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I'm trying to understand this in GDB where I see the following:

(gdb) print/t $eax
$2 = 1000000001001010000000011010
(gdb) x/4xb $eax
0x804a01a <testinput>:  0x41    0x42    0x43    0x44

This is essentially the ascii values "ABCD". I'd like to get these values one byte at a time and have tried to start with getting the the first byte in $al. However $al contains 0x1a.

First, how does the binary 1000000001001010000000011010 equate to 0x41 0x42 0x43 0x44? (I would think 0x41 would equal 0100 0001 but I don't see that pattern above) Second, why does $al contain 0x1a?

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up vote 0 down vote accepted

You're looking at two completely different things. Your first command outputs the value of the eax register. Your second command outputs the value of a particular location in memory. There's no reason one should equate to the other in any way.

As the gdb help says:

Examine memory: x/FMT ADDRESS.
ADDRESS is an expression for the memory address to examine.

As for your last question, the low byte of eax is 00011010. 0001 is 1 in hex. 1010 is a in hex. So 0x1a.

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