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I would like to know if there's a real difference between this:

c = (struct_t *) malloc(sizeof(struct_t));

and this

c = malloc(sizeof(struct_t *));

Besides avoid the cast, is the compiler takes any advantage in the second form respect the first? Or the two ways are completely the same and is just a "aesthetical" question ?

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hmmm... I have a typedef struct struct_t { .... } struct_t; and I declare struct_t * c; –  Kyrol Mar 12 '13 at 10:41
    
ahhh okok. You're right. Probably the second form could be: c = malloc(sizeof(*c));. Isn't it? –  Kyrol Mar 12 '13 at 10:46
2  
@Kyrol Use c = malloc(sizeof(struct_t)); and forget about the other cases, they likely don't make sense for what you are attempting to do. –  Lundin Mar 12 '13 at 10:49
    
So I have just to avoid the cast. Right? But are you sure that if I declare c as a pointer, your form is correct? I'd like to know why is correct. :) –  Kyrol Mar 12 '13 at 10:52

5 Answers 5

up vote 6 down vote accepted

The first allocates sizeof(struct_t) bytes, the second sizeof(struct_t*) bytes.

Apart from that, there is no difference in what malloc does, whether you cast the result or not. Casting the result makes the code acceptable to C++ compilers, but it can hide the mistake of not including stdlib.h, therefore it is widely preferred to not cast the result in C.

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So, for this reason, is better if I use the first or the second? –  Kyrol Mar 12 '13 at 10:23
2  
Well, you have to use the correct size. Then, if you have that, I prefer the version without cast, since the cast is unnecessary (and can hide errors if you don't compile strictly to a standard that forbids implicit declarations). C++ people often prefer the one with the cast. –  Daniel Fischer Mar 12 '13 at 10:30
2  
C++ people should use new, compile C code with a C compiler, and link it to their C++ project... –  undefined behaviour Mar 12 '13 at 10:37
    
... and malloc isn't the only reason to compile C code with a C compiler rather than a C++ compiler. –  undefined behaviour Mar 12 '13 at 10:38
1  
@modifiablelvalue The new reigning opinion among C++ people is that they shouldn't even use new, if my impressions do not mislead me. I strongly agree that C code should be compiled with a C compiler. –  Daniel Fischer Mar 12 '13 at 11:01

The two are totally different. The first allocates an instance of the struct, whereas the second allocates a pointer to the struct.

In general, they won't even allocate the same number of bytes.

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No, they are not the same. The latter allocates 4 or 8 bytes of space for a pointer to struct, the first allocates enough space for the struct it self.

When sizeof(struct_t) is small enough, and when the malloc allocates actually more than requested, the user may not see the difference.

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Ok, I understand. I always used the first form, but recently I saw also the second form and I wanted to understand if there was any big differences. Thanks. –  Kyrol Mar 12 '13 at 10:26
    
Only rarely there's need to allocate space for a single pointer. It's more like the interface needs to be redesigned. –  Aki Suihkonen Mar 12 '13 at 14:43

Two forms are different. They both allocate memory, but with different amounts. General rule is as follows: when allocating type T, the result of malloc shall be casted to T*.

void sample1()
{
    struct pollfd *pfd = (struct pollfd*)malloc(sizeof(struct pollfd));
    // pfd is points to a memory with a size of struct pollfd
    ...
    free(pfd);
}

void sample2()
{
    struct pollfd *pfd = (struct pollfd*)malloc(sizeof(*pfd));
    // same as above, but uses variable type instead
    free(pfd);
}

If you specify incorrect type in malloc argument, generally that will lead to buffer overrun problems:

void sample3()
{
    struct x *px= (struct x*)malloc(sizeof(struct x*));
    x->field = 5; //<< error, as allocated only 4 or 8 bytes depending on pointer size
}
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Both are different.

Usually malloc returns (void*). So you want to typecast void* to (struct_t*).

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1  
no you must never typecast a malloc in c , see this –  Beagle Bone Mar 12 '13 at 12:19
    
But i used to typecast all of my program. It works without any error or crash, Why? –  sujin Mar 12 '13 at 12:25
1  
This is the answer, to your question , if you have the time/patience , go and have a look there , but i have no time/patience to explain to you an answer , which is clearly explained in the link i sent. –  Beagle Bone Mar 12 '13 at 12:30
    
thanks Mr.Barath Bushan. i cleared with the link which you sent. –  sujin Mar 12 '13 at 12:41
1  
no problem , just correct your answer about typecasting malloc –  Beagle Bone Mar 12 '13 at 12:45

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