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#include < stdio.h > 
#include < process.h > 
rec();
main() {
    int a, fact;
    char question, n, y;

    do {
        printf("\nEnter any number ");
        scanf("%d", & a);
        fact = rec(a);
        printf("Factorial value = %d\n", fact);
        printf("do you want to exit.....(y/n):");
        scanf("%s", & question);
    }
    while (question == n);
    exit(0);
}
rec(int x) {
    int f;
    if (x == 1) return 1;
    else f = x * rec(x - 1);
    return f;
}

In this program I want to get factorial of the entered number, which I get. But I also want the user to say whether to exit or get the factorial of another number, which I can't do. It asks user but when I enter "n" it exits.

Where is the error?

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You need to use strcmp to compare string values. –  RageD Feb 27 '13 at 1:15
    
Note that the compiler is not obliged to accept #include < stdio.h >; it should be written #include <stdio.h> without spaces inside the angle brackets. Also, you should learn to write C99-compliant code. That means explicit return types are needed and prototype declarations: extern int rec(int x); and int main(void). You can use return 0; at the end of main() to remind you it returns an int. –  Jonathan Leffler Feb 27 '13 at 1:16
    
thanks . you are great :) –  Rahul Subedi Feb 27 '13 at 1:45
    
@Kay Why not? It's a great way to input words... –  undefined behaviour Feb 27 '13 at 1:45
1  
@modifiablelvalue: the unstated reason may be 'avoid stack overflow'. Using "%19s" to read into a char answer[20]; variable avoids overflowing the buffer (but note the 'different by one' lengths, and that scanf() won't accept the length as an input parameter, unlike printf()). Otherwise, there is no reason not to use it other than the general issue of 'usability of the UI' when you do. There's no reason not to use fgets() and sscanf() when you want to split stuff up into words. –  Jonathan Leffler Feb 27 '13 at 1:51

2 Answers 2

up vote 4 down vote accepted

You want

while (question == 'n');

Or

char question, n = 'n', y = 'y';

Though I find the 2nd version a little redundant.

Either way you need to change

scanf("%s"

to

scanf("%c"

To correctly read in a single char and not a string. Thanks RageD

share|improve this answer
    
He may also want to change %s to %c in his scanf statement. +1 –  RageD Feb 27 '13 at 1:15
    
Note that reading a single character with %c is normally going to get the newline after the number, not the response on the next line (indeed, it will appear to continue without waiting for any more input, and since '\n' != 'n', the loop will exit every time). You can finesse that with scanf(" %c", &question); which skips white space before reading a character, including a newline. –  Jonathan Leffler Feb 27 '13 at 1:31

One problem is the combination of:

char question, n, y;

scanf("%s", &question);

You are using %s to read a null-terminated string into a single character. Even if you hit 'y' and return, you'll be overwriting beyond the end of the variable. This is not good. (The good news is that "%s" skips over white space, including the newline after the number).

You either need to use "%c" in the format:

char question;
scanf(" %c", &question);  // NB: The leading space is important!

or you need to use a string format and a string variable (and no &):

char question[10];
scanf("%9s", question);

If you use an array, you need to consider whether to use strcmp(), or whether to compare the first character from the input:

while (strcmp(question, "n") == 0);
while (question[0] == 'n');

You probably got told by the compiler that you'd not declared variable n so you added it. You probably need the loop to end with while (question == 'n');and then get rid of the (now) unused variablen(and the currently unused variabley`).

Note that if you use omit the space in the " %c" format string:

scanf("%c", &question);

then it will normally get the newline after the number, which won't be 'n', so your loop will exit every time, apparently without waiting for you to enter anything. You can finesse that with scanf(" %c", &question); which skips white space before reading a character.

You should test that scanf() received the input you expected each time you use it. The correct test for single item inputs is:

if (scanf(" %c", &question) != 1)
    ...input failed...

If you need to distinguish between EOF and conversion failure, you can capture the return from scanf():

int rc;
if ((rc = scanf(" %c", &question)) != 1)
    ...rc == EOF on EOF; rc == 0 on 'conversion failure'...
    ...a single character input can't easily fail...
    ...but if someone types 'a' instead of '9' when you're looking for a number...

Getting I/O right using scanf() is distressingly hard. Many experienced programmers simply don't use it; it is too hard to get right. Instead, we use fgets() or POSIX getline() to read a line of data, and then use sscanf() to parse it. There are many advantages to this, but a primary one is that the newline has been eaten so you don't run into problems with the variable question not containing the answer you expect.

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wow. u guys are so great. i want to learn more . thanks for ur help sir. –  Rahul Subedi Feb 27 '13 at 2:39

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