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Can a local variable's memory be accessed outside its scope?
why does this function return garbage value

Why does this simple code return garbage?

char *output()
{
    char o[2] = "A";
    return o;
}

int main()
{
    std::cout << output(); 
}
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marked as duplicate by jogojapan, Bo Persson, ρяσѕρєя K, Luchian Grigore, Donal Fellows Oct 10 '12 at 13:41

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.

1  
stackoverflow.com/questions/6441218/… See here for the definitive answer to using function variables out of scope. –  The Forest And The Trees Oct 10 '12 at 7:06
    
and this one also should be helpful meta.stackexchange.com/questions/18584/… –  Sergey Oct 10 '12 at 7:11
    
Your compiler should have also warned you about using the address of a local variable. –  nijansen Oct 10 '12 at 7:12
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2 Answers

up vote 4 down vote accepted

Because you return a pointer to invalid memory - o is destroyed when output returns.

You have several options:

  • allocate memory dynamically (using malloc), copy "A" into this memory and return its address
  • directly return string literal: return "A";

P.S. Of course, you may use std::string and you will not have this issue. Or use in/out param, instead of return.

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o is the local variable of output() so it has scope and life time only inside the function. and as the function is returning a memory address its the deleted memory's address is being returned.

if it had been value which is returned the program would have worked because of the "return by value" method.

If you need the correct output instead of default memory specifier auto you need to use something else like static or extern memory allocation, or dynamic memory allocation.

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