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All this is trying to do is putting the address of shortest string at the beginning and address of longest string at the end of array, but I can't see what is wrong with it. When I run it on linux I get 'segmentation fault'

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

void fx(char* t[], int n);

int main(void) {
    char*t[]= {"horse", "elephant", "cat", "rabbit"};
    int n, i;
    n = sizeof(t)/sizeof(t[0]);
    fx(t, n);
    printf("shortest is %s, longest is %s\n", t[0], t[n-1]);


void fx(char* t[], int n) {
    int i;
    char* temp, len0, len1, len;
    len0 = strlen(t[0]); /* lenght of first string*/
    len1 = strlen(t[n+1]); /*lenght of last string*/
    for(i=0; i<n; i++) {
        len = strlen(t[i]); /*temporary lenght if ith string*/
        if( len < len0 ) {
            temp = t[0];  /* if shorter, swap places with first*/
            t[0] = t[i];
            t[i] = temp;
        else if(len > len1) {  /* if larger, swap places with last*/
            temp = t[n-1]; 
            t[n-1] = t[i];
            t[i] = temp;
share|improve this question
len1 = strlen(t[n+1]); /*lenght of last string*/ Shouldn't this be n-1? –  Ken Mar 21 '13 at 19:18

1 Answer 1

Array are [0....n-1]

len1 = strlen(t[n+1]); /*lenght of last string*/

should be

len1 = strlen(t[n-1]); /*lenght of last string*/

len0, len1 and len must be int, not char* since they hold the len of the strings

share|improve this answer
... You're completely right, I don't know how I missed that. Thanks! –  user2006562 Mar 21 '13 at 19:27
@user2006562, FYI, since C does not implement automatic bounds checking, such code results in undefined behaviour. –  Anish Ramaswamy Mar 22 '13 at 5:10

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