TPTP Problem File: COL061-2.p
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%--------------------------------------------------------------------------
% File : COL061-2 : TPTP v8.2.0. Bugfixed v1.2.0.
% Domain : Combinatory Logic
% Problem : Find combinator equivalent to Q1 from B and T
% Version : [WM88] (equality) axioms.
% Theorem formulation : The combinator is provided and checked.
% English : Construct from B and T alone a combinator that behaves as the
% combinator Q1 does, where ((Bx)y)z = x(yz), (Tx)y = yx,
% ((Q1x)y)z = x(zy).
% Refs : [WM88] Wos & McCune (1988), Challenge Problems Focusing on Eq
% : [WW+90] Wos et al. (1990), Automated Reasoning Contributes to
% Source : [TPTP]
% Names :
% Status : Unsatisfiable
% Rating : 0.00 v8.2.0, 0.04 v8.1.0, 0.10 v7.5.0, 0.08 v7.4.0, 0.13 v7.3.0, 0.05 v7.1.0, 0.00 v7.0.0, 0.05 v6.4.0, 0.11 v6.3.0, 0.06 v6.2.0, 0.07 v6.1.0, 0.00 v6.0.0, 0.10 v5.5.0, 0.11 v5.4.0, 0.00 v5.2.0, 0.07 v5.1.0, 0.00 v5.0.0, 0.07 v4.1.0, 0.09 v4.0.1, 0.07 v4.0.0, 0.08 v3.7.0, 0.11 v3.4.0, 0.12 v3.3.0, 0.00 v2.1.0, 0.29 v2.0.0
% Syntax : Number of clauses : 3 ( 3 unt; 0 nHn; 1 RR)
% Number of literals : 3 ( 3 equ; 1 neg)
% Maximal clause size : 1 ( 1 avg)
% Maximal term depth : 7 ( 2 avg)
% Number of predicates : 1 ( 0 usr; 0 prp; 2-2 aty)
% Number of functors : 6 ( 6 usr; 5 con; 0-2 aty)
% Number of variables : 5 ( 0 sgn)
% SPC : CNF_UNS_RFO_PEQ_UEQ
% Comments :
% Bugfixes : v1.2.0 : Redundant [fgh]_substitution axioms removed.
%--------------------------------------------------------------------------
cnf(b_definition,axiom,
apply(apply(apply(b,X),Y),Z) = apply(X,apply(Y,Z)) ).
cnf(t_definition,axiom,
apply(apply(t,X),Y) = apply(Y,X) ).
%----This is the Q1 equivalent
cnf(prove_q1_combinator,negated_conjecture,
apply(apply(apply(apply(apply(b,apply(t,t)),apply(apply(b,b),b)),x),y),z) != apply(x,apply(z,y)) ).
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