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Is it possible an usual code to damage call stack in c/c++? I don't mean a kind of hack or something, just an oversight mistake or something, but not random, such that damages it every time. Someone told me that an ex colleague managed but I don't think it is possible. Does someone have such an experience?

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It's very easy to damage call stack in C/C++. That's the reason many people hate them. – iammilind Apr 6 '12 at 12:22

Yes, easy. One of the very common issues, in fact. Consider this:

void foo()
{
    int i;
    int *p = &i;
    p -= 5; // now point somewhere god knows where, generally undefined behavior
    *p = 0; // boom, on different compilers will end up with various bad things,
       // including potentially trashing the call stack
}

Many cases of an out-of-boundaries access of a local array/buffer end up with trashed stacks.

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Yes. On many platforms, local variables are stored along with the call stack; in that case, writing outside a local array is a very easy way to corrupt it:

void evil() {
    int array[1];
    std::fill(array, array+1000000, 0);
    return; // BOOM!
}

More subtly, returning a reference to a local variable could corrupt the stack of a function that's called later on:

int & evil() {
    int x;
    return x;
}
void good(int & x) {
    x = 0;
    return; // BOOM!
}
void innocent() {
    good(evil());
}

Note that neither of these (and indeed anything else that could corrupt the stack) are legal; but the compiler doesn't have to diagnose them. Luckily, most compilers will spot these errors, as long as you enable the appropriate warnings.

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And a c variant my be as linker finds double evil(double a); ... file1.h double evil(double a); file1.c #include "file1.h" double evil(double a){return a*5;}` main.c #include <stdio.h> double evil(void);//declaration only int main(void) { printf("The result is %f, \n", evil());//BOOM return 0; } – Nickoleta Dimitrova Apr 6 '12 at 12:10

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