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I don't understand why the pointer has to be de-referenced here. char *toParseStr = (char*)malloc(10); Anyone have any ideas?

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char *toParseStr = (char*)malloc(10);

There is no dereference here but a cast of the malloc return value to char *. The cast is not required and even should be avoided.

To know why the cast should be avoided:

http://c-faq.com/malloc/mallocnocast.html

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Are there any benefits of casting it? And in what situation would it be useful? – AkshaiShah Nov 19 '12 at 22:00
    
@AkshaiShah It's a style issue, some coders prefer to be explicit in their casts. Also, if you want it to work in C++ as well it requires the cast. – peacemaker Nov 19 '12 at 22:01
2  
@AkshaiShah In c++ the cast is required and I've seen people get into the habit from doing it there; but then using malloc in c++ should be a rare event. – dmckee Nov 19 '12 at 22:03
    
Do I cast the result of malloc? – mux Nov 19 '12 at 22:03
    
@mux - The only time you would cast the result of malloc is if you are working in C++, or you are using a C compiler that predates the 1989 standard. Prior to C89, malloc returned char *, not void *, so in those days a cast was required if the target type was not char *. The reason the void * type exists is to provide a "generic" object pointer type that can be converted to other object pointer types without needing the cast. – John Bode Nov 19 '12 at 22:15

malloc returns a void*, so the cast is necessary in some cases to prevent compilation errors

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No, the cast is not necessary and even harmful. It would have been necessary if it was C++. – user405725 Nov 19 '12 at 22:02
    
the link ouah just posted explains this. – Slicedpan Nov 19 '12 at 22:02

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