E-03  (   2.074 %)
Integral      = 0.2831E-01  +/-  0.5902E-03  (   2.085 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.1472E-01
accumulated results ABS integral  = 0.2833E-01  +/-  0.4928E-03  (   1.739 %)
accumulated results Integral      = 0.2824E-01  +/-  0.4936E-03  (   1.748 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.1348E+00
  1:  0                                                                                                   1
channel    1 :     1 T     3072     1600  0.2833E-01  0.2824E-01  0.1562E-01
 ------- iteration           4
 Update # PS points (even):         6400  -->         6144
ABS integral  = 0.2782E-01  +/-  0.3666E-03  (   1.318 %)
Integral      = 0.2770E-01  +/-  0.3677E-03  (   1.327 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.3612E+00
accumulated results ABS integral  = 0.2804E-01  +/-  0.2941E-03  (   1.049 %)
accumulated results Integral      = 0.2793E-01  +/-  0.2949E-03  (   1.056 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.2103E+00
accumulated results last 3 iterations ABS integral  = 0.2811E-01  +/-  0.2977E-03  (   1.059 %)
accumulated results last 3 iterations Integral      = 0.2801E-01  +/-  0.2984E-03  (   1.065 %)
accumulated result last 3 iterrations Chi^2 per DoF = 0.3499E+00
  1:  0                                                                                                   1
 Found desired accuracy
channel    1 :     1 T     6143     3072  0.2804E-01  0.2793E-01  0.5000E-02
Thanks for using LHAPDF 6.1.6. Please make sure to cite the paper:
  Eur.Phys.J. C75 (2015) 3, 132  (http://arxiv.org/abs/1412.7420)
 -------
 Final result [ABS]:   2.8037673618096844E-002  +/-   2.9413294390312104E-004
 Final result:   2.7933382580582946E-002  +/-   2.9486600906797556E-004
 chi**2 per D.o.F.:  0.21027938226784815     
 Time spent in Born :    8.62546489E-02
 Time spent in PS_Generation :    5.55943511E-02
 Time spent in Reals_evaluation:    0.00000000    
 Time spent in MCsubtraction :    0.00000000    
 Time spent in Counter_terms :    0.00000000    
 Time spent in Integrated_CT :    0.00000000    
 Time spent in Virtuals :    0.00000000    
 Time spent in FxFx_cluster :    0.00000000    
 Time spent in Nbody_prefactor :    8.95328075E-02
 Time spent in N1body_prefactor :    0.00000000    
 Time spent in Adding_alphas_pdf :   0.679889083    
 Time spent in Reweight_scale :    0.00000000    
 Time spent in Reweight_pdf :    0.00000000    
 Time spent in Filling_plots :    0.00000000    
 Time spent in Applying_cuts :    2.15924643E-02
 Time spent in Sum_ident_contr :    1.53184235E-02
 Time spent in Pick_unwgt :    0.00000000    
 Time spent in Write_events :    0.00000000    
 Time spent in Other_tasks :   0.225317240    
 Time spent in Total :    1.17349899    
Time in seconds: 1



LOG file for integration channel /P0_uxu_httx/GB2, 0
==== LHAPDF6 USING DEFAULT-TYPE LHAGLUE INTERFACE ====
LHAPDF 6.1.6 loading /afs/cern.ch/work/s/sesanche/private/TTH_k3/MG5_aMC_v2_5_5/HEPTools/lhapdf6/share/LHAPDF/NNPDF30_nnlo_as_0118/NNPDF30_nnlo_as_0118_0000.dat
NNPDF30_nnlo_as_0118 PDF set, member #0, version 2; LHAPDF ID = 261000
 ===============================================================
 INFO: MadFKS read these parameters from FKS_params.dat                                                  
 ===============================================================
  > IRPoleCheckThreshold      =    1.0000000000000001E-005
  > PrecisionVirtualAtRunTime =    1.0000000000000000E-003
  > NHelForMCoverHels         =            4
  > VirtualFraction           =    1.0000000000000000     
  > MinVirtualFraction        =    5.0000000000000001E-003
 ===============================================================
 A PDF is used, so alpha_s(MZ) is going to be modified
 Old value of alpha_s from param_card:   0.11799999999999999     
 New value of alpha_s from PDF lhapdf :  0.11800222249017472     
 using LHAPDF
WARNING: the value of maxjetflavorspecified in the run_card (  4) is inconsistent with the number of light flavours inthe model. Hence it will be set to:  5
 *****************************************************
 *               MadGraph/MadEvent                   *
 *        --------------------------------           *
 *          http://madgraph.hep.uiuc.edu             *
 *          http://madgraph.phys.ucl.ac.be           *
 *          http://madgraph.roma2.infn.it            *
 *        --------------------------------           *
 *                                                   *
 *          PARAMETER AND COUPLING VALUES            *
 *                                                   *
 *****************************************************

