Proof: Byte 126 Stays the Same 23
Let's prove the following theorem:
if the following are true:
- subtract immediate instruction with dst: 1 src: 1 and immediate: 1 at 23
- the PC at time 23 = 23
- value of cell 126 at time 23 = 3
then value of cell 126 at time 24 = 3
Proof:
Given
| 1 | subtract immediate instruction with dst: 1 src: 1 and immediate: 1 at 23 |
|---|---|
| 2 | the PC at time 23 = 23 |
| 3 | value of cell 126 at time 23 = 3 |
| # | Claim | Reason |
|---|---|---|
| 1 | not (126 = 1) | not (126 = 1) |
| 2 | value of cell 126 at time (23 + 1) = value of cell 126 at time 23 | if subtract immediate instruction with dst: 1 src: 1 and immediate: 1 at 23 and the PC at time 23 = 23 and not (126 = 1), then value of cell 126 at time (23 + 1) = value of cell 126 at time 23 |
| 3 | 23 + 1 = 24 | 23 + 1 = 24 |
| 4 | value of cell 126 at time (23 + 1) = value of cell 126 at time 24 | if 23 + 1 = 24, then value of cell 126 at time (23 + 1) = value of cell 126 at time 24 |
| 5 | value of cell 126 at time 24 = value of cell 126 at time 23 | if value of cell 126 at time (23 + 1) = value of cell 126 at time 24 and value of cell 126 at time (23 + 1) = value of cell 126 at time 23, then value of cell 126 at time 24 = value of cell 126 at time 23 |
| 6 | value of cell 126 at time 24 = 3 | if value of cell 126 at time 24 = value of cell 126 at time 23 and value of cell 126 at time 23 = 3, then value of cell 126 at time 24 = 3 |
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