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The definition of new in the header is:

 void* operator new(size_t);

And the definition of malloc is as stated:

 void* malloc(size_t);

Now, as C++ is a strongly typed language, it requires a cast from the programmer to convert void* pointer to the type he requires.. In malloc, we have to perfoem a cast but not in new, though both return a void* pointer, why???

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check this out codeproject.com/Articles/6555/… –  pyCthon Mar 7 '12 at 6:46
    
also this stackoverflow.com/questions/184537/… –  pyCthon Mar 7 '12 at 6:47
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Also check out : stackoverflow.com/q/1885849/1155650 –  Rohit Mar 7 '12 at 6:47

3 Answers 3

up vote 10 down vote accepted

Because when you're using new, you (normally) use a "new expression", which allocates and initializes an object. You're then assigning the address of that object to a pointer to an object of the same (or parent) type, which doesn't require a cast. A normal new expression (i.e., not a placement new) will invoke operator new internally but the result of the new expression is not just the result from operator new.

If you invoke operator new directly, then you need to cast its result to assign the return value to a non-void pointer, just like you have to do with the return from malloc.

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Can you tell me more about the new expression???? –  bhuwansahni Mar 7 '12 at 6:50
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The accepted [and brilliant :-)] answer to the question to which @Rohit linked goes into more detail about that. –  Jerry Coffin Mar 7 '12 at 6:52

Because you have the wrong impression how to use malloc. It doesn't receive the type as an argument but only the size of the type.

C and C++ are different languages. In C you don't need to cast the void* of malloc to the target pointer type. In C++ the new operator is deeply build into the language such that it always returns a value corresponding to the type you gave in the argument.

The rule is quite simple use new for C++ and malloc for C, don't mix them.

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How does new receives the type as the argument?? –  bhuwansahni Mar 7 '12 at 6:53
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@bhuwansahni, new is an operator not a function. In the place that you use it you always give it the type of the object that is to be allocated and constructed. It is up to the compiler to make the link. In C for a call to malloc you only give the size. –  Jens Gustedt Mar 7 '12 at 6:57
    
yeah but the declaration of the new operator doesn't reflect it, why??? –  bhuwansahni Mar 7 '12 at 7:08
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@bhuwansahni, because it is not necessary. To write a generic operator new the only property of the target type you need is the size. The type specific stuff is ensure by compiler by calling the appropriate constructor for the type. –  Jens Gustedt Mar 7 '12 at 7:14
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@bhuwansahni: you are confusing the new operator and operator new. They are two different things. The new operator is a syntax for allocating and constructing objects. Operator new is a special declaration syntax for declaring and writing functions which implement memory allocation, connected to the new operator. new int(3) knows the size of int in the same way that sizeof(int) does: they are operators that operate with types. The new operator calculates the size and passes it to the appropriate operator new function. –  Kaz Mar 7 '12 at 8:39

because the operator new call is only a single step generated in the entire chain when you invoke new

when you do s=new my_type(args); the compiler will expand that to

s=(my_type*)my_type.operator new(sizeof(my_type));
s.my_type(args);//constructor call
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