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 have a C program that opens a stream of tweets from Twitter API. What this program aims to do is to open a stream and write the stream to a text file. This program is successful when it just prints the stream in the terminal but when I change the code to write to a file there's now a "segmentation fault" error for about 40 seconds into the execution. size_t writefunc(void *ptr, size_t size, size_t nmemb, struct string *s) is the callback function that writes the stream to a file particularly at

fp=fopen("istream.txt", "a");
fprintf(fp, "%s", s->ptr);
fclose(fp);

Why is there a "segmentation fault" error? How should I fix this? I guess I am using the file pointer the wrong way.

==================================

#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <curl/curl.h>

struct string {
  char *ptr;
  size_t len;
};

void init_string(struct string *s) {
  s->len = 0;
  s->ptr = malloc(s->len+1);
  if (s->ptr == NULL) {
    fprintf(stderr, "malloc() failed\n");
    exit(EXIT_FAILURE);
  }
  s->ptr[0] = '\0';
}

size_t writefunc(void *ptr, size_t size, size_t nmemb, struct string *s)
{
  size_t new_len = s->len + size*nmemb;
  size_t max_buffer = 10240;
  FILE *fp;
  fp=fopen("istream.txt", "a"); // <------------- the ERROR! Remove this.

  s->ptr = realloc(s->ptr, new_len+1);
  if (s->ptr == NULL) {

    fprintf(stderr, "realloc() failed\n");
    exit(EXIT_FAILURE);
  }
  memcpy(s->ptr+s->len, ptr, size*nmemb);
  s->ptr[new_len] = '\0';
  s->len = new_len;

  if( s->len >= max_buffer )
  {
    fp=fopen("istream.txt", "a");
    fprintf(fp, "%s", s->ptr);
    fclose(fp);

    fflush( stdout );
    free(s->ptr);
    init_string( s );
  }

  return size*nmemb;
}

int main(void)
{
  CURL *curl;
  CURLcode res;


  curl = curl_easy_init();
  if(curl) {
    struct string s;
    init_string(&s);

    curl_easy_setopt(curl, CURLOPT_URL, "https://stream.twitter.com/1/statuses/sample.json");
    //curl_easy_setopt(curl, CURLOPT_HTTPAUTH, CURLAUTH_BASIC);
    curl_easy_setopt(curl, CURLOPT_USERPWD, "neilmarion:password");
    curl_easy_setopt(curl, CURLOPT_WRITEFUNCTION, writefunc);
    curl_easy_setopt(curl, CURLOPT_WRITEDATA, &s);
    res = curl_easy_perform(curl);

    //printf("%s\n", s.ptr);
    free(s.ptr);

    /* always cleanup */
    curl_easy_cleanup(curl);
  }
  return 0;
}
share|improve this question
1  
You're leaking an open file every time writefunc is called. –  mu is too short Nov 22 '11 at 3:06
    
What do you mean @muistooshort? –  neilmarion Nov 22 '11 at 3:10
    
How many fopen calls are in writefunc? Do you fclose everything you fopen? –  mu is too short Nov 22 '11 at 3:13
    
Oh. Sorry. That was a typo error. I edited the code above. @muistooshort Though nothing was solved even the extra fopen was removed from the real code. Segmentation fault still looms. –  neilmarion Nov 22 '11 at 3:17
    
Oh! Sorry @muistooshort That was actually the error. Thank you! –  neilmarion Nov 22 '11 at 3:19

2 Answers 2

Most things looks correct in your program.

Most likely if fp=fopen("istream.txt", "a"); fails to open the file, it could be a segfault in the consecutive line.

Try to print the string in stderr instead to see. If that works, than issue is indeed in fp.

Other comment:
Since you are opening the file in append mode, there is actually no point in collecting the data in the buffer and keep re-allocating the buffer. You can at once append the file.

share|improve this answer
    
Thanks for the response! The error was actually found. There was just an extra fp=fopen("istream.txt", "a"); in the code that is not being closed. I edited the code again for everyone to see. –  neilmarion Nov 22 '11 at 3:25

Every time you enter writefunc you open istream.txt:

FILE *fp;
fp=fopen("istream.txt", "a");

but you never call fclose on the fp. You do have this:

fp=fopen("istreaam.txt", "a");
fprintf(fp, "%s", s->ptr);
fclose(fp);

later on but the second fopen means that you no longer have a reference to the what the first fopen returned.

Eventually, you will run out of open files and further fopen calls will fail. Apparently this takes about 40 seconds. So get rid of the first fopen and try again.

share|improve this answer

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.