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I have declared a structure in my .h file, as such:

struct node{
char* string;
}

I intend this to have created a structure, example, with one member, a character pointer named string.

Now, I figure out how long the string is and malloc an array of appropriate size, taking the input with that.

char* test;
test = (char*) malloc( n * sizeof(char) );

Insofar as I am aware, this has created character pointer test, and has assigned it to point at the head of the array I just malloc'd. I then proceed to assign each array slot to a character that the user has entered, and I read it back out - this all compiles and works appropriately. My problem comes when I try to assign this character pointer to the character pointer in a structure node passed in to this structure, as:

int f1( struct node* new ){

So I try to assign the pointer in the structure to the value of the pointer to the array, like so:

new->string = test;

But I segfault.

To me, this seems like I am assigning a char* to something that expects a char* so this should be working fine...I'm probably missing something stupid, but does anyone have a direction to point me in? Thanks much!

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3  
Does new point to an allocated (stack or dynamic, take your pick) struct node ? Even if test is a bogus pointer, that assignment statement will not cause a seg-fault unless new is invalid. –  WhozCraig Nov 15 '12 at 21:39
    
Off topic, but don't name variables new or you'll confuse c++ programmers. –  JohnnyHK Nov 15 '12 at 21:41
    
Using "new" as identifier isn't a good idea if you ever want to port to C++. –  Sebastian Nov 15 '12 at 21:42
    
I thought so - I declare struct u_acct *new; in the main function and pass *new into the function this is in...but I could be mistaken. –  Austin Leigh Nov 15 '12 at 21:42
    
ah okay good to know about naming conventions, thanks :) –  Austin Leigh Nov 15 '12 at 21:43

2 Answers 2

up vote 3 down vote accepted

Check your caller of f1() and make sure your parameter is valid.

This will work:

struct node *you = malloc(sizeof(struct node));
if (you)
{
    f1(you);
    free(you);
} 

As will this:

struct node me;
f1(&me);

This will NOT work

struct node *me;
int f1(me);
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...talk about missing the little things. I can't believe I did that >_< thank you so much! –  Austin Leigh Nov 15 '12 at 21:46
    
@AustinLeigh happens more often than you think. –  WhozCraig Nov 15 '12 at 21:47

Some observations to note:

  1. sizeof(char) is one by definition.

  2. Recommended way of calling malloc is one that avoids casts as well as gets sizeof to infer the type from the pointer being allocated. (See below)

  3. Avoid using names such as new for your identifiers (to the extent possible).

  4. Remember to free the string member within node when you are done.

To elaborate #2, see below --

struct MyType *foo;
foo = malloc( n * sizeof *foo ); /* allocate n elements where n > 0 */

For some reason, if you chose foo to be of some other type, the malloc call is one less line for you to worry about. Also, should you forget to include stdlib.h, the compiler will let you know about it.

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