  External Params
  ---------------------------------
  
 MU_R =    91.188000000000002     
 mdl_Gf =    1.1663789999999999E-005
 mdl_MW =    80.385000000000005     
 aS =   0.11799999999999999     
 mdl_ymt =    172.50000000000000     
 mdl_MZ =    91.187600000000003     
 mdl_MT =    172.50000000000000     
 mdl_MH =    125.00000000000000     
 mdl_WZ =    2.5047899999999998     
 mdl_WW =    2.0929099999999998     
 mdl_WT =    0.0000000000000000     
 mdl_WH =    3.5138499999999998E-003
  Internal Params
  ---------------------------------
  
 mdl_yb =    0.0000000000000000     
 mdl_CKM31 =    0.0000000000000000     
 mdl_CKM32 =    0.0000000000000000     
 mdl_MB__exp__4 =    0.0000000000000000     
 mdl_MB__exp__2 =    0.0000000000000000     
 mdl_CKM11 =    1.0000000000000000     
 mdl_SCKM33 =    1.0000000000000000     
 mdl_SCKM11 =    1.0000000000000000     
 mdl_vep =    0.0000000000000000     
 mdl_CKM33 =    1.0000000000000000     
 mdl_CMSParam =    0.0000000000000000     
 mdl_MC__exp__2 =    0.0000000000000000     
 mdl_SCKM33__exp__2 =    1.0000000000000000     
 mdl_Ql__exp__2 =    1.0000000000000000     
 mdl_conjg__CKM22 =    1.0000000000000000     
 mdl_SCKM22 =    1.0000000000000000     
 mdl_CKM22 =    1.0000000000000000     
 mdl_SCKM22__exp__2 =    1.0000000000000000     
 mdl_MD__exp__2 =    0.0000000000000000     
 mdl_MU__exp__2 =    0.0000000000000000     
 mdl_MM__exp__2 =    0.0000000000000000     
 mdl_MTA__exp__2 =    0.0000000000000000     
 mdl_Ql__exp__4 =    1.0000000000000000     
 mdl_conjg__CKM11 =    1.0000000000000000     
 mdl_lhv =    1.0000000000000000     
 mdl_conjg__CKM31 =    0.0000000000000000     
 mdl_conjg__CKM32 =    0.0000000000000000     
 mdl_conjg__CKM33 =    1.0000000000000000     
 mdl_Ncol =    3.0000000000000000     
 mdl_CA =    3.0000000000000000     
 mdl_TF =   0.50000000000000000     
 mdl_CF =    1.3333333333333333     
 mdl_MW__exp__2 =    6461.7482250000012     
 mdl_MZ__exp__2 =    8315.1783937600012     
 mdl_sw2 =   0.22289722252391819     
 mdl_complexi =  (  0.0000000000000000     ,  1.0000000000000000     )
 mdl_cw =   0.88153433142225479     
 mdl_sqrt__sw2 =   0.47211992387942936     
 mdl_sw =   0.47211992387942936     
 mdl_MH__exp__2 =    15625.000000000000     
 mdl_sqrt__2 =    1.4142135623730951     
 mdl_I3d =  -0.50000000000000000     
 mdl_I3u =   0.50000000000000000     
 mdl_I3l =  -0.50000000000000000     
 mdl_I3v =   0.50000000000000000     
 mdl_Qd =  -0.33333333333333331     
 mdl_Qu =   0.66666666666666663     
 mdl_Ql =   -1.0000000000000000     
 mdl_Ncol__exp__2 =    9.0000000000000000     
 mdl_sw__exp__2 =   0.22289722252391816     
 mdl_MT__exp__2 =    29756.250000000000     
 mdl_cw__exp__2 =   0.77710277747608170     
 mdl_MT__exp__4 =    885434414.06250000     
 mdl_sw__exp__4 =    4.9683171808877089E-002
 mdl_MW__exp__4 =    41754190.123290665     
 mdl_MT__exp__3 =    5132953.1250000000     
 mdl_MH__exp__4 =    244140625.00000000     
 mdl_MZ__exp__4 =    69142191.720053151     
 mdl_MT__exp__6 =    26347207783447.266     
 mdl_MW__exp__6 =    269805063915.48602     
 mdl_MT__exp__8 =    7.8399410160620275E+017
