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 am studying functions that accept arguments of arbitrary datatypes using void pointers. Such a function is the following:

void funct(void *a) {
    float *p = a;
    printf("number = %f\n",*p);
}

Here is a successful invocation to funct:

float x = 1.0f;
funct(&x);

x is declared to be a float and then its pointer, namely &x (which is of type float*) is passed to funct; quite straightforward!

There is however yet another way to declare a variable in C and get its pointer. This is:

float *p;
*p = 1.0f;

But then the call funct(&x); returns a Segmentation fault: 11! How is that possible?

Additionally, assume that I want to create a method that accepts a "number" (i.e. float, integer, double, float or anything else (e.g. even u_short)) and adds 1 to it. What would the most versatile implementation possibly be? Should I consider the following prototype:

void add_one(void* x);

?

share|improve this question
2  
You need to read an intro to C. That is not how pointers work. –  Mahmoud Al-Qudsi Jan 23 '13 at 1:52
4  
float *p = 1; : I seriously don't think this does what you think it does. –  WhozCraig Jan 23 '13 at 1:52

4 Answers 4

up vote 1 down vote accepted

First off, I must make something clear. float *p and float* p are equivalent statements. If you're a beginner in C, I recommend that you write the latter instead of the former, because it makes clearer what the type is and what the variable is - it will save you a lot of confusion in the future. With that in mind, please remember that in the following block p, not *p, is the variable.

float* p;
*p = 1.0f;

The first line allocates a float* on the stack. As it happens with all variables allocated on the stack, its initial value is undefined (most probably garbage). This is not exclusive to pointers: even if you allocate an int and you don't initialize it, it will have an undefined value.

The same happens with p, so you should think of p as containing random data initially. If p contains random data and it's a pointer, it means that it's pointing to a random address. Attempting (in the second line) to write the value 1.0f (or anything else) to that random address will almost always cause a segmentation fault, because a random address at any given time has little chance of belonging to your program.

share|improve this answer
    
Excellent comment and thoroughly explanatory! Thanks a lot and, indeed, I'm a beginner in C. –  Pantelis Sopasakis Jan 23 '13 at 2:09
    
One question - Does the same principle hold true for char*? For instance at eskimo.com/~scs/cclass/krnotes/sx8e.html the author uses the statements: char *p = "abc";. –  Pantelis Sopasakis Jan 23 '13 at 2:14
2  
Yes, but keep in mind that char *p = ... is equivalent to char *p and p = ..., (not char *p and *p = ...). So, the author there is initializing p, not the address pointed by (uninitialized) p. –  Theodoros Chatzigiannakis Jan 23 '13 at 11:34
float *p = 1;

is invalid; your compiler should at the very least have issued a warning. It attempts to initialize a pointer variable (of type float*) with an integer expression (type int, value 1).

There is no implicit conversion in standard C from int to float*.

If your compiler warned you about that line, pay attention to the warning. If it didn't, play with your compiler options until it does, or get a better (more modern?) compiler.

As for a function that takes a pointer to an variable and adds 1 to it regardless of its type, there's really no way to do that in C. Conceivably you could write a function that takes a void* pointer and a second argument that indicates its type, then use a switch statement in the function to decide what conversions to perform. But it's a whole lot easier just to write

x ++;

In response to your updated question:

float *p;

That's valid; it defined p as a pointer to float.

*p = 1.0f;

The compiler probably won't complain about that, but since you haven't assigned a value to p, it probably doesn't point to a valid object. *p = 1.0f; has undefined behavior. If you're lucky, your program will crash; if you're unlucky, it will appear to work.

share|improve this answer
    
I edited my question. float *p = 1.0f throws the same error. –  Pantelis Sopasakis Jan 23 '13 at 1:54
2  
@PantelisSopasakis And... still not right. That thing is a pointer. it holds an address of a float, not a direct float. float f = 1.0; float *fp = &f; Consider that for awhile. –  WhozCraig Jan 23 '13 at 1:55
    
@PantelisSopasakis: That's equally invalid. Did your compiler print an error message for that line? –  Keith Thompson Jan 23 '13 at 1:55
    
OK, so the right way to go would be: float *p; *p = 1.0f; ? Then p is a pointer to a float, right? –  Pantelis Sopasakis Jan 23 '13 at 1:56
    
@PantelisSopasakis: Sorry, I hadn't read your edit. float x = 1.0f; is perfectly valid. float *x = 1; is not. –  Keith Thompson Jan 23 '13 at 1:56

By declaring

float *p;

p is supposed to be pointer holding the address of a valid float variable. Here you are just assinging a number to p.

*p = 1.0f;

This would lead to undefined behaviour. since p does not hold any valid address and you are simply trying to dereference it.

share|improve this answer

In float *p, p is a pointer to a float. You can't say *p = 1.0 without first making the pointer p point to something. For example,

float *p = new float;
*p = 1.0f;

That might work.

share|improve this answer
    
I tried float x; float *p = &x; *p=1.0f; and then funct(p); and it worked just fine! Thanks a lot for the answer! –  Pantelis Sopasakis Jan 23 '13 at 2:04

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.