TSTP Solution File: GEO178+2 by Metis---2.4

View Problem - Process Solution

%------------------------------------------------------------------------------
% File     : Metis---2.4
% Problem  : GEO178+2 : TPTP v8.1.0. Released v3.3.0.
% Transfm  : none
% Format   : tptp:raw
% Command  : metis --show proof --show saturation %s

% Computer : n011.cluster.edu
% Model    : x86_64 x86_64
% CPU      : Intel(R) Xeon(R) CPU E5-2620 v4 2.10GHz
% Memory   : 8042.1875MB
% OS       : Linux 3.10.0-693.el7.x86_64
% CPULimit : 300s
% WCLimit  : 600s
% DateTime : Sat Jul 16 05:24:56 EDT 2022

% Result   : Theorem 0.14s 0.37s
% Output   : CNFRefutation 0.14s
% Verified : 
% SZS Type : Refutation
%            Derivation depth      :    9
%            Number of leaves      :    2
% Syntax   : Number of formulae    :   40 (  16 unt;   0 def)
%            Number of atoms       :  102 (   0 equ)
%            Maximal formula atoms :    6 (   2 avg)
%            Number of connectives :  102 (  40   ~;  30   |;  25   &)
%                                         (   0 <=>;   7  =>;   0  <=;   0 <~>)
%            Maximal formula depth :    8 (   4 avg)
%            Maximal term depth    :    2 (   1 avg)
%            Number of predicates  :    3 (   2 usr;   1 prp; 0-2 aty)
%            Number of functors    :    7 (   7 usr;   6 con; 0-2 aty)
%            Number of variables   :   54 (   0 sgn  42   !;   6   ?)

% Comments : 
%------------------------------------------------------------------------------
fof(con1,axiom,
    ! [X,Y,Z] :
      ( distinct_points(X,Y)
     => ( apart_point_and_line(Z,line_connecting(X,Y))
       => ( distinct_points(Z,X)
          & distinct_points(Z,Y) ) ) ) ).

fof(con,conjecture,
    ! [X,Y,Z] :
      ( ( distinct_points(X,Y)
        & apart_point_and_line(Z,line_connecting(X,Y)) )
     => ( distinct_points(Z,X)
        & distinct_points(Z,Y) ) ) ).

fof(subgoal_0,plain,
    ! [X,Y,Z] :
      ( ( distinct_points(X,Y)
        & apart_point_and_line(Z,line_connecting(X,Y)) )
     => distinct_points(Z,X) ),
    inference(strip,[],[con]) ).

fof(subgoal_1,plain,
    ! [X,Y,Z] :
      ( ( distinct_points(X,Y)
        & apart_point_and_line(Z,line_connecting(X,Y))
        & distinct_points(Z,X) )
     => distinct_points(Z,Y) ),
    inference(strip,[],[con]) ).

fof(negate_0_0,plain,
    ~ ! [X,Y,Z] :
        ( ( distinct_points(X,Y)
          & apart_point_and_line(Z,line_connecting(X,Y)) )
       => distinct_points(Z,X) ),
    inference(negate,[],[subgoal_0]) ).

fof(normalize_0_0,plain,
    ? [X,Y,Z] :
      ( ~ distinct_points(Z,X)
      & apart_point_and_line(Z,line_connecting(X,Y))
      & distinct_points(X,Y) ),
    inference(canonicalize,[],[negate_0_0]) ).

fof(normalize_0_1,plain,
    ( ~ distinct_points(skolemFOFtoCNF_Z,skolemFOFtoCNF_X)
    & apart_point_and_line(skolemFOFtoCNF_Z,line_connecting(skolemFOFtoCNF_X,skolemFOFtoCNF_Y))
    & distinct_points(skolemFOFtoCNF_X,skolemFOFtoCNF_Y) ),
    inference(skolemize,[],[normalize_0_0]) ).

fof(normalize_0_2,plain,
    apart_point_and_line(skolemFOFtoCNF_Z,line_connecting(skolemFOFtoCNF_X,skolemFOFtoCNF_Y)),
    inference(conjunct,[],[normalize_0_1]) ).