 mdl_MW__exp__8 =    1743412392851903.8     
 mdl_MT__exp__10 =    2.3328724485919570E+022
 mdl_MW__exp__10 =    1.1265491934953794E+019
 mdl_MZ__exp__6 =    574929658687.79749     
 mdl_sw__exp__6 =    1.1074241002377336E-002
 mdl_sw__exp__3 =   0.10523421973092847     
 mdl_MZ__exp__3 =    758241.16129882948     
 mdl_cw__exp__4 =   0.60388872676104055     
 mdl_cw__exp__6 =   0.46928360685249931     
 mdl_MH__exp__8 =    59604644775390624.     
 mdl_MH__exp__6 =    3814697265625.0000     
 mdl_cw__exp__3 =   0.68504277738875496     
 mdl_MW__exp__3 =    519427.63106662512     
 mdl_sw__exp__8 =    2.4684175609903992E-003
 mdl_sw__exp__10 =    5.5020341837402442E-004
 mdl_Qd__exp__3 =   -3.7037037037037028E-002
 mdl_Qd__exp__2 =   0.11111111111111110     
 mdl_I3d__exp__2 =   0.25000000000000000     
 mdl_I3d__exp__3 =  -0.12500000000000000     
 mdl_Qu__exp__3 =   0.29629629629629622     
 mdl_Qu__exp__2 =   0.44444444444444442     
 mdl_I3u__exp__2 =   0.25000000000000000     
 mdl_I3u__exp__3 =   0.12500000000000000     
 mdl_Ql__exp__3 =   -1.0000000000000000     
 mdl_I3l__exp__2 =   0.25000000000000000     
 mdl_I3l__exp__3 =  -0.12500000000000000     
 mdl_I3v__exp__3 =   0.12500000000000000     
 mdl_Qu__exp__4 =   0.19753086419753083     
 mdl_Qd__exp__4 =    1.2345679012345677E-002
 mdl_I3l__exp__4 =    6.2500000000000000E-002
 mdl_I3u__exp__4 =    6.2500000000000000E-002
 mdl_I3d__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__4 =    6.2500000000000000E-002
 mdl_I3v__exp__2 =   0.25000000000000000     
 mdl_aEW =    7.5623975817934608E-003
 aEWM1 =    132.23319578006701     
 mdl_sqrt__aEW =    8.6962046789352085E-002
 mdl_ee =   0.30827242942882549     
 mdl_g1 =   0.34969985676163423     
 mdl_gw =   0.65295365401175598     
 mdl_vev =    246.21961912951551     
 mdl_vev__exp__2 =    60624.100844283676     
 mdl_lam =   0.12886789067712254     
 mdl_yt =   0.99078960633529489     
 mdl_muH =    88.388347648318444     
 mdl_I233 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_I333 =  ( 0.99078960633529489     ,  0.0000000000000000     )
 mdl_AxialZUp =  -0.18517533314848042     
 mdl_AxialZDown =   0.18517533314848042     
 mdl_VectorZUp =    7.5108486645180356E-002
 mdl_VectorZDown =  -0.13014190989683039     
 mdl_AxialG0Up3 =  -0.70059404936883685     
 mdl_VectorHUp3 =  ( -0.0000000000000000     ,-0.70059404936883685     )
 mdl_VectorAUp =   0.20551495295255032     
 mdl_VectorADown =  -0.10275747647627516     
 mdl_VectorWmDxU =   0.23085397827612369     
 mdl_AxialWmDxU =  -0.23085397827612369     
 mdl_VectorWpUxD =   0.23085397827612369     
 mdl_AxialWpUxD =  -0.23085397827612369     
 mdl_VectorGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGpUx3D3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_VectorGmDx3U3 =  ( 0.49539480316764745     ,  0.0000000000000000     )
 mdl_AxialGmDx3U3 =  (-0.49539480316764745     ,  0.0000000000000000     )
 mdl_ee__exp__2 =    9.5031890745950198E-002
 mdl_ee__exp__3 =    2.9295711833468786E-002
 mdl_ee__exp__4 =    9.0310602587502144E-003
  Internal Params evaluated point by point
  ----------------------------------------
  
