155

I am trying to get a program to let a user enter a word or character, store it, and then print it until the user types it again, exiting the program. My code looks like this:

#include <stdio.h>

int main()
{
    char input[40];
    char check[40];
    int i=0;
    printf("Hello!\nPlease enter a word or character:\n");
    gets(input);
    printf("I will now repeat this until you type it back to me.\n");

    while (check != input)
    {
        printf("%s\n", input);
        gets(check); 
    }

    printf("Good bye!");


    return 0;
}

The problem is that I keep getting the printing of the input string, even when the input by the user (check) matches the original (input). Am I comparing the two incorrectly?

  • 8
    gets( ) was removed from the standard. Use fgets( ) instead. – stackptr Jan 29 '15 at 2:31
  • Note that this answer to Why does strcmp() return zero when its inputs are equal explains how to compare strings for equality, inequality, less than, greater than, less than or equal, and greater than or equal. Not all string comparisons are for equality. Case sensitive comparisons are different again; other special comparisons (dictionary order, for example) require more specialized comparators, and there are regexes for still more complex comparisons. – Jonathan Leffler Nov 22 '16 at 22:44
  • Note too that there is an essentially duplicate question How do I check if a value matches a string that was asked years before this. – Jonathan Leffler Feb 10 '17 at 5:24

10 Answers 10

237

You can't (usefully) compare strings using != or ==, you need to use strcmp:

while (strcmp(check,input) != 0)

The reason for this is because != and == will only compare the base addresses of those strings. Not the contents of the strings themselves.

  • 9
    the same in java,which may just compare with the address. – Telerik Sep 6 '14 at 16:29
  • 22
    Writing while (strcmp(check, input)) is sufficient and is considered good practice. – The Peaceful Coder Jun 28 '15 at 15:53
  • know more...codificare.in/codes/c/… – chanu panwar Jun 25 '16 at 9:55
  • 5
    It is safer to use strncmp! Don't want a buffer overflow! – Floam Nov 10 '17 at 18:36
  • @Floam If you don't actually have strings, but zero-padded sequences of non-zero characters of known length, sure, that would be the right incantation. But that's something completely different! – Deduplicator Feb 1 at 21:18
30

Ok a few things: gets is unsafe and should be replaced with fgets(input, sizeof(input), stdin) so that you don't get a buffer overflow.

Next, to compare strings, you must use strcmp, where a return value of 0 indicates that the two strings match. Using the equality operators (ie. !=) compares the address of the two strings, as opposed to the individual chars inside them.

And also note that, while in this example it won't cause a problem, fgets stores the newline character, '\n' in the buffers also; gets() does not. If you compared the user input from fgets() to a string literal such as "abc" it would never match (unless the buffer was too small so that the '\n' wouldn't fit in it).

EDIT: and beaten by the super fast Mysticial once again.

  • I understand what you are saying, but this is just a learning example. I will not be using it for any important reason. – nmagerko Nov 4 '11 at 2:30
  • 7
    @nmagerko yeah I understand. It's always important to realise that though. – AusCBloke Nov 4 '11 at 2:32
  • 2
    The first argument of fgets should be a char*. But stdin is a FILE* – Spikatrix Feb 11 '15 at 11:08
7

You can't compare arrays directly like this

array1==array2

You should compare them char-by-char; for this you can use a function and return a boolean (True:1, False:0) value. Then you can use it in the test condition of the while loop.

Try this:

#include <stdio.h>
int checker(char input[],char check[]);
int main()
{
    char input[40];
    char check[40];
    int i=0;
    printf("Hello!\nPlease enter a word or character:\n");
    scanf("%s",input);
    printf("I will now repeat this until you type it back to me.\n");
    scanf("%s",check);

    while (!checker(input,check))
    {
        printf("%s\n", input);
        scanf("%s",check);
    }

    printf("Good bye!");

    return 0;
}

int checker(char input[],char check[])
{
    int i,result=1;
    for(i=0; input[i]!='\0' || check[i]!='\0'; i++) {
        if(input[i] != check[i]) {
            result=0;
            break;
        }
    }
    return result;
}
  • 1
    Could you please add more details about your solution? – abarisone Apr 6 '15 at 9:48
  • i edited my post and added some explanations – mugetsu Apr 6 '15 at 9:59
  • yes this is replacement for strcmp function and solition without using string.h header @Jongware – mugetsu Apr 6 '15 at 10:02
  • 2
    This does not work. When checker finds '\0' in one of the strings, it does not check the another string for '\0'. The function returns 1 ("equal") even if one string is only prefix of the other one (for example, "foo" and "foobar"). – lukasrozs Oct 6 '17 at 14:16
  • 1
    I would use || instead of &&. – lukasrozs Oct 6 '17 at 14:28
6

Use strcmp.

This is in string.h library, and is very popular. strcmp return 0 if the strings are equal. See this for an better explanation of what strcmp returns.

Basically, you have to do:

while (strcmp(check,input) != 0)

or

while (!strcmp(check,input))

or

while (strcmp(check,input))

You can check this, a tutorial on strcmp.

