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Everyones suggesting not to cast while allocating a pointer here, do I cast result of malloc

But my below non-casted code produce compiler error in VS-2013. Why!

#include <stdio.h>
#include <malloc.h>

int main(){
    int *ptr = malloc(sizeof(int) * 100);  // compiler error
    return 0;
}

Compiler error is,

1 IntelliSense: a value of type "void *" cannot be used to initialize an entity of type "int *"

  • 6
    Considering that you posted with the C++ tag: what is unclear to you? C++ isn't C. In this case the implicit conversion from void* to T* which is supported in C is not supported in C++. – Dietmar Kühl Nov 9 '17 at 4:31
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    Don't use malloc and friends in C++. If you need a runtime changeable container use std::vector. If the size is fixed at compile-time use std::array. If you are required to use pointers, use smart pointers (like std::unique_ptr). And if you are forced to use raw non-owning pointers, use new or new[] instead. – Some programmer dude Nov 9 '17 at 4:32
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    If this is related to your previous question, that one was tagged with C. This is C++. C and C++ are two different languages, with different behavior and semantics. – Some programmer dude Nov 9 '17 at 4:36
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    In C++ you should not use malloc – M.M Nov 9 '17 at 4:52
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    @Someprogrammerdude The way I understand it is ownership refers to the pointer that is responsible for the destruction of the object it points to. So raw pointers can be owners but because you have to delete the objects they own manually they are unreliable. So the rule is to avoid owning raw pointers. An example of non-owning raw pointers would be an iterator pointing to an element that is owned by something else (a container, smart pointer or (hopefully not) another raw pointer). – Galik Nov 9 '17 at 5:44
4

The advice in the other question is strictly for C only.

In C++, you need the cast, since C++ does not allow implicit conversion of a void* pointer to any other pointer type.

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