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for example in this code:

double **Data, *DataT;
Data = (double **)malloc(3*sizeof(double *)+3*12*sizeof(double));

I just read that malloc allocates memory from the heap. But i could not find what that (double **) meant in front of the malloc. There is a line of code directly after this as well that i have seen this in.

for (i = 0, DataT = (double *)(Data+3); i < 3; i++, DataT += 12)

Here there is a (double *) in front of Data+3

Could you please explain to me what that does? Thank you

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double** : pointer to (double pointer = double*)... :) –  Hicham from CppDepend Team Dec 27 '11 at 2:25
2  
it's best to not use these with c++. Also casting is better done with static_cast< double**> syntax. –  shuttle87 Dec 27 '11 at 2:26

8 Answers 8

up vote 5 down vote accepted

malloc() returns type void *, while your pointer is of type double * or double **. The operator before malloc - looking like (type) - is the type conversion operator, needed to convert malloc's return value to the type of the pointer you are using.

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why does one need to type-cast empty memory? I thought malloc just frees up space so whatever needs to fit inside Data could fit? –  user947659 Dec 27 '11 at 2:34
    
it is standard... a pointer has a type in C and C++. e.g. : when you create an int* p, sizeof(*p) returns 4 or another number according to the architecture. if you want to put another type of date in p, you will have a warning or an error in compilation. malloc allocate memory space, it does not free it... –  Hicham from CppDepend Team Dec 27 '11 at 2:38
3  
@user947659 because C++ is strongly typed so it has restrictions on operations involving different types. Since in C++ there is no implicit conversion from void * to double **, trying to assign a void * to a double ** is a syntax error. –  David Brown Dec 27 '11 at 3:08
    
You want your pointers to correctly represent the types of memory that they point to so the compiler can do correct pointer arithmetic on them. –  Bill Dec 27 '11 at 4:09

(double**) is a cast. it says that the result of the malloc is changed to double**.

malloc returns void* according to the standard.

so it is casted to double** to be the same nature of data : double**.

but in C, there is no need to the cat because void * is casted implicitly. so you can write directly :

Data = malloc(3*sizeof(double *)+3*12*sizeof(double));

as your question is for C++, which is compatible with C malloc, you have to put the cast : (double**).

so you can use malloc and the cast if you have a code that you want to use in programs in C and in C++. else, use new and delete...

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It's a type cast. The rules for its syntax and usage should be a part of any C primer. The definitive book for this kind of thing is the one by Kernighan and Ritchie.

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why does one need to type-cast empty memory? I thought malloc just frees up space so whatever needs to fit inside Data could fit? –  user947659 Dec 27 '11 at 2:28
    
@user947659: As others have pointed out, you actually don't need to typecast the return value of malloc() in the C language. In C, the type void * is implicitly convertible to any other pointer type. However, in the C++ language, the type void * is not implicitly convertible, so you need a cast. It's not a generally very good idea to mix C and C++ idioms. If you're compiling your code as C++, then use the new and delete keywords instead of the malloc() and free() functions. Conversely, if you're compiling your code as C, then don't cast the return value of malloc(). –  Daniel Pryden Dec 27 '11 at 17:01

It means "pointer to a pointer".

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The (double **) is a casting operator. It casts the void pointer returned by malloc to a pointer to pointer to double.

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It's a pointer to a pointer. e.g. a double dereference.

c -> some memory address
*c -> whatever is at the memory address stored in c
**c -> whatever is at the memory address stored in *c
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The (double**) and (double*) are what are known as C style casts. These make whatever type is after them into the type inside the parentheses.

The first C style cast is turning the return type of malloc into double** so it can be stored in the double** variable. The second cast is turning it into a double*, so it can be dereferenced correctly.

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double** means that you're allocating a pointer to a pointer of a double

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