1

Whenever you are trying to compare the strings, compare them with respect to each character. For this you can use built in string function called strcmp(input1,input2); and you should use the header file called #include<string.h>

Try this code:

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

int main() 
{ 
    char s[]="STACKOVERFLOW";
    char s1[200];
    printf("Enter the string to be checked\n");//enter the input string
    scanf("%s",s1);
    if(strcmp(s,s1)==0)//compare both the strings  
    {
        printf("Both the Strings match\n"); 
    } 
    else
    {
        printf("Entered String does not match\n");  
    } 
    system("pause");  
} 
  • Damn, you really need some spaces – jv110 Aug 22 '17 at 20:17
0

Unfortunately you can't use strcmp from <cstring> because it is a C++ header and you specifically said it is for a C application. I had the same problem, so I had to write my own function that implements strcmp:

int strcmp(char input[], char check[])
{
    for (int i = 0;; i++)
    {
        if (input[i] == '\0' && check[i] == '\0')
        {
            break;
        }
        else if (input[i] == '\0' && check[i] != '\0')
        {
            return 1;
        }
        else if (input[i] != '\0' && check[i] == '\0')
        {
            return -1;
        }
        else if (input[i] > check[i])
        {
            return 1;
        }
        else if (input[i] < check[i])
        {
            return -1;
        }
        else
        {
            // characters are the same - continue and check next
        }
    }
    return 0;
}

I hope this serves you well.

  • 4
    It's <string.h> in C. No need to reimplement it. – mk12 Oct 31 '15 at 16:52
  • Oh, thanks. I guess I will just use that instead. Anyway, here is an example of how to compare arrays... :) – Steztric Nov 4 '15 at 10:18
  • 1
    It'd be good to edit your answer to reflect the info in comments; and also call your function something different (reusing names from standard library causes undefined behaviour) – M.M Nov 11 '15 at 0:38
  • Code differs from the standard library strcmp() in at least 2 ways: if (input[i] > check[i]) { return 1; incorrectly compares as char. strcmp() compares as unsigned char. (C11 7.23.4 1) 2) Use pointers to const char *, not char *. – chux Jan 10 at 15:07
0
    #include<stdio.h>
    #include<string.h>
    int main()
    {
        char s1[50],s2[50];
        printf("Enter the character of strings: ");
        gets(s1);
        printf("\nEnter different character of string to repeat: \n");
        while(strcmp(s1,s2))
        {
            printf("%s\n",s1);
            gets(s2);
        }
        return 0;
    }

This is very simple solution in which you will get your output as you want.

  • 1
    gets(); not part of standard C since C11. – chux Jan 10 at 15:11
  • strcmp(s1,s2) is UB as s2 contents are not specified at first. – chux Jan 10 at 15:12
0

I like the answer selected as best one except I do not like is use of strcmp() instead you should you strncmp(), in conjunction with macros. So here is your code with little improvements.

#include <stdio.h>

#define MAXLEN 40
int main()
{
    char input[MAXLEN];
    char check[MAXLEN];
    int i=0;
    printf("Hello!\nPlease enter a word or character:\n");
    gets(input);
    printf("I will now repeat this until you type it back to me.\n");

    while (strcmp(check, input))
    {
        printf("%s\n", input);
        gets(check); 
    }

    printf("Good bye!");


    return 0;
}

And here is why use strncmp():

#include <stdio.h>

#define MAXLEN 40
int main()
{
    char input[MAXLEN];
    char check[MAXLEN];
    int i=0;
    printf("Hello!\nPlease enter a word or character:\n");
    gets(input);
    int len = strlen(input);
    for (; i < 10000; ++i)
        input [len - 2 + i] = 'A';

    printf("I will now repeat this until you type it back to me.\n");

    while (strncmp(check, input, MAXLEN))
    {
        printf("%s\n", input);
        gets(check); 
    }

    printf("Good bye!");


    return 0;
}
0

How do I properly compare strings?

char input[40];
char check[40];
strcpy(input, "Hello"); // input assigned somehow
strcpy(check, "Hello"); // check assigned somehow

// insufficient
while (check != input)

// good
while (strcmp(check, input) != 0)
// or 
while (strcmp(check, input))

Let us dig deeper to see why check != input is not sufficient.

In C, string is a standard library specification.

A string is a contiguous sequence of characters terminated by and including the first null character.
C11 §7.1.1 1

input above is not a string. input is array 40 of char.

The contents of input can become a string.

In most cases, when an array is used in an expression, it is converted to the address of its 1st element.

The below converts check and input to their respective addresses of the first element, then those addresses are compared.

check != input   // Compare addresses, not the contents of what addresses reference

To compare strings, we need to use those addresses and then look at the data they point to.
strcmp() does the job. §7.23.4.2

int strcmp(const char *s1, const char *s2);

The strcmp function compares the string pointed to by s1 to the string pointed to by s2.

The strcmp function returns an integer greater than, equal to, or less than zero, accordingly as the string pointed to by s1 is greater than, equal to, or less than the string pointed to by s2.

Not only can code find if the strings are of the same data, but which one is greater/less when they differ.

The below is true when the string differ.

strcmp(check, input) != 0

For insight, see Creating my own strcmp() function

0

Welcome to the concept of the pointer. Generations of beginning programmers have found the concept elusive, but if you wish to grow into a competent programmer, you must eventually master this concept—and, moreover, you are already asking the right question. That's good.

Is it clear to you what an address is? See this diagram:

----------     ----------
| 0x4000 |     | 0x4004 |
|    1   |     |    7   |
----------     ----------

In the diagram, the integer 1 is stored in memory at address 0x4000. Why at an address? Because memory is large and can store many integers, as a city is large and can house many families. Each integer is stored at a memory location, as each family resides in a house. Each memory location is identified by an address, as each house is identified by an address.

The two boxes in the diagram represent two, distinct memory locations. You can think of them as they were houses. The integer 1 resides in the memory location at address 0x4000 (think, "4000 Elm St."). The integer 7 resides in the memory location at address 0x4004 (think, "4004 Elm St.").

You thought that your program was comparing the 1 to the 7, but it wasn't. It was comparing the 0x4000 to the 0x4004. So what happens when you have this situation?

----------     ----------
| 0x4000 |     | 0x4004 |
|    1   |     |    1   |
----------     ----------

The two integers are the same but the addresses differ. Your program compares the addresses.

protected by Mysticial Jun 2 '16 at 19:03

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