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First off, this is a homework question.

I am writing a test program to test a library class, which I have been supplied the header for. This is a function prototype I therefore cannot change:

void dll_append(void *data);

The implementation of my doubly-linked list structs shouldn't matter too much I think. My problem comes when trying to create a void* in the test program, to pass into this function.

In the test program:

void* one = (char*)"one";
dll_append(one);

Mostly, I cannot understand how to declare a void*, while at the same time assigning a char array to it.

EDIT:

My error is always

"error: invalid initializer"
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1  
You just did that, what is the problem? – this Apr 15 '14 at 19:37
    
Apologies, forgot to mention the error! but I get an invalid initializer error on every line I try to use something like this. – user2860419 Apr 15 '14 at 19:39
    
So.. uhhh... post the input you're giving to the compiler and post the error, maybe? – San Jacinto Apr 15 '14 at 19:40
    
Your edit doesn't really help anything. Post the most minimal example that you can to expose the error, and post the error that results. The lack of context isn't helping. – San Jacinto Apr 15 '14 at 19:42
    
The code you posted looks ok to me. – this Apr 15 '14 at 19:42

It's entirely unclear what you are attempting to do here. The example compiles fine, but this will only be useful in the stack frame in which it is called. If you are doing this assignment in a function and then returning the pointer, the memory address will refer to an invalid location after returning, as it refers to a location on the stack frame from which you are returning (See this answer for an excellent analogy). More likely, you want to be dynamically allocating the memory at the void pointer on the heap, particularly if you are passing the pointer (and ownership of the memory) on to another function. This is probably what you want:

char *ptr = malloc(strlen("one") + 1);       //need space for null termination
strcpy(ptr, "one");
void *one = ptr;

From here you can cast the variable 'one' as a char* to use it as such. For example:

printf("%s\n", (char *) one);

In this case, the explicit cast isn't strictly necessary (it's handled by the %s tag), but it makes it a little bit more clear. I hope this helps!

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