fof(normalize_0_3,plain,
    ! [X,Y,Z] :
      ( ~ apart_point_and_line(Z,line_connecting(X,Y))
      | ~ distinct_points(X,Y)
      | ( distinct_points(Z,X)
        & distinct_points(Z,Y) ) ),
    inference(canonicalize,[],[con1]) ).

fof(normalize_0_4,plain,
    ! [X,Y,Z] :
      ( ~ apart_point_and_line(Z,line_connecting(X,Y))
      | ~ distinct_points(X,Y)
      | ( distinct_points(Z,X)
        & distinct_points(Z,Y) ) ),
    inference(specialize,[],[normalize_0_3]) ).

fof(normalize_0_5,plain,
    ! [X,Y,Z] :
      ( ( ~ apart_point_and_line(Z,line_connecting(X,Y))
        | ~ distinct_points(X,Y)
        | distinct_points(Z,X) )
      & ( ~ apart_point_and_line(Z,line_connecting(X,Y))
        | ~ distinct_points(X,Y)
        | distinct_points(Z,Y) ) ),
    inference(clausify,[],[normalize_0_4]) ).

fof(normalize_0_6,plain,
    ! [X,Y,Z] :
      ( ~ apart_point_and_line(Z,line_connecting(X,Y))
      | ~ distinct_points(X,Y)
      | distinct_points(Z,X) ),
    inference(conjunct,[],[normalize_0_5]) ).

fof(normalize_0_7,plain,
    distinct_points(skolemFOFtoCNF_X,skolemFOFtoCNF_Y),
    inference(conjunct,[],[normalize_0_1]) ).

fof(normalize_0_8,plain,
    ~ distinct_points(skolemFOFtoCNF_Z,skolemFOFtoCNF_X),
    inference(conjunct,[],[normalize_0_1]) ).

cnf(refute_0_0,plain,
    apart_point_and_line(skolemFOFtoCNF_Z,line_connecting(skolemFOFtoCNF_X,skolemFOFtoCNF_Y)),
    inference(canonicalize,[],[normalize_0_2]) ).

cnf(refute_0_1,plain,
    ( ~ apart_point_and_line(Z,line_connecting(X,Y))
    | ~ distinct_points(X,Y)
    | distinct_points(Z,X) ),
    inference(canonicalize,[],[normalize_0_6]) ).

cnf(refute_0_2,plain,
    ( ~ apart_point_and_line(skolemFOFtoCNF_Z,line_connecting(skolemFOFtoCNF_X,skolemFOFtoCNF_Y))
    | ~ distinct_points(skolemFOFtoCNF_X,skolemFOFtoCNF_Y)
    | distinct_points(skolemFOFtoCNF_Z,skolemFOFtoCNF_X) ),
    inference(subst,[],[refute_0_1:[bind(X,$fot(skolemFOFtoCNF_X)),bind(Y,$fot(skolemFOFtoCNF_Y)),bind(Z,$fot(skolemFOFtoCNF_Z))]]) ).

cnf(refute_0_3,plain,
    ( ~ distinct_points(skolemFOFtoCNF_X,skolemFOFtoCNF_Y)
    | distinct_points(skolemFOFtoCNF_Z,skolemFOFtoCNF_X) ),
    inference(resolve,[$cnf( apart_point_and_line(skolemFOFtoCNF_Z,line_connecting(skolemFOFtoCNF_X,skolemFOFtoCNF_Y)) )],[refute_0_0,refute_0_2]) ).

cnf(refute_0_4,plain,
    distinct_points(skolemFOFtoCNF_X,skolemFOFtoCNF_Y),
    inference(canonicalize,[],[normalize_0_7]) ).

cnf(refute_0_5,plain,
    distinct_points(skolemFOFtoCNF_Z,skolemFOFtoCNF_X),
    inference(resolve,[$cnf( distinct_points(skolemFOFtoCNF_X,skolemFOFtoCNF_Y) )],[refute_0_4,refute_0_3]) ).

