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#include <iostream>
#include <string.h>
using namespace std;

void newBuffer(char* outBuffer, size_t sz) {
    outBuffer = new char[sz];
}

int main(void) {

    const char* abcd = "ABCD";
    char* foo;
    foo = NULL;
    size_t len = strlen(abcd);
    cout<<"Checkpoint 1"<<endl;
    newBuffer(foo, len);
    cout<<"Checkpoint 2"<<endl;

    cout<<"Checkpoint 2-A"<<endl;
    memset(foo, '-', len);
    cout<<"Checkpoint 3"<<endl;
    strncpy(foo, abcd, len);
    cout<<"Checkpoint 4"<<endl;
    cout << foo << endl;

    int hold;
    cin>>hold;
    return 0;

}

This program crashes between checkpoint 2-1 and 3. What it tries to do is to set the char array foo to the char '-', but it fails because of some access issues. I do not understand why this happens. Thank you very much in advance!

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Unless this is a toy/educational question: Another prime example why you should use std::string or std::vector for things like this in C++! –  Ferdinand Beyer May 13 '12 at 16:37
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Please make sure you accept the best answer. Review your other questions likewise. Please see faq –  David Heffernan May 13 '12 at 17:39
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3 Answers

up vote 6 down vote accepted

Your newBuffer function should accept the first parameter by reference so that changes made to it inside the function are visible to the caller:

void newBuffer(char*& outBuffer, size_t sz) {
    outBuffer = new char[sz];
}

As it is now, you assign the result of new char[sz] to the local variable outBuffer which is only a copy of the caller's foo variable, so when the function returns it's as if nothing ever happened (except you leaked memory).

Also you have a problem in that you are allocating the buffer to the size of the length of ABCD which is 4. That means you can hold up to 3 characters in that buffer because one is reserved for the NUL-terminator at the end. You need to add + 1 to the length somewhere (I would do it in the call to the function, not inside it, because newBuffer shouldn't be specialised for C-strings). strncpy only NUL-terminates the buffer if the source string is short enough, so in this case you are only lucky that there happens to be a 0 in memory after your buffer you allocated.

Also don't forget to delete[] foo in main after you're done with it (although it doesn't really matter for a program this size).

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Dang! It was this trivial. I did not notice that. Thank you very much. –  FrozenLand May 13 '12 at 16:35
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It fails because your newBuffer function doesn't actually work. The easiest way to fix it would be to change the declaration to void newBuffer (char *&outBuffer, size_t sz). As it's written, the address of the newly allocated memory doesn't actually get stored into main's foo because the pointer is passed by value.

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You are passing the pointer by value. You would need to pass either a reference to the pointer, or the address of the pointer.

That said, using the return value would be better in my view:

char* newBuffer(size_t sz) {
    return new char[sz];
}

When written this way, the newBuffer function doesn't really seem worthwhile. You don't need it. You can use new directly and that would be clearer.

Of course, if you are using C++ then this is all rather pointless. You should be using string, smart pointers etc. You should not have any need to call new directly. Once you fix the bug you are talking about in this question you will come across the problem that your string is not null-terminated and that the buffer is too short to hold the string since you forgot to allocate space for the null-terminator. One of the nice things about C++ is that you can escape the horrors of string handling in C.

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