 mdl_sqrt__aS =   0.34351128074635334     
 mdl_G__exp__4 =    2.1987899468922913     
 mdl_G__exp__2 =    1.4828317324943823     
 mdl_G_UVc_1EPS_ =    3.1300472141406080E-003
 mdl_GWcft_UV_t_1EPS_ =   -3.1300472141406080E-003
 mdl_tWcft_UV_1EPS_ =   -1.8780283284843650E-002
 mdl_G__exp__3 =    1.8056676068262196     
 mdl_MU_R__exp__2 =    8315.2513440000002     
 mdl_GWcft_UV_t_FIN_ =    3.9906469785607433E-003
 mdl_tWcft_UV_FIN_ =   -1.0964958417604036E-003
  Couplings of hhh-model
  ---------------------------------
  
        GC_10 =  -0.12177E+01   0.00000E+00
        GC_11 =   0.00000E+00   0.12177E+01
       GC_116 =  -0.00000E+00  -0.70059E+00

 Collider parameters:
 --------------------

 Running at P P   machine @    13000.000000000000       GeV
 PDF set = lhapdf 
 alpha_s(Mz)= 0.1180 running at 3 loops.
 alpha_s(Mz)= 0.1180 running at 3 loops.
 Renormalization scale set on event-by-event basis
 Factorization   scale set on event-by-event basis


 Diagram information for  clustering has been set-up for nFKSprocess           1
 getting user params
Enter number of events and iterations: 
 Number of events and iterations           -1          12
Enter desired fractional accuracy: 
 Desired fractional accuracy:    2.9999999999999999E-002
 Enter alpha, beta for G_soft
   Enter alpha<0 to set G_soft=1 (no ME soft)
 for G_soft: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Enter alpha, beta for G_azi
   Enter alpha>0 to set G_azi=0 (no azi corr)
 for G_azi: alpha=   1.0000000000000000      , beta= -0.10000000000000001     
 Doing the S and H events together
Suppress amplitude (0 no, 1 yes)? 
 Using suppressed amplitude.
Exact helicity sum (0 yes, n = number/event)? 
 Do MC over helicities for the virtuals
Enter Configuration Number: 
Running Configuration Number:    2
Enter running mode for MINT:
0 to set-up grids, 1 to integrate, 2 to generate events
 MINT running mode:           0
Set the three folding parameters for MINT
xi_i, phi_i, y_ij
           1           1           1
 'all ', 'born', 'real', 'virt', 'novi' or 'grid'?
 Enter 'born0' or 'virt0' to perform
  a pure n-body integration (no S functions)
 Process generated with [LOonly=QCD]. Setting abrv to "born".
 doing the born of this channel
 Normal integration (Sfunction != 1)
 Not subdividing B.W.
 about to integrate           10          -1          12           2
 imode is            0
channel    1 :     2 T        0        0  0.1000E+01  0.0000E+00  0.1000E+01
 ------- iteration           1
 Update # PS points (even):          800  -->          800
Using random seed offsets:     2 ,      3 ,      0
  with seed                   46
 Ranmar initialization seeds       27797        9423
 Total number of FKS directories is           1
 FKS process map (sum=           3 ) :
           1 -->           1 :           1
 ================================
 process combination map (specified per FKS dir):
  1 map         1   2   3   4   5
  1 inv. map    1   2   3   4   5
 ================================
tau_min   1     1 : 0.47000E+03  0.47000E+03  0.47000E+03
 bpower is   2.0000000000000000     
 Scale values (may change event by event):
 muR,  muR_reference:  0.252673D+03 0.252673D+03  1.00
 muF1, muF1_reference: 0.252673D+03 0.252673D+03  1.00
 muF2, muF2_reference: 0.252673D+03 0.252673D+03  1.00
 QES,  QES_reference:  0.252673D+03 0.252673D+03  1.00
  
 muR_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF1_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 muF2_reference [functional form]:
    H_T/2 := sum_i mT(i)/2, i=final state
 QES_reference [functional form]: 
    H_T/2 := sum_i mT(i)/2, i=final state
  
