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My EAX register contains the xxxxxx9D value and I have the following assembly code:

C0C8 14 --> ROR AL,14

To me, it means that the last 8 bits of the EAX's 32 bits value are rotated bitwise by 14 mod 8 = 6 positions

0x9D = b1001 1101

will be transformed into

b0111 0110 = 0x76

However, OllyDbg tells me that EAX = xxxxxxD9, which means EAX has been rotated bitwise by 4 bits!

Where am I wrong?

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That's 14 hex which is 20 decimal. – Igor Skochinsky Apr 6 '12 at 19:35
For the record: best-practices for expressing rotates in a compiler-friendly way, avoiding undefined behaviour:…. That answer has code that will get gcc and clang to produce a single ror instruction. – Peter Cordes Aug 17 at 17:41

2 Answers 2

up vote 4 down vote accepted

You are trying to rotate an 8-bit register by 20 positions. That's a bit much, rotating by 8 produces the same value. Rotating by 9 is the same as rotating by 1. Etcetera. The processor will thus rotate by 20 mod 8 = 4 positions.

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Thanks a lot. What was my error? Confusing h14 = d20 with d14...... Yes, 20 mod 8 produces 4 What a fool I am sometimes! – Bernard Rosset Apr 6 '12 at 19:57

Post your complete code, with this:

mov     al,$9d
ror     al,14

I get 76 as expected.

Edit If you rotate by $14 positions, you will get d9.

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