/export/starexec/sandbox/solver/bin/starexec_run_default /export/starexec/sandbox/benchmark/theBenchmark.xml /export/starexec/sandbox/output/output_files -------------------------------------------------------------------------------- YES Problem 1: (VAR X) (RULES active(g(X)) -> mark(h(X)) active(h(d)) -> mark(g(c)) active(c) -> mark(d) g(active(X)) -> g(X) g(mark(X)) -> g(X) h(active(X)) -> h(X) h(mark(X)) -> h(X) mark(g(X)) -> active(g(X)) mark(h(X)) -> active(h(X)) mark(c) -> active(c) mark(d) -> active(d) ) Problem 1: Dependency Pairs Processor: -> Pairs: ACTIVE(g(X)) -> H(X) ACTIVE(g(X)) -> MARK(h(X)) ACTIVE(h(d)) -> MARK(g(c)) ACTIVE(c) -> MARK(d) G(active(X)) -> G(X) G(mark(X)) -> G(X) H(active(X)) -> H(X) H(mark(X)) -> H(X) MARK(g(X)) -> ACTIVE(g(X)) MARK(h(X)) -> ACTIVE(h(X)) MARK(c) -> ACTIVE(c) -> Rules: active(g(X)) -> mark(h(X)) active(h(d)) -> mark(g(c)) active(c) -> mark(d) g(active(X)) -> g(X) g(mark(X)) -> g(X) h(active(X)) -> h(X) h(mark(X)) -> h(X) mark(g(X)) -> active(g(X)) mark(h(X)) -> active(h(X)) mark(c) -> active(c) mark(d) -> active(d) Problem 1: SCC Processor: -> Pairs: ACTIVE(g(X)) -> H(X) ACTIVE(g(X)) -> MARK(h(X)) ACTIVE(h(d)) -> MARK(g(c)) ACTIVE(c) -> MARK(d) G(active(X)) -> G(X) G(mark(X)) -> G(X) H(active(X)) -> H(X) H(mark(X)) -> H(X) MARK(g(X)) -> ACTIVE(g(X)) MARK(h(X)) -> ACTIVE(h(X)) MARK(c) -> ACTIVE(c) -> Rules: active(g(X)) -> mark(h(X)) active(h(d)) -> mark(g(c)) active(c) -> mark(d) g(active(X)) -> g(X) g(mark(X)) -> g(X) h(active(X)) -> h(X) h(mark(X)) -> h(X) mark(g(X)) -> active(g(X)) mark(h(X)) -> active(h(X)) mark(c) -> active(c) mark(d) -> active(d) ->Strongly Connected Components: ->->Cycle: ->->-> Pairs: H(active(X)) -> H(X) H(mark(X)) -> H(X) ->->-> Rules: active(g(X)) -> mark(h(X)) active(h(d)) -> mark(g(c)) active(c) -> mark(d) g(active(X)) -> g(X) g(mark(X)) -> g(X) h(active(X)) -> h(X) h(mark(X)) -> h(X) mark(g(X)) -> active(g(X)) mark(h(X)) -> active(h(X)) mark(c) -> active(c) mark(d) -> active(d) ->->Cycle: ->->-> Pairs: G(active(X)) -> G(X) G(mark(X)) -> G(X) ->->-> Rules: active(g(X)) -> mark(h(X)) active(h(d)) -> mark(g(c)) active(c) -> mark(d) g(active(X)) -> g(X) g(mark(X)) -> g(X) h(active(X)) -> h(X) h(mark(X)) -> h(X) mark(g(X)) -> active(g(X)) mark(h(X)) -> active(h(X)) mark(c) -> active(c) mark(d) -> active(d) ->->Cycle: ->->-> Pairs: ACTIVE(g(X)) -> MARK(h(X)) ACTIVE(h(d)) -> MARK(g(c)) MARK(g(X)) -> ACTIVE(g(X)) MARK(h(X)) -> ACTIVE(h(X)) ->->-> Rules: active(g(X)) -> mark(h(X)) active(h(d)) -> mark(g(c)) active(c) -> mark(d) g(active(X)) -> g(X) g(mark(X)) -> g(X) h(active(X)) -> h(X) h(mark(X)) -> h(X) mark(g(X)) -> active(g(X)) mark(h(X)) -> active(h(X)) mark(c) -> active(c) mark(d) -> active(d) The problem is decomposed in 3 subproblems. Problem 1.1: Subterm Processor: -> Pairs: H(active(X)) -> H(X) H(mark(X)) -> H(X) -> Rules: active(g(X)) -> mark(h(X)) active(h(d)) -> mark(g(c)) active(c) -> mark(d) g(active(X)) -> g(X) g(mark(X)) -> g(X) h(active(X)) -> h(X) h(mark(X)) -> h(X) mark(g(X)) -> active(g(X)) mark(h(X)) -> active(h(X)) mark(c) -> active(c) mark(d) -> active(d) ->Projection: pi(H) = 1 Problem 1.1: SCC Processor: -> Pairs: Empty -> Rules: active(g(X)) -> mark(h(X)) active(h(d)) -> mark(g(c)) active(c) -> mark(d) g(active(X)) -> g(X) g(mark(X)) -> g(X) h(active(X)) -> h(X) h(mark(X)) -> h(X) mark(g(X)) -> active(g(X)) mark(h(X)) -> active(h(X)) mark(c) -> active(c) mark(d) -> active(d) ->Strongly