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Can anyone help me with explanation what this line do

(UserList *) malloc(sizeof(UserList)); 

I'm new to C world. What I understand is that allocate memory for Userlist type. If so why definition is not just

Userlist malloc(sizeof(UserList))  ?
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closed as not constructive by Nemo, Mitch Wheat, Michael Foukarakis, Sadiq, qrdl Sep 29 '11 at 15:03

As it currently stands, this question is not a good fit for our Q&A format. We expect answers to be supported by facts, references, or expertise, but this question will likely solicit debate, arguments, polling, or extended discussion. If you feel that this question can be improved and possibly reopened, visit the help center for guidance.If this question can be reworded to fit the rules in the help center, please edit the question.

    
We need more context. I guess the first line could be a cast. But you would probably assign it to something. – onemasse Sep 29 '11 at 14:56
    
Arguing syntax (ie, questions like "why isn't it like this instead...?") seems kind of.. pointless, don't you think? It is what it is. – Blindy Sep 29 '11 at 14:57
2  
Answer: this code as it is does exactly nothing of any use. – Pete Wilson Sep 29 '11 at 14:59
    
@PeteWilson, right, of course, any code does precisely nothing getting it out of context... I don't think your answer is of any use either in this context... – Diego Sevilla Sep 29 '11 at 15:02
1  
@Pete Wilson: Who knows, maybe someone wants to hog RAM? – undur_gongor Sep 29 '11 at 15:04
up vote 2 down vote accepted

What this code is doing is allocating dynamic memory for a structure of type UserList. The previous expression, (UserList*) tells the compiler of what type to treat that value returned by malloc. As malloc is generic in C and can return a pointer to any type (effectively in C terminology, void*), you can tell the compiler what type do you expect this pointer points to. This usually happens in the context of an initialization of a variable of type UserList*:

UserList* user_list = (UserList *) malloc(sizeof(UserList));

Note how the variable getting the result is a pointer to the correct type. You can access to the structure pointed by the pointer in this new allocated memory using the normal *user_list syntax.

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Actually, not only do you NOT have to tell the compiler what type the memory is, it's actually frowned upon by the C community. – Blindy Sep 29 '11 at 14:58
    
@Blindy: Yes, thanks, corrected it just when I re-read it. :) – Diego Sevilla Sep 29 '11 at 14:59

malloc returns a pointer (memory location) to the memory allocated. The * means a "pointer to" a UserList rather than the userlist itself.

I'm not sure if this line is a declaration or a statement. If it's a statement then the brackets cause the type of the pointer returned to be cast to "pointer to UserList" rather than "void *" meaning pointer to anything.

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