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1
 enter npoints,number_propagators,rank,scaloop,muscale
 
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 scaloop= 1 -> looptools 1-loop 
 
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 scaloop= 2 -> avh 1-loop (massive with complex masses)
 
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 scaloop= 3 -> qcdloop   1-loop (Ellis and Zanderighi)
 
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 muscale (dimension of energy) is the scale
 
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 for the 1-loop integrals
 
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------------------------------------------------------------------------
 
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|              You are using CutTools - Version 1.9.0                  |
 
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|              Authors: G. Ossola, C. Papadopoulos, R. Pittau          |
 
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|              Published in JHEP 0803:042,2008                         |
 
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|              http://www.ugr.es/~pittau/CutTools                      |
 
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|                                                                      |
 
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|              Compiler with  34  significant digits detetected        |
 
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 ---------------------------------------------------------------------- 
 
18
   
 
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########################################################################
 
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#                                                                      #
 
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#                      You are using OneLOop-3.2                       #
 
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#                                                                      #
 
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# for the evaluation of 1-loop scalar 1-, 2-, 3- and 4-point functions #
 
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#                                                                      #
 
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# author: Andreas van Hameren <hamerenREMOVETHIS@ifj.edu.pl>           #
 
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#   date: 19-07-2012                                                   #
 
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#                                                                      #
 
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# Please cite                                                          #
 
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#    A. van Hameren,                                                   #
 
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#      Comput.Phys.Commun. 182 (2011) 2427-2438, arXiv:1007.4716       #
 
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#    A. van Hameren, C.G. Papadopoulos and R. Pittau,                  #
 
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#      JHEP 0909:106,2009, arXiv:0903.4665                             #
 
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# in publications with results obtained with the help of this program. #
 
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#                                                                      #
 
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########################################################################
 
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   iter=            1
 
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  Complete Amplitude (without r2):     
 
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  finite part           amp(0)= (  6.0000000000000000     ,  0.0000000000000000     )
 
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  coeff of 1/eps   pole amp(1)= (  6.0000000000000000     ,  0.0000000000000000     )
 
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  coeff of 1/eps^2 pole amp(2)= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                         ampcc= (  6.0000000000000000     ,  0.0000000000000000     )
 
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                            R1= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                        stable= T
 
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   iter=            2
 
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  Complete Amplitude (without r2):     
 
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  finite part           amp(0)= (  6.0000000000000000     ,  0.0000000000000000     )
 
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  coeff of 1/eps   pole amp(1)= (  6.0000000000000000     ,  0.0000000000000000     )
 
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  coeff of 1/eps^2 pole amp(2)= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                         ampcc= (  6.0000000000000000     ,  0.0000000000000000     )
 
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                            R1= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                        stable= T
 
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   iter=            3
 
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  Complete Amplitude (without r2):     
 
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  finite part           amp(0)= (  6.0000000000000000     ,  0.0000000000000000     )
 
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  coeff of 1/eps   pole amp(1)= (  6.0000000000000000     ,  0.0000000000000000     )
 
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  coeff of 1/eps^2 pole amp(2)= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                         ampcc= (  6.0000000000000000     ,  0.0000000000000000     )
 
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                            R1= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                        stable= T
 
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   iter=            4
 
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  Complete Amplitude (without r2):     
 
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  finite part           amp(0)= (  6.0000000000000000     ,  0.0000000000000000     )
 
86
  coeff of 1/eps   pole amp(1)= (  6.0000000000000000     ,  0.0000000000000000     )
 
87
  coeff of 1/eps^2 pole amp(2)= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                         ampcc= (  6.0000000000000000     ,  0.0000000000000000     )
 
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                            R1= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                        stable= T
 
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   iter=            5
 
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  Complete Amplitude (without r2):     
 
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  finite part           amp(0)= (  6.0000000000000000     ,  0.0000000000000000     )
 
100
  coeff of 1/eps   pole amp(1)= (  6.0000000000000000     ,  0.0000000000000000     )
 
101
  coeff of 1/eps^2 pole amp(2)= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                         ampcc= (  6.0000000000000000     ,  0.0000000000000000     )
 
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                            R1= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                        stable= T
 
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   iter=            6
 
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  Complete Amplitude (without r2):     
 
111
                
 
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  finite part           amp(0)= (  6.0000000000000000     ,  0.0000000000000000     )
 
114
  coeff of 1/eps   pole amp(1)= (  6.0000000000000000     ,  0.0000000000000000     )
 
115
  coeff of 1/eps^2 pole amp(2)= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                         ampcc= (  6.0000000000000000     ,  0.0000000000000000     )
 
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                            R1= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                        stable= T
 
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   iter=            7
 
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  Complete Amplitude (without r2):     
 
125
                
 
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  finite part           amp(0)= (  6.0000000000000000     ,  0.0000000000000000     )
 
128
  coeff of 1/eps   pole amp(1)= (  6.0000000000000000     ,  0.0000000000000000     )
 
129
  coeff of 1/eps^2 pole amp(2)= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                         ampcc= (  6.0000000000000000     ,  0.0000000000000000     )
 
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                            R1= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                        stable= T
 
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   iter=            8
 
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138
  Complete Amplitude (without r2):     
 
139
                
 
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  finite part           amp(0)= (  6.0000000000000000     ,  0.0000000000000000     )
 
142
  coeff of 1/eps   pole amp(1)= (  6.0000000000000000     ,  0.0000000000000000     )
 
143
  coeff of 1/eps^2 pole amp(2)= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                         ampcc= (  6.0000000000000000     ,  0.0000000000000000     )
 
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                            R1= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                        stable= T
 
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   iter=            9
 
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  Complete Amplitude (without r2):     
 
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  finite part           amp(0)= (  6.0000000000000000     ,  0.0000000000000000     )
 
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  coeff of 1/eps   pole amp(1)= (  6.0000000000000000     ,  0.0000000000000000     )
 
157
  coeff of 1/eps^2 pole amp(2)= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                         ampcc= (  6.0000000000000000     ,  0.0000000000000000     )
 
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                            R1= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                        stable= T
 
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   iter=           10
 
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166
  Complete Amplitude (without r2):     
 
167
                
 
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  finite part           amp(0)= (  6.0000000000000000     ,  0.0000000000000000     )
 
170
  coeff of 1/eps   pole amp(1)= (  6.0000000000000000     ,  0.0000000000000000     )
 
171
  coeff of 1/eps^2 pole amp(2)= (  0.0000000000000000     ,  0.0000000000000000     )
 
172
                         ampcc= (  6.0000000000000000     ,  0.0000000000000000     )
 
173
                            R1= (  0.0000000000000000     ,  0.0000000000000000     )
 
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                        stable= T
 
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 n_tot =   10.000000000000000     
 
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 n_mp  =   0.0000000000000000     
 
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 n_unst=   0.0000000000000000