Connected Components: There is no strongly connected component The problem is finite. Problem 1.2: Subterm Processor: -> Pairs: G(active(X)) -> G(X) G(mark(X)) -> G(X) -> Rules: active(g(X)) -> mark(h(X)) active(h(d)) -> mark(g(c)) active(c) -> mark(d) g(active(X)) -> g(X) g(mark(X)) -> g(X) h(active(X)) -> h(X) h(mark(X)) -> h(X) mark(g(X)) -> active(g(X)) mark(h(X)) -> active(h(X)) mark(c) -> active(c) mark(d) -> active(d) ->Projection: pi(G) = 1 Problem 1.2: SCC Processor: -> Pairs: Empty -> Rules: active(g(X)) -> mark(h(X)) active(h(d)) -> mark(g(c)) active(c) -> mark(d) g(active(X)) -> g(X) g(mark(X)) -> g(X) h(active(X)) -> h(X) h(mark(X)) -> h(X) mark(g(X)) -> active(g(X)) mark(h(X)) -> active(h(X)) mark(c) -> active(c) mark(d) -> active(d) ->Strongly Connected Components: There is no strongly connected component The problem is finite. Problem 1.3: Reduction Pair Processor: -> Pairs: ACTIVE(g(X)) -> MARK(h(X)) ACTIVE(h(d)) -> MARK(g(c)) MARK(g(X)) -> ACTIVE(g(X)) MARK(h(X)) -> ACTIVE(h(X)) -> Rules: active(g(X)) -> mark(h(X)) active(h(d)) -> mark(g(c)) active(c) -> mark(d) g(active(X)) -> g(X) g(mark(X)) -> g(X) h(active(X)) -> h(X) h(mark(X)) -> h(X) mark(g(X)) -> active(g(X)) mark(h(X)) -> active(h(X)) mark(c) -> active(c) mark(d) -> active(d) -> Usable rules: g(active(X)) -> g(X) g(mark(X)) -> g(X) h(active(X)) -> h(X) h(mark(X)) -> h(X) ->Interpretation type: Linear ->Coefficients: Natural Numbers ->Dimension: 1 ->Bound: 2 ->Interpretation: [active](X) = X [g](X) = 2.X + 2 [h](X) = X [mark](X) = 2.X [c] = 0 [d] = 2 [ACTIVE](X) = 2.X [MARK](X) = 2.X Problem 1.3: SCC Processor: -> Pairs: ACTIVE(h(d)) -> MARK(g(c)) MARK(g(X)) -> ACTIVE(g(X)) MARK(h(X)) -> ACTIVE(h(X)) -> Rules: active(g(X)) -> mark(h(X)) active(h(d)) -> mark(g(c)) active(c) -> mark(d) g(active(X)) -> g(X) g(mark(X)) -> g(X) h(active(X)) -> h(X) h(mark(X)) -> h(X) mark(g(X)) -> active(g(X)) mark(h(X)) -> active(h(X)) mark(c) -> active(c) mark(d) -> active(d) ->Strongly Connected Components: ->->Cycle: ->->-> Pairs: ACTIVE(h(d)) -> MARK(g(c)) MARK(g(X)) -> ACTIVE(g(X)) ->->-> Rules: active(g(X)) -> mark(h(X)) active(h(d)) -> mark(g(c)) active(c) -> mark(d) g(active(X)) -> g(X) g(mark(X)) -> g(X) h(active(X)) -> h(X) h(mark(X)) -> h(X) mark(g(X)) -> active(g(X)) mark(h(X)) -> active(h(X)) mark(c) -> active(c) mark(d) -> active(d) Problem 1.3: Reduction Pair Processor: -> Pairs: ACTIVE(h(d)) -> MARK(g(c)) MARK(g(X)) -> ACTIVE(g(X)) -> Rules: active(g(X)) -> mark(h(X)) active(h(d)) -> mark(g(c)) active(c) -> mark(d) g(active(X)) -> g(X) g(mark(X)) -> g(X) h(active(X)) -> h(X) h(mark(X)) -> h(X) mark(g(X)) -> active(g(X)) mark(h(X)) -> active(h(X)) mark(c) -> active(c) mark(d) -> active(d) -> Usable rules: g(active(X)) -> g(X) g(mark(X)) -> g(X) ->Interpretation type: Linear ->Coefficients: Natural Numbers ->Dimension: 1 ->Bound: 2 ->Interpretation: [active](X) = 2.X [g](X) = X [h](X) = 2.X [mark](X) = 2.X [c] = 2 [d] = 2 [ACTIVE](X) = 2.X + 1 [MARK](X) = 2.X + 2 Problem 1.3: SCC Processor: -> Pairs: MARK(g(X)) -> ACTIVE(g(X)) -> Rules: active(g(X)) -> mark(h(X)) active(h(d)) -> mark(g(c)) active(c) -> mark(d) g(active(X)) -> g(X) g(mark(X)) -> g(X) h(active(X)) -> h(X) h(mark(X)) -> h(X) mark(g(X)) -> active(g(X)) mark(h(X)) -> active(h(X)) mark(c) -> active(c) mark(d) -> active(d) ->Strongly Connected Components: There is no strongly connected component The problem is finite.