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The program is ignoring Stop when amt is 0 until after 10 numbers have been entered. The program also doesn't stop after 10 numbers have been entered. Where is my error?

main() {
int amt;
int tot = 0; /* running total */
int i = 0;   /* counts number of times in loop */
while (amt!=0 || i < 10)
    {
     printf("Enter a number (enter 0 to stop): ");
     scanf("%d", &amt);
     tot = tot + amt;
     i++;
    }
printf("The sum of those %d number is %d.\n", i, tot);

}
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1  
Please just compile your code with all warnings switched on before you post here. Any decent compiler would have told you something like "use of unitialized value amt.. " and that the prototype of main is different. –  Jens Gustedt Oct 8 '11 at 20:11
    
@JensGustedt - you should have added that as an answer. It is amazing that no one even thinks that a compiler warning might actually be telling you that something is wrong with your code. –  D.Shawley Oct 8 '11 at 20:15
    
@D.Shawley, no, no, I don't want SO to be overloaded with trivialities. I would merely close the question, this isn't of any use for others. –  Jens Gustedt Oct 8 '11 at 20:19
    
I'm using an SSH connection to my school and using the compiler in the server; when I compiled the program no errors came up. How can i use a better compiler while also using vim as an editor in windows 7? –  jrasa Oct 8 '11 at 21:14
    
@jrasa, your compiler probably has a command line switch or similar to increase its warning level. For gcc this is -Wall, for example. Your teachers should have told you. And I think on windows there are also several modern compilers available. –  Jens Gustedt Oct 10 '11 at 18:17

3 Answers 3

up vote 3 down vote accepted

Your test is happening before amt is assigned. Thus its results are undefined. This test should be moved to the end of the iteration, i.e. a do/while. Whilst you could assign amt to some non-zero value this feels slightly untidy to me.

And surely you mean to use logical AND rather than logical OR? You only want to continue iterating if both amt is non-zero AND i<10.

Of course, if you did move the test to the end of the iteration then you would have to account for the fact that i had been incremented inside the loop.

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In order to stop after 10 numbers or amt=0 (whichever first is met) you'll have to change the loop condition to while (amt!=0 && i < 10)

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Thank you. This was the correct answer. The program wasn't giving any undefined behaviour -- it just wasn't following the conditions properly. –  jrasa Oct 8 '11 at 19:56
2  
@jrasa The program does have undefined behaviour. It's as plain as can be. This answer is most certainly not the full story. If amt happens to be zero when you hit the test the first time, you will no longer enter the loop once you have change to using &&. In your version of the program the undefined behaviour is benign because the test always evaluates to true the first time round since i<10 holds. –  David Heffernan Oct 8 '11 at 19:59
1  
@jrasa I totally agree with the comment above - the condition is not the only problem, despite being significant for your input data. If you only change the condition, other mentioned factors may cause unexpected results. –  Lyth Oct 8 '11 at 20:08
int amt;

Since you do not initialize it. It has some random value and that causes the Undefined Behavior in your program.
You should always initialize local variables with values.

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