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Integer TRS Innermost pair #487100371
details
property
value
status
complete
benchmark
csharp3.itrs
ran by
Akihisa Yamada
cpu timeout
1200 seconds
wallclock timeout
300 seconds
memory limit
137438953472 bytes
execution host
n147.star.cs.uiowa.edu
space
Mixed_ITRS_2014
run statistics
property
value
solver
Ctrl
configuration
Itrs
runtime (wallclock)
1.39141 seconds
cpu usage
1.42078
user time
0.819288
system time
0.601495
max virtual memory
128984.0
max residence set size
8572.0
stage attributes
key
value
starexec-result
MAYBE
output
MAYBE DP problem for innermost termination. P = b14#(sv14_14, sv23_37, sv24_38) -> Cond_b14#(sv23_37 >= sv14_14 && 1 < sv14_14, sv14_14, sv23_37, sv24_38) b15#(I0, I1, I2) -> b10#(I0, I1 - I0, I2 + 1) Cond_b14#(true, I3, I4, I5) -> b15#(I3, I4, I5) b10#(I6, I7, I8) -> b14#(I6, I7, I8) R = b14(sv14_14, sv23_37, sv24_38) -> Cond_b14(sv23_37 >= sv14_14 && 1 < sv14_14, sv14_14, sv23_37, sv24_38) b15(I0, I1, I2) -> b10(I0, I1 - I0, I2 + 1) Cond_b14(true, I3, I4, I5) -> b15(I3, I4, I5) b10(I6, I7, I8) -> b14(I6, I7, I8) This problem is converted using chaining, where edges between chained DPs are removed. DP problem for innermost termination. P = b14#(sv14_14, sv23_37, sv24_38) -> Cond_b14#(sv23_37 >= sv14_14 && 1 < sv14_14, sv14_14, sv23_37, sv24_38) b15#(I0, I1, I2) -> b10#(I0, I1 - I0, I2 + 1) Cond_b14#(true, I3, I4, I5) -> b15#(I3, I4, I5) b10#(I6, I7, I8) -> b14#(I6, I7, I8) b14#(sv14_14, sv23_37, sv24_38) -> b15#(sv14_14, sv23_37, sv24_38) [sv23_37 >= sv14_14 && 1 < sv14_14] R = b14(sv14_14, sv23_37, sv24_38) -> Cond_b14(sv23_37 >= sv14_14 && 1 < sv14_14, sv14_14, sv23_37, sv24_38) b15(I0, I1, I2) -> b10(I0, I1 - I0, I2 + 1) Cond_b14(true, I3, I4, I5) -> b15(I3, I4, I5) b10(I6, I7, I8) -> b14(I6, I7, I8) The dependency graph for this problem is: 0 -> 1 -> 3 2 -> 1 3 -> 4, 0 4 -> 1 Where: 0) b14#(sv14_14, sv23_37, sv24_38) -> Cond_b14#(sv23_37 >= sv14_14 && 1 < sv14_14, sv14_14, sv23_37, sv24_38) 1) b15#(I0, I1, I2) -> b10#(I0, I1 - I0, I2 + 1) 2) Cond_b14#(true, I3, I4, I5) -> b15#(I3, I4, I5) 3) b10#(I6, I7, I8) -> b14#(I6, I7, I8) 4) b14#(sv14_14, sv23_37, sv24_38) -> b15#(sv14_14, sv23_37, sv24_38) [sv23_37 >= sv14_14 && 1 < sv14_14] We have the following SCCs. { 1, 3, 4 } DP problem for innermost termination. P = b15#(I0, I1, I2) -> b10#(I0, I1 - I0, I2 + 1) b10#(I6, I7, I8) -> b14#(I6, I7, I8) b14#(sv14_14, sv23_37, sv24_38) -> b15#(sv14_14, sv23_37, sv24_38) [sv23_37 >= sv14_14 && 1 < sv14_14] R = b14(sv14_14, sv23_37, sv24_38) -> Cond_b14(sv23_37 >= sv14_14 && 1 < sv14_14, sv14_14, sv23_37, sv24_38) b15(I0, I1, I2) -> b10(I0, I1 - I0, I2 + 1) Cond_b14(true, I3, I4, I5) -> b15(I3, I4, I5) b10(I6, I7, I8) -> b14(I6, I7, I8)
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return to Integer TRS Innermost
