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This question already has an answer here:

I wrote the following program:

#include<stdio.h>

int main(){
        printf("%x\n");
        printf("%x\n");
        return 0;
}

I know it is undefined behavior, I just check what happens. The compiler is gcc.

Sample output was:

541d3118
7ffffff7

Another sample output was:

e0b08078
7ffffff7

When I compiled it with -O3 flag, the results were:

5ec20f18
9

And

3bedfa08
9

Why the first value change, but not the second value? Why is the second value different in high optimization level?

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marked as duplicate by devnull, DevSolar, Yu Hao, glglgl, anishsane Feb 11 '14 at 14:11

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3  
Undefined behavior: you need to add an int variable to printf. – Joseph Quinsey Feb 11 '14 at 13:36
    
I want an option to close questions with "undefined behaviour" as a reason. – DevSolar Feb 11 '14 at 13:41
1  
@DevSolar Why? Trying to understand why the code works this way can be perfectly legitimate. – glglgl Feb 11 '14 at 13:43
    
@glglgl: No it cannot, because the behaviour is undefined. That's the whole problem with these kind of questions. Yes I can spend a couple of minutes to explain why it does behave this way on this system with this compiler, and show off how cool I am for knowing this stuff -- but all that would achieve is that there are more people running around thinking that it just might be permissable to exploit such behaviour in productive code. Which it is not, full stop. – DevSolar Feb 11 '14 at 13:47
    
@DevSolar Then let me rephrase: "... why the code acts this way". It doesn't work, and should never be used this way. But it might as well be useful to the OP to know why it isn't defined. I'll rephrase my answer in this aspect. – glglgl Feb 11 '14 at 13:50
up vote 3 down vote accepted

I'll try to see your question from an academic point of view. As you see, it is not reliable what you get (as always with undefined behaviour), and you should never rely on it.

But afaict you are interested in knowing why you see what you see.

Essentially, calling a function and passing arguments to it works via the stack. (This holds only for some architectures, not for all.)

A "regular call" to this function then could look like

push argument 2
push argument 1
call

If you are calling it as

push argument 1
call

the function sees as its 2nd argument something completely different, e. g. a return address or a local variable of the calling function or whatever else is currently on the stack.

So this value depends on what was on the stack earlier, and maybe even what you have as local variables, and other circumstances.

And, of course, it can as well depend on the optimization level chosen, as this controls which variables are put on the stack at the first place.

And that is exactly the reason why you shouldn't do that: you have absolutely no control over what you get here.

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You are calling printf without specifying a value where there is format specifier for it %x. This invokes undefined behavior, so what you observe may either be coincidence or implementation specific for your compiler. Either way invoking undefined behavior is never a good thing to have in your code.

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In a call to printf, according to the Standard, "if there are insufficient arguments for the format, the behavior is undefined". You are witnessing said behavior.

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