/export/starexec/sandbox/solver/bin/starexec_run_Transition /export/starexec/sandbox/benchmark/theBenchmark.smt2 /export/starexec/sandbox/output/output_files


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MAYBE

DP problem for innermost termination.
P =
  init#(x1, x2) -> f1#(rnd1, rnd2) 
  f2#(I0, I1) -> f2#(I0 + 1, I1 - 1) [I0 <= I1 - 1 /\ 51 <= I1 - 1]
  f2#(I2, I3) -> f2#(I2 - 1, I3 + 1) [I2 <= I3 - 1 /\ I3 <= 51]
  f1#(I4, I5) -> f2#(0, 100) 
R = 
  init(x1, x2) -> f1(rnd1, rnd2) 
  f2(I0, I1) -> f2(I0 + 1, I1 - 1) [I0 <= I1 - 1 /\ 51 <= I1 - 1]
  f2(I2, I3) -> f2(I2 - 1, I3 + 1) [I2 <= I3 - 1 /\ I3 <= 51]
  f1(I4, I5) -> f2(0, 100) 

The dependency graph for this problem is:
  0 -> 3
  1 -> 1, 2
  2 -> 1, 2
  3 -> 1
Where:
  0) init#(x1, x2) -> f1#(rnd1, rnd2) 
  1) f2#(I0, I1) -> f2#(I0 + 1, I1 - 1) [I0 <= I1 - 1 /\ 51 <= I1 - 1]
  2) f2#(I2, I3) -> f2#(I2 - 1, I3 + 1) [I2 <= I3 - 1 /\ I3 <= 51]
  3) f1#(I4, I5) -> f2#(0, 100) 

We have the following SCCs.
  { 1, 2 }

DP problem for innermost termination.
P =
  f2#(I0, I1) -> f2#(I0 + 1, I1 - 1) [I0 <= I1 - 1 /\ 51 <= I1 - 1]
  f2#(I2, I3) -> f2#(I2 - 1, I3 + 1) [I2 <= I3 - 1 /\ I3 <= 51]
R = 
  init(x1, x2) -> f1(rnd1, rnd2) 
  f2(I0, I1) -> f2(I0 + 1, I1 - 1) [I0 <= I1 - 1 /\ 51 <= I1 - 1]
  f2(I2, I3) -> f2(I2 - 1, I3 + 1) [I2 <= I3 - 1 /\ I3 <= 51]
  f1(I4, I5) -> f2(0, 100)