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I have this function in C:

static Node* newNode(void* e){
Node n={e,NULL,NULL};
return &n;
}

And while compiling I get the following warning that I would like to understand why it happens:

warning: function returns address of local variable [enabled by default]

What kind of dangers are lurking behind this?

Thank you

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possible duplicate of Pointer to local variable –  Bo Persson Jul 1 '12 at 11:43

2 Answers 2

up vote 5 down vote accepted

Local variables are destroyed when you return from a function. Accessing them after the function returned is undefined behavior, don't do this.

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The code is just totally broken. It returns a pointer to the location the Node was in, but the Node is no longer there. So the returned pointer is garbage. –  David Schwartz Jul 1 '12 at 10:27
    
So I should make a copy of the value insted of passing its reference? –  Reonarudo Jul 1 '12 at 14:21
    
@Reonarudo use malloc in your newNode function to create the node: Node *n = malloc(sizeof *n); –  ouah Jul 1 '12 at 14:23
    
@ouah Like this then: static Node* newNode(void* e){ Node* n=(Node *)malloc(sizeof(*n)); n->e=e; return n; } –  Reonarudo Jul 1 '12 at 14:40

The warning is because the scope of the variable is local to the function - once the function is returned, that variable is no longer in scope, and it's value is undefined.

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