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I'm new to C and trying to create a function that check a string and returns the last character.

I get the function to print the correct letter, but I cant figure out how to return it :/

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

char last_chr(char *c);

int main (int argc, const char * argv[]) {
    char *text[15];
    strcpy(text, "*find:last;char#");

    last_chr(text);  //debugging

    //printf("last char: %c", last_chr(text));   //not working

    return 0;
}

char last_chr(char *c) {
    char *endchr;
    char result;
    int pos = strlen(c)-1;

    endchr = c[pos];

    //sprintf(result,"%s",endchr);      //"EXEC_BAD_ACCESS"
    putchar(endchr);                    //prints #
    //putc(endchr, result);             //"EXEC_BAD_ACCESS"
    //printf(endchr);                   //"EXEC_BAD_ACCESS"
    return result;
}
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2  
Isn't endchr = c[pos]; giving you an error as well? –  Kninnug May 9 '13 at 22:26
    
that only gives me a warning: "assignment makes pointer from integer without a cast" –  JoakimH May 9 '13 at 22:41
1  
Never, ever, ignore a warning. Unless you have a really good reason for it. And even then, fix it. This warning in particular is very dangerous to ignore as you're messing up a pointer. Making it point to random data. Hint: compile with -Wall -pedantic if you're using GCC. –  Kninnug May 9 '13 at 22:45

2 Answers 2

up vote 0 down vote accepted
#include <stdio.h>
#include <string.h>

char last_chr(char *c);

int main (int argc, const char * argv[]) {
    char text[32];//char *text[15]

    strcpy(text, "*find:last;char#");//length is 17

    printf("last char: %c", last_chr(text));//#

    return 0;
}

char last_chr(char *c) {
    if(c == NULL || *c == '\0') return 0;
    return c[strlen(c)-1];
}
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You don't assign result. You probably mean

result = c[pos];

instead of endchr = c[pos];

endchr is a character-pointer instead of a character.

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