Certification Problem

Input (COPS 116)

We consider the TRS containing the following rules:

a1	→	b1	(1)
a1	→	c1	(2)
b1	→	b2	(3)
c1	→	c2	(4)
a2	→	b2	(5)
a2	→	c2	(6)
b2	→	b3	(7)
c2	→	c3	(8)
a3	→	b3	(9)
a3	→	c3	(10)
b3	→	b4	(11)
c3	→	c4	(12)
a4	→	b4	(13)
a4	→	c4	(14)
b4	→	b5	(15)
c4	→	c5	(16)
a5	→	b5	(17)
a5	→	c5	(18)
b5	→	b6	(19)
c5	→	c6	(20)
a6	→	b6	(21)
a6	→	c6	(22)
b6	→	b7	(23)
c6	→	b7	(24)
b7	→	b1	(25)
b7	→	c1	(26)

The underlying signature is as follows:

{a1/0, b1/0, c1/0, b2/0, c2/0, a2/0, b3/0, c3/0, a3/0, b4/0, c4/0, a4/0, b5/0, c5/0, a5/0, b6/0, c6/0, a6/0, b7/0}

Property / Task

Prove or disprove confluence.

Answer / Result

Yes.

Proof (by csi @ CoCo 2022)

1 Redundant Rules Transformation

To prove that the TRS is (non-)confluent, we show (non-)confluence of the following modified system:

b7	→	c1	(26)
b7	→	b1	(25)
c6	→	b7	(24)
b6	→	b7	(23)
a6	→	c6	(22)
a6	→	b6	(21)
c5	→	c6	(20)
b5	→	b6	(19)
a5	→	c5	(18)
a5	→	b5	(17)
c4	→	c5	(16)
b4	→	b5	(15)
a4	→	c4	(14)
a4	→	b4	(13)
c3	→	c4	(12)
b3	→	b4	(11)
a3	→	c3	(10)
a3	→	b3	(9)
c2	→	c3	(8)
b2	→	b3	(7)
a2	→	c2	(6)
a2	→	b2	(5)
c1	→	c2	(4)
b1	→	b2	(3)
a1	→	c1	(2)
a1	→	b1	(1)
b1	→	b7	(27)
c1	→	b7	(28)
b2	→	b7	(29)
c2	→	b7	(30)
b3	→	b7	(31)
c3	→	b7	(32)
b4	→	b7	(33)
c4	→	b7	(34)
b5	→	b7	(35)
c5	→	b7	(36)

All redundant rules that were added or removed can be simulated in 6 steps .

1.1 Parallel Closed

Confluence is proven since the TRS is (almost) parallel closed. The joins can be performed using 1 parallel step(s).