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Could someone explain what is going on when we use the typedef "type cast" syntax?

    typedef int (*funcptr)(double); (Wiki)
    funcptr x = (funcptr) NULL;


pg470, K.N.King - Modern Approach

    typedef int *Fcn(void);
    typedef Fcn *Fcn_ptr;
    typedef Fcn_ptr Fcn_ptr_array[10];
    Fcn_ptr_array x;

Isn't it:

    typedef oldtype newtype;
    typedef int Bool;

So how does: typedef int * Fcn(void) make sense?? Usually: int *Fcn(void), would be a function "Fcn" that has no parameters and returns a pointer to an int.. if i stick a typedef what happens??

funcptr is a pointer variable.. it's not a type..? so how can he cast NULL to (funcptr)???? Is this syntax explained clearly somewhere - K.N.King just slams it into you without mentioning this peculiar syntax anywhere..

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3 Answers 3

up vote 2 down vote accepted

from 《C language reference manual》, chapter 7:

Declarations with the storage class specifier typedef do not define storage. A typedef has the following syntax: typedef-name: identifier.An identifier appearing in a typedef declaration becomes a synonym for the type rather than becoming an object with the given type.

so typedef int (*funcptr)(double) means funcptr is a function pointer,the function has one parameter double and return type is int.

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Ooo!! many many thanks! Cool book ref! –  Vek.M1234 Dec 10 '11 at 10:34

typedef int (*funcptr)(double); is defining funcptr as a function pointer, where the function being pointed to takes a single argument of type double, and returns an int.

Otherwise x will have to be declared as: int (*x)(double). It saves you from having to type this all out every time you want a variable of this type somewhere. Not to mention it makes making changes to your code easier.

You can assign NULL to any sort of pointer to say that your pointer isn't pointing anywhere valid (funcptr x = (funcptr) NULL;). NULL will be defined as a void* to an invalid memory location, you don't need to cast it to assign it to x.

Your second example merely breaks the typedef up into a couple more steps, with the result being a typedef for an array of function pointers.

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The syntax for defining a typedef in C is identical to the definition of a variable, but with the keyword typedef prepended.

So, if for example:

int a[10];

declares a as a variable of type array-of-10-ints, then the following:

typedef int b[10];

defines b as the type array-of-10-ints.

The same is true for function types:

int f(double);

declares f as a function that receives a double and returns an int. Then:

typedef int g(double);

defines g as the type of such a function.

Naturally, you cannot declare a variable of type function, so the following is incorrect:

g ag; //Error

But you can use it to declare variables of type pointer-to-function:

g *pg; //OK

That's why it is usually preferred to make the typedef a pointer-to-function in the first place:

typedef int (*k)(double);

Here k is a pointer-to-function that receives a double and returns an int. This way you can declare a variable pg equivalent to the avobe with:

k pg;
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