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.

Here is the codes, user is going to enter unknown amounts of words, and if he enters E, then the program stop and print things out, but i received a segmentation error, did i touch some memory which i shouldnt touch?

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

    #define CAPACITY 10
    #define NUM_OF_WORDS 10
    int main(void)
    {
    int num_words = 10;

    char *word= malloc(CAPACITY*sizeof(char));
    char **w=(char **) malloc(num_words*sizeof(char));

    int i;

    for(i = 0 ; scanf("%s", word)==1; ++i)
    {
    if(*word == 'E')
    break;

    if( i == num_words-1)
    w = (char **)realloc(w, (num_words *=2) * sizeof(char));

    w[i] =(char *) malloc(strlen(word)+1 * sizeof(char));

    strcpy(w[i], word);

    }

    int x = 0;

    for(x = 0 ; x<num_words ; x++)
    printf("%s", w[x]);

    return 0;
    }
share|improve this question
1  
What input makes it crash, and on what line? –  John Zwinck Apr 6 '12 at 3:02
    
@JohnZwinck is right. "I received a segmentation error" is not very helpful without knowing how you tested it? Does it crash immediately? After certain input? Have you run it in a debugger? –  abelenky Apr 6 '12 at 3:04
    
When i stopped from entering data and which the program supposed to print things out, i received i seg. error –  qwr qwr Apr 6 '12 at 3:08
1  
in the printf for loop you should be going to i as that is the number of elements in the w array. This isn't the issue with the segFault @JonathanLeffler's answer fixes the segFault. Also you might want to change the printf format because as it is it will print all the elements next to each other without a space or newline between them. –  twain249 Apr 6 '12 at 3:11
add comment

2 Answers

Your variable num_words holds the current maximum size of the w array, but that isn't the same as the number of words actually in the array.

When you loop through the w array you are looping through too many items - some elements of the w do not have a valid string in them - trying to print them will cause a segfault.

share|improve this answer
    
Yes, i think that is the problem as well, so its there any better solution to print them out? –  qwr qwr Apr 6 '12 at 3:09
    
oh, stupid me, i can just use i instead of num_words –  qwr qwr Apr 6 '12 at 3:10
    
@twain249 - it may or may not cause a segfault depending on what is in the malloc'd buffer. malloc doesn't guarantee that the memory will be zeroed. –  shf301 Apr 6 '12 at 3:10
    
@shf301 of course didn't think about that. –  twain249 Apr 6 '12 at 3:14
add comment

Your initial allocation code reads:

char *word = malloc(CAPACITY*sizeof(char));
char **w = (char **) malloc(num_words*sizeof(char));

Both these allocate 10 bytes of memory. Your second one should read:

char **w = (char **) malloc(num_words*sizeof(char *));

or:

char **w = malloc(num_words*sizeof(*w));

These both allocate enough memory for 10 pointers (which might be eight times as much memory as your original code). The second is arguably better style; the first is indubitably the classic style. In C, the cast on malloc() is not necessary; in C++, it is.

This may not be the whole problem; it is almost certainly a contributory factor.

Also, you aren't checking your memory allocations; that is not advisable. You should always check them.


This code:

if (i == num_words-1)
    w = (char **)realloc(w, (num_words *=2) * sizeof(char));

is playing with fire on two accounts (plus a repeat of the previously diagnosed problem):

  1. The assignment within the argument list is...not generally reckoned to be a good idea. I wouldn't write code with that in place, and I'd send back code I was asked to review that contained it. It isn't technically wrong; it will work. But it does not make life easier for the maintenance programmers who come after.

  2. You should never reallocate a pointer such as w and assign the new space to the same pointer. If the memory allocation fails, you'll get back a null pointer, so you've lost the only pointer to the previous data, which is still allocated. That's a memory leak. Also, if the memory allocation fails, you have to undo the assignment within the argument list because the allocated space is still at the original size. I think you'd be better off using:

    if (i == num_words - 1)
    {
        size_t new_size = (num_words * 2);
        char **new_data = realloc(w, new_size * sizeof(*new_data));
        if (new_data == 0)
            ...handle error; w is still valid, and num_words is still correct too...
        num_words = new_size;
        w = new_data;
    }
    
share|improve this answer
add comment

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.