Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I was looking at some c++ code, and I saw this:

int num = *(int *)number;

I had never seen this before? it was in a function labeled as such:

void *customer(void *number){ }

What does that even do? Is there a different way to show this?

Thanks, this isn't homework btw I was just confused at what this does?

share|improve this question

5 Answers 5

up vote 8 down vote accepted

The (int *) part casts the variable number to a pointer to an int, then the * in front dereferences it to an int.

share|improve this answer
    
+1 @Charles yep, basically num will now hold a copy of the value that number was pointing to. –  pstrjds Nov 13 '10 at 0:48
    
Worthwhile to add: While casting FROM void pointer, we need to use the cast operators.This is the reason of using (int *) which casts 'number' which is pointer to void, to a pointer to an int. And * further deference this pointer to an int to return an int. –  Alok Save Nov 13 '10 at 9:38

The function takes a void*, but somehow it knows (perhaps it's required in some documentation somewhere) that the pointer it's given actually points to an int.

So, (int*)number is "the original pointer, converted to an int* so that I can read an int from it", and *(int*)number is the int value that it points to.

share|improve this answer

The function accepts a void pointer (thus void *). In order to dereference it to a variable of a certain type (e.g. int) - which is what teh first "*" does - you need to cast it to a pointer to an actual type - in this case to an int pointer via (int *) cast

share|improve this answer

I'm assuming customer is used like this:

int lookup = 123;
customer_key *key = customer(&lookup);
// do something with key here

In which case, the code in customer is typecasting the void * to an int * and then dereferencing it (getting its value). It has to typecast first because void * basically means "pointer to something", which allows you to pass in any type you want. Without the typecast the compiler doesn't know if you want to read a char (usually 1 byte), a short (usually 2 bytes) or an int (usually 4 bytes). The typecast removes the ambiguity.

Note using void * for the argument is probably not the best, since you could do:

double lookup = 69.0f;
customer_key *key = customer(&lookup);

And this will compile, but won't look up customer 69 (a double is not an int!).

The use of void * may be intentional, the code may be able to determine (hopefully safely) between pointers and an argument like: (void *)3 - which would be a special case.

share|improve this answer

The correct answers are already here, but can I tell you a trick that generally helped me when I had to use C a lot?

It's how you pronounce "*" in your head--and there are two parts.

The common part is when it is part of a type--and everybody probably says "pointer" when they read that, which is great. So (int *) is an int pointer--or I'll even reverse it in my head to read "pointer to an int" which seems to help a little.

The thing that helps a lot for me is whenever you see * in your code--read it as "what is pointed to by".

If you follow this pattern, then:

int num = *(int *)number;

is an integer variable "num" gets assigned the value: what is pointed to by an int pointer, number. It just translates itself.

Sometimes you have to mess with the phrasing a little, but since I got into that habit I've never had a big problem reading pointer code.

I believe I also read & as "The address of" in C, but I think it's been overloaded in C++ if I recall correctly.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.