TSTP Solution File: SYO123^5 by Duper---1.0

View Problem - Process Solution 
%------------------------------------------------------------------------------
% File     : Duper---1.0
% Problem  : SYO123^5 : TPTP v8.1.2. Released v4.0.0.
% Transfm  : none
% Format   : tptp:raw
% Command  : duper %s

% Computer : n020.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  : 300s
% DateTime : Fri Sep  1 04:21:34 EDT 2023

% Result   : Theorem 3.44s 3.72s
% Output   : Proof 3.44s
% Verified : 
% SZS Type : -

% Comments : 
%------------------------------------------------------------------------------
%----WARNING: Could not form TPTP format derivation
%------------------------------------------------------------------------------
%----ORIGINAL SYSTEM OUTPUT
% 0.00/0.13  % Problem    : SYO123^5 : TPTP v8.1.2. Released v4.0.0.
% 0.00/0.14  % Command    : duper %s
% 0.14/0.35  % Computer : n020.cluster.edu
% 0.14/0.35  % Model    : x86_64 x86_64
% 0.14/0.35  % CPU      : Intel(R) Xeon(R) CPU E5-2620 v4 @ 2.10GHz
% 0.14/0.35  % Memory   : 8042.1875MB
% 0.14/0.35  % OS       : Linux 3.10.0-693.el7.x86_64
% 0.14/0.35  % CPULimit   : 300
% 0.14/0.35  % WCLimit    : 300
% 0.14/0.35  % DateTime   : Fri Aug 25 23:15:45 EDT 2023
% 0.14/0.35  % CPUTime    : 
% 3.44/3.72  SZS status Theorem for theBenchmark.p
% 3.44/3.72  SZS output start Proof for theBenchmark.p
% 3.44/3.72  Clause #0 (by assumption #[]): Eq (Not ((∀ (Xx : Iota), cP Xx) → And (cP a) (cP b))) True
% 3.44/3.72  Clause #1 (by clausification #[0]): Eq ((∀ (Xx : Iota), cP Xx) → And (cP a) (cP b)) False
% 3.44/3.72  Clause #2 (by clausification #[1]): Eq (∀ (Xx : Iota), cP Xx) True
% 3.44/3.72  Clause #3 (by clausification #[1]): Eq (And (cP a) (cP b)) False
% 3.44/3.72  Clause #4 (by clausification #[2]): ∀ (a : Iota), Eq (cP a) True
% 3.44/3.72  Clause #5 (by clausification #[3]): Or (Eq (cP a) False) (Eq (cP b) False)
% 3.44/3.72  Clause #6 (by forward demodulation #[5, 4]): Or (Eq True False) (Eq (cP b) False)
% 3.44/3.72  Clause #7 (by clausification #[6]): Eq (cP b) False
% 3.44/3.72  Clause #8 (by superposition #[7, 4]): Eq False True
% 3.44/3.72  Clause #9 (by clausification #[8]): False
% 3.44/3.72  SZS output end Proof for theBenchmark.p
%------------------------------------------------------------------------------