Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

Spoiler: I am an absolute beginner to C. I quickly threw threw together this program to test my knowledge, but my compiler is giving me errors. What is the problem and why?

#include <stdio.h>

void main()
    char *string = "abcdefghi";

    printf("%s\n\n", string);

    printf("%s\n\n", substr(string, 1, 2));

char * substr(char *string, int start, int length)
    int i;
    char *temp;

    for(i = 0; i < length; i++)
        temp[i] = string[i+start];

    return temp;


Sorry, it's like 1 AM here, I've been up trying to figure this out.

The errors are:

main.c: In function ‘main’:
main.c:9: warning: format ‘%s’ expects type ‘char *’, but argument 2 has type ‘int’
main.c: At top level:
main.c:12: error: conflicting types for ‘substr’
share|improve this question
Are you going to tell us what error you get, or are we supposed to guess? – Anon. Dec 1 '10 at 22:55
Read your compiler errors. They will help you answer your question. – nmichaels Dec 1 '10 at 22:55
Sorry, but I figured with such a small amount of code, and such a simple issue, I wouldn't need to write my error messages. My mistake. – moteutsch Dec 1 '10 at 23:05
Always call gcc with the options -Wall -Wextra -Os and learn to understand the warning messages you get from these options. This will make you a careful programmer. – Roland Illig Dec 1 '10 at 23:56

5 Answers 5

up vote 5 down vote accepted

Here are the errors I see:

Use of uninitialized pointer

In substr you declare char *temp; and then use it without initializing it to anything. This is not a compile-time error, but this program will almost certainly crash when you run it, since temp will effectively point to a random memory address. This is a case of undefined behavior, and C is chock full of it. Undefined behavior will come out of nowhere and eat your pets if you aren't careful.

Consider malloc()ing some memory, or having your function receive a pointer to a buffer where it can write the portion of the string.

Use of function not yet declared

In C you must declare functions before they are used, or at least declare their prototype. Above main()'s declaration, add this line:

char * substr(char *string, int start, int length);

No use of const where it makes sense

When assigning a string literal to a char*, that variable should be declared const. So change

char *string = "abcdefghi";


const char *string = "abcdefghi";

You will have to change your function prototype to

char * substr(const char *string, int start, int length)

which is what it should have been in the first place.

Added 2010-12-02:

substr() does not add terminating null character

The substr() function, while algorithmically correct in every other sense, does not add a terminating null character to the new string. This will cause printf() and every other string-using function (like strlen(), strcpy(), etc.) to run off the end of the string into unallocated heap memory, or stack memory (depending on how you resolve the "uninitialized pointer" issue).

To fix this, add this line immediately after the for loop, and before the return statement:

temp[i] = '\0';

Note that this should not be added in the for loop, as that would have the effect of creating a string with zero length.

share|improve this answer
"When assigning a string literal to a char*, that variable should be declared const." Why? – moteutsch Dec 1 '10 at 23:05
+1 for explaining things for a newbie.. – Mohit Jain Dec 1 '10 at 23:38
@moteutsch: Compile and run this program to see why: #include <stdio.h> int main() { char *a = "hello"; char *b = "hello"; a[0] = 'f'; printf("%s\n", b); return 0; } If you get any output you will be lucky -- it will probably just segfault on you, because on many OSes the memory page used to store string literals is not writable. Declaring the pointer const will allow the compiler to prevent you from manipulating the data it points to. If the program does run, the output will probably be "fello", because most compilers will unify identical string literals into one string resource. – cdhowie Dec 2 '10 at 0:06

The most obvious error is that you need to include a prototype in your code...

char * substr(char *string, int start, int length);


Otherwise your program will not be aware that substr has been defined (as a function) below the main code.

share|improve this answer
but see cdhowie's post for a more comprehensive list :~) – William Dec 1 '10 at 23:06

First, the return type of main is int. Second, you have to declare functions before they're used. Either reorder main and substr, or put a prototype for substr in before your main definition. Third, temp is not initialized. You either need to malloc() space for it, or allocate a static buffer (not on the stack).

share|improve this answer
main is allowed to return void in some C dialects (if not most). – cdhowie Dec 1 '10 at 23:02
@cdhowie: See C99 The standard requires main to have a return type of int. Compilers that let you fudge this are noncompliant (if ubiquitous). – nmichaels Dec 1 '10 at 23:09
Or perhaps they implement C89? – cdhowie Dec 2 '10 at 0:04
@cdhowie: C89 – nmichaels Dec 2 '10 at 0:12

Compiler issues: No prototype for substr. Your compiler will probably let this go if you aren't compiling with strict ansi/iso standards.

Some runtime issues: You didn't allocate any space for *temp. When you declare a local variable without initializing it, it holds a garbage value. Since temp is a pointer to a character, temp's content is a pointer to some address which most probably doesn't belong to you.

share|improve this answer

On the last iteration of that for loop, i will index into the last position of the string. But you're adding the value of start (1 in this case) to i and then indexing into the string - meaning you're likely getting an index out-of-bounds error on that last loop iteration.

The fix (assuming I've correctly diagnosed the problem): initialize i to start instead of adding start to i.

share|improve this answer
Take another look at the string he's passing, and the values of start and length. – Anon. Dec 1 '10 at 22:58
@Anon. Whoops, you're right. That said, his substr implementation is going to suffer from the problem I'm describing. Just not in this case. – Dan J Dec 1 '10 at 23:00
That depends on the meaning ascribed to length. If it takes its usual meaning of "how many characters to extract from the string", then no, it won't be an issue. – Anon. Dec 1 '10 at 23:02

Your Answer


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.