We consider the TRS containing the following rules:
| f(g(x)) | → | h(g(x),g(x)) | (1) |
| f(s(x)) | → | h(s(x),s(x)) | (2) |
| g(x) | → | s(x) | (3) |
The underlying signature is as follows:
{f/1, g/1, h/2, s/1}To prove that the TRS is (non-)confluent, we show (non-)confluence of the following modified system:
| g(x) | → | s(x) | (3) |
| f(s(x)) | → | h(s(x),s(x)) | (2) |
| f(g(x)) | → | h(g(x),g(x)) | (1) |
| f(g(x)) | → | h(g(x),s(x)) | (4) |
| f(g(x)) | → | h(s(x),g(x)) | (5) |
All redundant rules that were added or removed can be simulated in 2 steps .
| [f(x1)] | = | 4 · x1 + 4 |
| [s(x1)] | = | 2 · x1 + 0 |
| [g(x1)] | = | 2 · x1 + 1 |
| [h(x1, x2)] | = | 1 · x1 + 2 · x2 + 0 |
| g(x) | → | s(x) | (3) |
| f(s(x)) | → | h(s(x),s(x)) | (2) |
| f(g(x)) | → | h(g(x),g(x)) | (1) |
| f(g(x)) | → | h(g(x),s(x)) | (4) |
| f(g(x)) | → | h(s(x),g(x)) | (5) |
There are no rules in the TRS. Hence, it is terminating.