/export/starexec/sandbox2/solver/bin/starexec_run_standard /export/starexec/sandbox2/benchmark/theBenchmark.xml /export/starexec/sandbox2/output/output_files -------------------------------------------------------------------------------- YES proof of /export/starexec/sandbox2/benchmark/theBenchmark.xml # AProVE Commit ID: 48fb2092695e11cc9f56e44b17a92a5f88ffb256 marcel 20180622 unpublished dirty Termination w.r.t. Q of the given QTRS could be proven: (0) QTRS (1) AAECC Innermost [EQUIVALENT, 0 ms] (2) QTRS (3) DependencyPairsProof [EQUIVALENT, 0 ms] (4) QDP (5) UsableRulesProof [EQUIVALENT, 0 ms] (6) QDP (7) QReductionProof [EQUIVALENT, 0 ms] (8) QDP (9) QDPToSRSProof [SOUND, 0 ms] (10) QTRS (11) DependencyPairsProof [EQUIVALENT, 0 ms] (12) QDP (13) DependencyGraphProof [EQUIVALENT, 0 ms] (14) TRUE ---------------------------------------- (0) Obligation: Q restricted rewrite system: The TRS R consists of the following rules: f(x, a(b(c(y)))) -> f(b(c(a(b(x)))), y) f(a(x), y) -> f(x, a(y)) f(b(x), y) -> f(x, b(y)) f(c(x), y) -> f(x, c(y)) Q is empty. ---------------------------------------- (1) AAECC Innermost (EQUIVALENT) We have applied [NOC,AAECCNOC] to switch to innermost. The TRS R 1 is none The TRS R 2 is f(x, a(b(c(y)))) -> f(b(c(a(b(x)))), y) f(a(x), y) -> f(x, a(y)) f(b(x), y) -> f(x, b(y)) f(c(x), y) -> f(x, c(y)) The signature Sigma is {f_2} ---------------------------------------- (2) Obligation: Q restricted rewrite system: The TRS R consists of the following rules: f(x, a(b(c(y)))) -> f(b(c(a(b(x)))), y) f(a(x), y) -> f(x, a(y)) f(b(x), y) -> f(x, b(y)) f(c(x), y) -> f(x, c(y)) The set Q consists of the following terms: f(x0, a(b(c(x1)))) f(a(x0), x1) f(b(x0), x1) f(c(x0), x1) ---------------------------------------- (3) DependencyPairsProof (EQUIVALENT) Using Dependency Pairs [AG00,LPAR04] we result in the following initial DP problem. ---------------------------------------- (4) Obligation: Q DP problem: The TRS P consists of the following rules: F(x, a(b(c(y)))) -> F(b(c(a(b(x)))), y) F(a(x), y) -> F(x, a(y)) F(b(x), y) -> F(x, b(y)) F(c(x), y) -> F(x, c(y)) The TRS R consists of the following rules: f(x, a(b(c(y)))) -> f(b(c(a(b(x)))), y) f(a(x), y) -> f(x, a(y)) f(b(x), y) -> f(x, b(y)) f(c(x), y) -> f(x, c(y)) The set Q consists of the following terms: f(x0, a(b(c(x1)))) f(a(x0), x1) f(b(x0), x1) f(c(x0), x1) We have to consider all minimal (P,Q,R)-chains. ---------------------------------------- (5) UsableRulesProof (EQUIVALENT) As all Q-normal forms are R-normal forms we are in the innermost case. Hence, by the usable rules processor [LPAR04] we can delete all non-usable rules [FROCOS05] from R. ---------------------------------------- (6) Obligation: Q DP problem: The TRS P consists of the following rules: F(x, a(b(c(y)))) -> F(b(c(a(b(x)))), y) F(a(x), y) -> F(x, a(y)) F(b(x), y) -> F(x, b(y)) F(c(x), y) -> F(x, c(y)) R is empty. The set Q consists of the following terms: f(x0, a(b(c(x1)))) f(a(x0), x1) f(b(x0), x1) f(c(x0), x1) We have to consider all minimal (P,Q,R)-chains. ---------------------------------------- (7) QReductionProof (EQUIVALENT) We deleted the following terms from Q as each root-symbol of these terms does neither occur in P nor in R.[THIEMANN]. f(x0, a(b(c(x1)))) f(a(x0), x1) f(b(x0), x1) f(c(x0), x1) ---------------------------------------- (8) Obligation: Q DP problem: The TRS P consists of the following rules: F(x, a(b(c(y)))) -> F(b(c(a(b(x)))), y) F(a(x), y) -> F(x, a(y)) F(b(x), y) -> F(x, b(y)) F(c(x), y) -> F(x, c(y)) R is empty. Q is empty. We have to consider all minimal (P,Q,R)-chains. ---------------------------------------- (9) QDPToSRSProof (SOUND) The finiteness of this DP problem is implied by strong termination of a SRS due to [UNKNOWN]. ---------------------------------------- (10) Obligation: Q restricted rewrite system: The TRS R consists of the following rules: a(b(c(x))) -> b(a(c(b(x)))) Q is empty. ---------------------------------------- (11) DependencyPairsProof (EQUIVALENT) Using Dependency Pairs [AG00,LPAR04] we result in the following initial DP problem. ---------------------------------------- (12) Obligation: Q DP problem: The TRS P consists of the following rules: A(b(c(x))) -> A(c(b(x))) The TRS R consists of the following rules: a(b(c(x))) -> b(a(c(b(x)))) Q is empty. We have to consider all minimal (P,Q,R)-chains. ---------------------------------------- (13) DependencyGraphProof (EQUIVALENT) The approximation of the Dependency Graph [LPAR04,FROCOS05,EDGSTAR] contains 0 SCCs with 1 less node. ---------------------------------------- (14) TRUE