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Can anybody point out why does the following code need char** pointer in the modify function. If i just pass char* and modify the value once the function call returns k has garbage value. Can somebody justify this?

char* call()
    return "fg";
void modify(char** i)
    *i = call();

int main()
    char* k= new char[3];
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How did this compile though ? modify takes a parameter of type char** and not char*. Also, use std::string instead. – Mahesh Apr 9 '12 at 17:38
Yes, please post code that actually compiles; otherwise it can be difficult to tell what you're asking about. – Keith Thompson Apr 9 '12 at 17:41

1 Answer 1

When you pass something into a function, you pass it by value. This means that the function operates on a copy of that thing.

This applies to pointers too. If you pass a char *, then a copy of that pointer gets made; the original pointer is not modified. If you want to modify the original pointer itself, then you need to pass its address, via a char ** argument.


1. It's also worth pointing out that your code contains a memory leak. You dynamically-allocate some memory, and then lose the pointer to it, which means that you can never delete it.

2. In C++, you should generally avoid passing raw pointers around like this, because it causes pain and confusion. You should look into smart pointers.

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Worth noting that in C++ it generally gives more readable code to pass a reference to a pointer instead of a pointer to a pointer - but in C thats not an option. – Ricibob Apr 9 '12 at 17:42
More readable code yes. The declaration can be fun though. Let's throw in a template... – Robert Mason Apr 9 '12 at 17:43
What if i modify the "modify" function program to take a reference to a pointer and pass the address while calling..Will there be a memory leak still? – user1177586 Apr 10 '12 at 9:27

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