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If I add a second call to setColor I am getting a segmentation fault. I think maybe that method is changing the array pointer somehow, but I'm not sure why.

#include <iostream>

using namespace std;

struct Color {
    int red;
    int blue;
    int green;
};

void setColor(Color **arr, int index, int red, int blue, int green) {
    Color *ptr = arr[index];
    (*ptr).red = red;
    (*ptr).blue = blue;
    (*ptr).green = green;
}

int main() { 
    Color *arr[3];
    setColor(arr, 0, 12, 23, 34);

    return 0;
}
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1  
You may want some actual objects behind those indeterminate pointers. –  WhozCraig Mar 7 '13 at 20:25
1  
Why so many pointers? All those spiky stars hurt my eyes. –  chris Mar 7 '13 at 20:26
1  
you are allocating memory for Color* (in arr) but not the target Color objects. I'm surprised this works even once. –  Steve Townsend Mar 7 '13 at 20:26
    
You have to assign a variable a value before you use that value. You create a variable called arr[0] that has no particular value, then you attempt to use that value by dereferencing it. Not good. –  David Schwartz Mar 7 '13 at 20:27
    
These three pointers point to nowhere. Accessing data through them will lead to the undefined behaviour. –  varnie Mar 7 '13 at 20:27

2 Answers 2

arr is an uninitialized array of pointers. You're "lucky" it works at all, because you invoked undefined behaviour.

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You've declared an array of pointers to colors but not set aside any memory for it to use. This is undefined behavior. Being undefined behavior, you can't say what's going to happen. If you keep running it, you might get a cup off coffee from it!

In an effort to make this answer worth keeping, the exact scenario you have illustrated is called dereferencing a wild pointer.

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