cnf(refute_0_6,plain,
    ~ distinct_points(skolemFOFtoCNF_Z,skolemFOFtoCNF_X),
    inference(canonicalize,[],[normalize_0_8]) ).

cnf(refute_0_7,plain,
    $false,
    inference(resolve,[$cnf( distinct_points(skolemFOFtoCNF_Z,skolemFOFtoCNF_X) )],[refute_0_5,refute_0_6]) ).

fof(negate_1_0,plain,
    ~ ! [X,Y,Z] :
        ( ( distinct_points(X,Y)
          & apart_point_and_line(Z,line_connecting(X,Y))
          & distinct_points(Z,X) )
       => distinct_points(Z,Y) ),
    inference(negate,[],[subgoal_1]) ).

fof(normalize_1_0,plain,
    ? [X,Y,Z] :
      ( ~ distinct_points(Z,Y)
      & apart_point_and_line(Z,line_connecting(X,Y))
      & distinct_points(X,Y)
      & distinct_points(Z,X) ),
    inference(canonicalize,[],[negate_1_0]) ).

fof(normalize_1_1,plain,
    ( ~ distinct_points(skolemFOFtoCNF_Z_1,skolemFOFtoCNF_Y_1)
    & apart_point_and_line(skolemFOFtoCNF_Z_1,line_connecting(skolemFOFtoCNF_X_1,skolemFOFtoCNF_Y_1))
    & distinct_points(skolemFOFtoCNF_X_1,skolemFOFtoCNF_Y_1)
    & distinct_points(skolemFOFtoCNF_Z_1,skolemFOFtoCNF_X_1) ),
    inference(skolemize,[],[normalize_1_0]) ).

fof(normalize_1_2,plain,
    apart_point_and_line(skolemFOFtoCNF_Z_1,line_connecting(skolemFOFtoCNF_X_1,skolemFOFtoCNF_Y_1)),
    inference(conjunct,[],[normalize_1_1]) ).

fof(normalize_1_3,plain,
    ! [X,Y,Z] :
      ( ~ apart_point_and_line(Z,line_connecting(X,Y))
      | ~ distinct_points(X,Y)
      | ( distinct_points(Z,X)
        & distinct_points(Z,Y) ) ),
    inference(canonicalize,[],[con1]) ).

fof(normalize_1_4,plain,
    ! [X,Y,Z] :
      ( ~ apart_point_and_line(Z,line_connecting(X,Y))
      | ~ distinct_points(X,Y)
      | ( distinct_points(Z,X)
        & distinct_points(Z,Y) ) ),
    inference(specialize,[],[normalize_1_3]) ).

fof(normalize_1_5,plain,
    ! [X,Y,Z] :
      ( ( ~ apart_point_and_line(Z,line_connecting(X,Y))
        | ~ distinct_points(X,Y)
        | distinct_points(Z,X) )
      & ( ~ apart_point_and_line(Z,line_connecting(X,Y))
        | ~ distinct_points(X,Y)
        | distinct_points(Z,Y) ) ),
    inference(clausify,[],[normalize_1_4]) ).

fof(normalize_1_6,plain,
    ! [X,Y,Z] :
      ( ~ apart_point_and_line(Z,line_connecting(X,Y))
      | ~ distinct_points(X,Y)
      | distinct_points(Z,Y) ),
    inference(conjunct,[],[normalize_1_5]) ).

fof(normalize_1_7,plain,
    distinct_points(skolemFOFtoCNF_X_1,skolemFOFtoCNF_Y_1),
    inference(conjunct,[],[normalize_1_1]) ).

fof(normalize_1_8,plain,
    ~ distinct_points(skolemFOFtoCNF_Z_1,skolemFOFtoCNF_Y_1),
    inference(conjunct,[],[normalize_1_1]) ).

