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What is the difference between char s[] and char *s in C?
Difference between char *str = “…” and char str[N] = “…”?

I have a structure defined as:

typedef struct
{
  bool                  configured;
  bool                  active;
  uint32                lastComms;
  uint32                rxChRvdTime;
  char                  *name;
}vehicle;

and I initialize it as follows:

static vehicle *myVehicle; 

When I want to initialize the name, I use:

myVehicle->name = "helloworld";

And this works fine. But when I wan't to set it to something other than a string literal, I seem to run into problems.

char *tmpName = "foobar";
strcpy(myVehicle->name, tmpName);

So why doesn't strcpy work? Do I somehow need to preallocate the string size in the structure before hand? Should I not be using a pointer for the 'name' field, since there can only be one vehicle?

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marked as duplicate by Bo Persson, Jonathan Leffler, ChrisF, Vikdor, Lucifer Oct 21 '12 at 1:21

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
"Do I somehow need to preallocate the string size in the structure before hand?" –  oldrinb Oct 20 '12 at 15:54
    
ok, noob question: why not simply do myVehicle->name = tmpName; –  Prasanth Oct 20 '12 at 16:03
    
I disagree. This question is about allocation of memory for strings within structs. I read that question and it didn't solve my problem. –  Jonathan Oct 21 '12 at 0:10

3 Answers 3

up vote 2 down vote accepted

You need to allocate memory to copy into:

 myVehicle->name = malloc(strlen(tmpName) + 1);
 if (myVehicle->name)
 {
     strcpy(myVehicle->name, tmpName);
 }

as myVehicle->name is an uninitialised char*. If you malloc() you need to free(). The assignment to the string literal works because you making name point to the address of the string literal, which exists for the lifetime of the program.

But before this, you need to allocate memory for myVehicle itself:

myVehicle = malloc(sizeof(*myVehicle));

or just make myVehicle an object rather than a pointer:

static vehicle myVehicle;
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when allocating memory for myVehicle or for name, i get a compiler error: "a value of type "int" cannot be assigned to an entity of type "vehicle *" " –  Jonathan Oct 20 '12 at 16:07
    
@shred444, you need to #include <stdlib.h> –  hmjd Oct 20 '12 at 16:09
    
hmjd, you're a c monster. Thanks buddy! –  Jonathan Oct 20 '12 at 16:12

You want

  myVehicle->name = strdup("foobar");

but don't forget to free it later.

Actually, you usually don't strdup constant literal strings (but you need to do that if that string could be overwritten later, since constant literal strings usually stay in read-only segments, and writing into them is undefined behavior.). You might build a string in some buffer, and strdup that buffer. A more realistic example might be:

 char buf[32];
 static int counter;
 counter++;
 snprintf(buf, sizeof(buf), "#%d", counter);
 myVehicle->name = strdup(buf);
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Why the downvote? –  Basile Starynkevitch Oct 20 '12 at 15:55
    
No, idea. So +1 to balance it out again. –  Skyler Saleh Oct 20 '12 at 15:57

You only declared a pointer, not actual memory it points to. try:

char *tmpName = "foobar";
myVehicle->name = malloc(strlen(tmpName) + 1);
if (myVehicle->name)
    strcpy(myVehicle->name, tmpName);
else
{
    // error
}

Don't forget to free myVehicle->name once you are done with it.

share|improve this answer
    
wow. 32 seconds after i posted? Thanks! So when the function that this is contained in finishes, the code wont automatically clear the declared tmpName space? How does it know that I will still be using it later? –  Jonathan Oct 20 '12 at 15:59
1  
It will not be cleared, as you called malloc, and malloc'd memory is persistant until you explicitly free it (free(myVehicle->name)). If you lose the pointer before freeing the buffer, no one will clean it for you and you will get a memory leak. –  MByD Oct 20 '12 at 16:00

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