As far as I can tell I've followed the advice given by other users, but I still get a segfault when I try to return a pointer to an array. The printf in main returns nothing, so I'm guessing that the pointer isn't to anything on the heap?

#include <stdio.h>
#include <stdlib.h>

int * stringy(int length){
   int *ptr = malloc(sizeof(int)*length);
   int i;
   for(i = 0; 1 < length; i++){
      ptr[i] = i;
   }
   return(ptr);
}

void main(int argc, char **argv){
   int strlen = 12;
   int *newptr = stringy(strlen);
   printf("%d\n",newptr[0]);
   free(newptr);
}
  • 5
    1 < length -- are you certain you didn't mean i < length? – Chrono Kitsune Nov 26 '16 at 4:14
  • 2
    for(i = 0; 1 < length; i++)??? No wonder it segfaults. Spellchecking your code is something you are supposed to be able to do yourself, without requesting worldwide help. – AnT Nov 26 '16 at 4:14
  • 1
    @AnT Making fun of people is not very constructive. – Leo Tindall Nov 26 '16 at 4:16
  • 2
    @SilverWingedSeraph: I think you are really stretching the concept of "making fun of people" beyond what's reasonable. Nobody is trying to "make fun" of anyone here. – AnT Nov 26 '16 at 4:18
  • 2
    Using strlen as a variable name isn't precisely wrong, especially when you don't #include <string.h> and don't do any string manipulation, but it is not a good idea to use variable names that match any of functions defined in the standard library. If nothing else, it is likely to lead to confusion if the code is modified and does need to do string manipulation. – Jonathan Leffler Nov 26 '16 at 4:39
up vote 6 down vote accepted

It seems like there is a typo in your code. Instead of

for(i = 0; 1 < length; i++){

, it looks like you meant

for(i = 0; i < length; i++){
  • 2
    Do NOT cast the return of malloc. It is pointless. See: Do I cast the result of malloc? for thorough explanation. – David C. Rankin Nov 26 '16 at 4:25
  • @Jarvis: You should not typecast malloc return value. Please read this: stackoverflow.com/questions/605845/… – MayurK Nov 26 '16 at 4:27
  • Yeah, I know that in C, void * is automatically and safely promoted to any other pointer type, but in order to compile it using g++, it's necessary to type-cast, and that's why I included this in my answer. But you read the answer of Ron Burk to the question Do I cast the result of malloc?, I think it makes more sense. – Jarvis Nov 26 '16 at 4:36
  • 1
    The question is tagged C, not C++. These are different languages, as reflected in part by the fact that some good, idiomatic C code is invalid in C++. That is not a basis for rejecting good coding practices, such as avoiding casting the return value of malloc(). Use g++ only to compile C++ code. – John Bollinger Nov 26 '16 at 5:41
  • 2
    Giving bad advice along with the good makes this a bad answer. A worse answer, in some ways, than if the whole thing were bad. – John Bollinger Nov 26 '16 at 5:49

You need to check for null pointers; malloc returns NULL when it can't allocate the memory you requested, and that would cause the problem you're referring to. Also, you should cast your pointer to int *.

The actual problem, however, is that you have a typo; rather than 1 < length, your for loop condition should read i < length. Your for loop runs forever.

  • I ditched that part of the code, just to see whether it would get rid of the error. The for loop declaration was the issue though. – Chib Nov 26 '16 at 4:34
  • You should not cast the return value of malloc() in C, unless you are making the extraordinary effort required to code simultaneously in C and C++. And that's tricky to do, and rarely worthwhile. – John Bollinger Nov 26 '16 at 5:46

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