cnf(refute_1_0,plain,
    apart_point_and_line(skolemFOFtoCNF_Z_1,line_connecting(skolemFOFtoCNF_X_1,skolemFOFtoCNF_Y_1)),
    inference(canonicalize,[],[normalize_1_2]) ).

cnf(refute_1_1,plain,
    ( ~ apart_point_and_line(Z,line_connecting(X,Y))
    | ~ distinct_points(X,Y)
    | distinct_points(Z,Y) ),
    inference(canonicalize,[],[normalize_1_6]) ).

cnf(refute_1_2,plain,
    ( ~ apart_point_and_line(skolemFOFtoCNF_Z_1,line_connecting(skolemFOFtoCNF_X_1,skolemFOFtoCNF_Y_1))
    | ~ distinct_points(skolemFOFtoCNF_X_1,skolemFOFtoCNF_Y_1)
    | distinct_points(skolemFOFtoCNF_Z_1,skolemFOFtoCNF_Y_1) ),
    inference(subst,[],[refute_1_1:[bind(X,$fot(skolemFOFtoCNF_X_1)),bind(Y,$fot(skolemFOFtoCNF_Y_1)),bind(Z,$fot(skolemFOFtoCNF_Z_1))]]) ).

cnf(refute_1_3,plain,
    ( ~ distinct_points(skolemFOFtoCNF_X_1,skolemFOFtoCNF_Y_1)
    | distinct_points(skolemFOFtoCNF_Z_1,skolemFOFtoCNF_Y_1) ),
    inference(resolve,[$cnf( apart_point_and_line(skolemFOFtoCNF_Z_1,line_connecting(skolemFOFtoCNF_X_1,skolemFOFtoCNF_Y_1)) )],[refute_1_0,refute_1_2]) ).

cnf(refute_1_4,plain,
    distinct_points(skolemFOFtoCNF_X_1,skolemFOFtoCNF_Y_1),
    inference(canonicalize,[],[normalize_1_7]) ).

cnf(refute_1_5,plain,
    distinct_points(skolemFOFtoCNF_Z_1,skolemFOFtoCNF_Y_1),
    inference(resolve,[$cnf( distinct_points(skolemFOFtoCNF_X_1,skolemFOFtoCNF_Y_1) )],[refute_1_4,refute_1_3]) ).

cnf(refute_1_6,plain,
    ~ distinct_points(skolemFOFtoCNF_Z_1,skolemFOFtoCNF_Y_1),
    inference(canonicalize,[],[normalize_1_8]) ).

cnf(refute_1_7,plain,
    $false,
    inference(resolve,[$cnf( distinct_points(skolemFOFtoCNF_Z_1,skolemFOFtoCNF_Y_1) )],[refute_1_5,refute_1_6]) ).

%------------------------------------------------------------------------------
%----ORIGINAL SYSTEM OUTPUT
% 0.07/0.12  % Problem  : GEO178+2 : TPTP v8.1.0. Released v3.3.0.
% 0.07/0.13  % Command  : metis --show proof --show saturation %s
% 0.14/0.34  % Computer : n011.cluster.edu
% 0.14/0.34  % Model    : x86_64 x86_64
% 0.14/0.34  % CPU      : Intel(R) Xeon(R) CPU E5-2620 v4 @ 2.10GHz
% 0.14/0.34  % Memory   : 8042.1875MB
% 0.14/0.34  % OS       : Linux 3.10.0-693.el7.x86_64
% 0.14/0.34  % CPULimit : 300
% 0.14/0.34  % WCLimit  : 600
% 0.14/0.34  % DateTime : Sat Jun 18 10:25:53 EDT 2022
% 0.14/0.34  % CPUTime  : 
% 0.14/0.35  %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
% 0.14/0.37  % SZS status Theorem for /export/starexec/sandbox2/benchmark/theBenchmark.p
% 0.14/0.37  
% 0.14/0.37  % SZS output start CNFRefutation for /export/starexec/sandbox2/benchmark/theBenchmark.p
% See solution above
% 0.14/0.38  
%------------------------------------------------------------------------------