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char **test()
{
    char *a[3];
    a[0] = (char *) malloc(sizeof(char) *3);
    a[1] = (char *) malloc(sizeof(char) *3);
    a[0] = "aa";
    a[1] = "bb";
    return a;
}   

//main
try{
    char **  a;
    a = test();
    cout << a[0] << " " << a[1];
}
catch(std::exception){}

compiled in vs2008, this program failed to output "bb", but after I remove the try catch block, it turned out to be "aa bb" which is true. The reason and solution ?

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2  
Apart from the memory leaks, was there a specific point to this (or maybe I just missed it once I saw those).? You're returning the address of a local variable, which is out of scope when you eval a[] in your main. Not sure if that is your intention, but it is undefined behavior. –  WhozCraig Mar 1 '13 at 17:28
    
why are we using malloc in c++? –  andre Mar 1 '13 at 17:30
    
@andre because he can, and <cstdlib> doesn't throw a #error as a macro replacement when you do so (yet). –  WhozCraig Mar 1 '13 at 17:31
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2 Answers

This program has undefined behavior, because you are returning a pointer to a local. You need to allocate the a array with malloc in order to fix the problem:

char **test() {
    char **a = (char**)malloc(sizeof(char*) * 2);
    a[0] = (char *) malloc(sizeof(char) *3);
    a[1] = (char *) malloc(sizeof(char) *3);
    strcpy(a[0], "aa");
    strcpy(a[1], "bb");
    return a;
}

Of course now you are fully responsible for releasing all that malloc-ed memory in your main, to avoid memory leaks (you were already on the hook for that with your implementation; now you simply need to add the third free to the caller).

The discrepancies that you see are most likely due to the differences of stack management with and without a try/catch block. It appears that without try/catch the data in the local remains available for you to print, even though it is no longer legal to reference it after the return of the test() function.

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+1 (like you didn't see that coming). –  WhozCraig Mar 1 '13 at 17:32
1  
I'd prefer to see a solution that doesn't introduce a third memory leak; but +1 for explaining the immediate problem. –  Mike Seymour Mar 1 '13 at 17:32
1  
LOL memory leaks still functional and fully intact =P –  WhozCraig Mar 1 '13 at 17:33
    
@MikeSeymour The leak (actually, two leaks) were there already, because OP's main failed to free the two strings inside the returned array. Thanks for pointing it out, though - I edited the answer to reflect the need to free the memory. –  dasblinkenlight Mar 1 '13 at 17:36
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Problem 1: returning a pointer to a local array. This is destroyed when the function returns, and using the pointer after that gives undefined behaviour.

Problem 2: Explicit memory management, and overwriting the pointers to allocated memory with pointers to string literals. The memory you allocate is leaked; and if you try to modify the literals you'll get more undefined behaviour.

Assuming you're writing C++, not C, the following will fix both problems:

std::vector<std::string> test() {return {"aa", "bb"};}
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