10

Consider following code:

#include <iostream>
using namespace std;
void test_func(int address) {
    cout<<&address<<" ";
    if(address < 0x7FFBEE26) {
        test_func(address);
    }
}
int main()
{
    test_func(512);
    cout<<"Hello";
    return 0;
}

Hello from main() is certainly not reached, since the recursive calls to test_func never end.

However, from what I can see in the cout present in test_func - the addresses being printed are lower and lower with each iteration. Why is that happening?

  • 4
    You are passing a copy - that has to have an address – UnholySheep Apr 22 at 20:50
  • 1
    Remember that the default stack size on linux is 10MB and its 1 MB on windows. Also the stack need not be in the same location each time you run your program. – drescherjm Apr 22 at 21:04
  • I can't understand why this isn't eligible for tail-call optimization. The invocation of test_func is the last line in the function... – cyberbisson Apr 22 at 21:33
  • 9
    @cyberbisson The parameters of the nested invocations of test_func must appear to have different addresses per language rules, and because the address of address was passed to operator<< the compiler can't prove that this is unobservable. – T.C. Apr 22 at 22:46
  • 1
    @Deduplicator Yes. – T.C. Apr 22 at 23:48
22

Likely address is being placed on the stack and, on your platform, the stack grows downward in memory. See this question about stack growth direction for more.

  • Is it placed on the stack instead of in a register because its address is taken? – ᆼᆺᆼ Apr 23 at 2:35
  • 3
    @ᆼᆺᆼ no, it is because on 32bit systems, the default calling convention in most C/C++ compilers is cdecl, which passes parameters on the call stack only. Compile your code for 64bit, or alter your function to use a register-based calling convention, and you will likely see different results – Remy Lebeau Apr 23 at 2:55
  • @RemyLebeau What even is the address of a passed-by-register argument? Apparently, GCC artificially moves the register value onto the stack and then takes the address: godbolt.org/z/LRz5DS – ComFreek Apr 23 at 7:00
  • @ComFreek registers don't have addresses. Copying a register value to a memory block is the only way to get a memory address. – Remy Lebeau Apr 23 at 7:43
  • It's difficult to put address in a register because there will be many instances of address at the same time, one for each instance oftest_func that's in the process of executing. – David Schwartz Apr 23 at 15:37

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