 alpha_s=  0.10230112398727328     
ABS integral  = 0.2835E-01  +/-  0.2016E-02  (   7.110 %)
Integral      = 0.2826E-01  +/-  0.2017E-02  (   7.140 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2 per d.o.f. 0.0000E+00
accumulated results ABS integral  = 0.2835E-01  +/-  0.2016E-02  (   7.110 %)
accumulated results Integral      = 0.2826E-01  +/-  0.2017E-02  (   7.140 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.0000E+00
  1:  0                                                                                                   1
channel    1 :     2 T      800        0  0.2835E-01  0.2826E-01  0.2500E+00
 ------- iteration           2
 Update # PS points (even):         1600  -->         1600
ABS integral  = 0.2944E-01  +/-  0.9581E-03  (   3.254 %)
Integral      = 0.2931E-01  +/-  0.9602E-03  (   3.276 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.1339E+00
accumulated results ABS integral  = 0.2909E-01  +/-  0.8653E-03  (   2.975 %)
accumulated results Integral      = 0.2897E-01  +/-  0.8670E-03  (   2.993 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.1339E+00
  1:  0                                                                                                   1
channel    1 :     2 T     1600      800  0.2909E-01  0.2897E-01  0.6250E-01
 ------- iteration           3
 Update # PS points (even):         3200  -->         3072
ABS integral  = 0.2823E-01  +/-  0.5625E-03  (   1.992 %)
Integral      = 0.2813E-01  +/-  0.5640E-03  (   2.005 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.3594E+00
accumulated results ABS integral  = 0.2857E-01  +/-  0.4716E-03  (   1.651 %)
accumulated results Integral      = 0.2846E-01  +/-  0.4727E-03  (   1.661 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.2466E+00
  1:  0                                                                                                   1
channel    1 :     2 T     3072     1600  0.2857E-01  0.2846E-01  0.1562E-01
 ------- iteration           4
 Update # PS points (even):         6400  -->         6144
ABS integral  = 0.2865E-01  +/-  0.3856E-03  (   1.346 %)
Integral      = 0.2854E-01  +/-  0.3864E-03  (   1.354 %)
Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
Chi^2= 0.9524E-02
accumulated results ABS integral  = 0.2862E-01  +/-  0.2985E-03  (   1.043 %)
accumulated results Integral      = 0.2851E-01  +/-  0.2992E-03  (   1.049 %)
accumulated results Virtual       = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Virtual ratio = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results ABS virtual   = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated results Born*ao2pi    = 0.0000E+00  +/-  0.0000E+00  (   0.000 %)
accumulated result Chi^2 per DoF = 0.1676E+00
accumulated results last 3 iterations ABS integral  = 0.2867E-01  +/-  0.3019E-03  (   1.053 %)
accumulated results last 3 iterations Integral      = 0.2855E-01  +/-  0.3025E-03  (   1.059 %)
accumulated result last 3 iterrations Chi^2 per DoF = 0.3152E+00
  1:  0                                                                                                   1
 Found desired accuracy
channel    1 :     2 T     6153     3072  0.2862E-01  0.2851E-01  0.5000E-02
Thanks for using LHAPDF 6.1.6. Please make sure to cite the paper:
  Eur.Phys.J. C75 (2015) 3, 132  (http://arxiv.org/abs/1412.7420)
 -------
 Final result [ABS]:   2.8616791233975890E-002  +/-   2.9854438165169200E-004
 Final result:   2.8505959079790973E-002  +/-   2.9916677030200687E-004
 chi**2 per D.o.F.:  0.16760318587452736     
 Time spent in Born :    8.63177627E-02
 Time spent in PS_Generation :    5.44362552E-02
 Time spent in Reals_evaluation:    0.00000000    
 Time spent in MCsubtraction :    0.00000000    
 Time spent in Counter_terms :    0.00000000    
 Time spent in Integrated_CT :    0.00000000    
 Time spent in Virtuals :    0.00000000    
 Time spent in FxFx_cluster :    0.00000000    
 Time spent in Nbody_prefactor :    8.89639929E-02
 Time spent in N1body_prefactor :    0.00000000    
 Time spent in Adding_alphas_pdf :   0.678362966    
 Time spent in Reweight_scale :    0.00000000    
 Time spent in Reweight_pdf :    0.00000000    
 Time spent in Filling_plots :    0.00000000    
 Time spent in Applying_cuts :    2.06832662E-02
 Time spent in Sum_ident_contr :    1.52662769E-02
 Time spent in Pick_unwgt :    0.00000000    
 Time spent in Write_events :    0.00000000    
 Time spent in Other_tasks :   0.222741485    
 Time spent in Total :    1.16677201    
Time in seconds: 1