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(gdb) n
134   a = b = c = 0xdeadbeef + ((uint32_t)length) + initval;
(gdb) n
(gdb) p a
$30 = <value optimized out>
(gdb) p b
$31 = <value optimized out>
(gdb) p c
$32 = 3735928563

How can gdb optimize out my value??

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possible duplicate of gdb behavior : value optimized out –  user Sep 12 at 2:17

3 Answers 3

up vote 20 down vote accepted

It means you compiled with e.g. gcc -O3 and the gcc optimiser found that some of your variables were redundant in some way that allowed them to be optimised away. In this particular case you appear to have three variables a, b, c with the same value and presumably they can all be aliassed to a single variable. Compile with optimisation disabled, e.g. gcc -O0, if you want to see such variables (this is generally a good idea for debug builds in any case).

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But here the a is not redundant,it needs to be used later..177 case 3 : a+=k[0]&0xffffff; break; –  gdb Mar 31 '11 at 9:46
1  
You need to post all the relevant code if you want further analysis. –  Paul R Mar 31 '11 at 9:47
    
But the value somehow came back at a certain point...how does this kind of magic work?? –  gdb Mar 31 '11 at 9:51
    
The optimiser will keep temporary variables in registers wherever possible. It may also alias several variables to the same register if they all have the same value, until a point where one of them is modified, at which point it may then be allocated to a different register. So the lifetime of your variables in optimised code may be different than it appears in the source code. Turn off optimisation if you don't want to get confused by this sort of behaviour. –  Paul R Mar 31 '11 at 10:27

From https://idlebox.net/2010/apidocs/gdb-7.0.zip/gdb_9.html

The values of arguments that were not saved in their stack frames are shown as `value optimized out'.

Im guessing you compiled with -O(somevalue) and are accessing variables a,b,c in a function where optimization has occurred.

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It didn't. Your compiler did, but there's still a debug symbol for the original variable name.

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