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I'm getting a segfault in my code and I'm not sure why. I read through a file and count the number of lines in order to dynamically allocate my arrays. I then rewind the file, read the data in the file, storing the data into variables, and then storing the read variables into arrays, but I'm having trouble with chars.

   ...
   char *aname = malloc(sizeof(char) * 3); 
   ... 
   // get # lines in file (count)
   ... 
   char *aname_seen = malloc(count * (sizeof(char) * 3));
   ...
   rewind(file);
   while (fgets(buff, sizeof buff, file) != NULL) 
   {
      if (sscanf(buff, "%s %d %s %s %d %lf %lf %lf %lf %lf\n", 
         atm, &serial, aname, resName, &resSeq, &x, &y, &z, 
         &occupancy, &tempFactor) == 10)
      {
         aname_seen[i] = *aname;
         printf("%d: %s vs %s\n", i, aname, aname_seen[i]);

         i++;

      } // end sscanf if-loop

   } // end while loop

I can print aname with printf("%d: %s\n", i, aname) and get the expected output, but I'm getting Segmentation fault (core dumped) when I try printf("%d: %s vs %s\n", i, aname, aname_seen[i]).

This while loop + nested if loop is the same convention I use to count the number of lines, so i will increment up to count. Am I incorrectly allocating aname_seen and not actually giving it count number of char*3 elements? I'm not well versed in messing with char's. More of a numerical fortran buff, so I need some direction.

Thanks in advance!

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Suggest preventing potential buffer overrun by specifying the maximum number of characters assign to a string by sscanf(). This can be done by replacing the "%s" format specifier with "%Ns" where N is one less than the number of characters in the array being populated. –  hmjd Apr 10 '13 at 14:43
    
You don't appear to initialise i. Has that just been elided? –  Chowlett Apr 10 '13 at 14:45
    
Are you aware that aname_seen[i] = *aname; only copies a single character? –  interjay Apr 10 '13 at 14:46
    
@interjay, I do now realize this. I asked about how to fix that on modifiable lvalue's answer. If you have a solution, it would be much appreciated! –  mjswartz Apr 10 '13 at 15:01
    
@Chowlett, it has been initialized, just not shown in this snippet. –  mjswartz Apr 10 '13 at 15:02

2 Answers 2

up vote 3 down vote accepted

The %s format specifier is supposed to correspond to a char * argument. In your case, aname_seen[i] is a char, which gets promoted to an int for the purpose of passing to a variadic function (printf). An int is not a char *.

Perhaps you meant one of these:

printf("%d: %s vs %c\n", i, aname, aname_seen[i]);
printf("%d: %s vs %s\n", i, aname, &aname_seen[i]);

If neither of these solve your problem, please explain precisely the behaviour you expect from this expression and give us a minimal, compilable testcase. Your current testcase isn't compilable.

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This solved the print out problem, but another arises. Some of these aname's are things like HA, CA, etc., but aname_seen only stores the first character of those strings. Is there any way to modify aname_seen so that it can store the entirety of what aname contains? –  mjswartz Apr 10 '13 at 14:59
    
There sure is a way to modify aname_seen so that it can store the entirety of what aname contains. I'm sure the book you're reading covers this topic fairly early on. –  Seb Apr 10 '13 at 15:03
    
Book I'm reading? This is for drug production code in industry. –  mjswartz Apr 10 '13 at 15:05
    
Unfortunately, you can't learn C by trial and error, or by unguided example (modifying copy/pasted code). C has a concept known as "undefined behaviour", which is undesirable. One example of undefined behaviour is the topic of your question: The code that causes your segfaults. Segfaults aren't required, however. A program that invokes undefined behaviour may seem to work on some systems, but only by coincidence. On other systems, such a program might malfunction in subtle or devastating ways (such as producing segfaults). You need to learn C from a book in order to avoid undefined behaviour. –  Seb Apr 10 '13 at 15:11
    
@mjswartz You've demonstrated a confusion between the type of c in char c; and the type of p in char *p;. The * is significant, in that it denotes a pointer. A book will explain the difference in detail, as well as the standard C function for copying strings (strcpy). I suggest K&Rs "The C Programming Language", second edition. –  Seb Apr 10 '13 at 15:16

you way you defined aname_seen is a pointer to a char array

char *aname_seen = malloc(count * (sizeof(char) * 3));

so aname_seen[i] is a char

so the

printf("%d: %s vs %s\n", i, aname, aname_seen[i]);

should be

printf("%d: %s vs %c\n", i, aname, aname_seen[i]);
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