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:

I am little confused with logical AND operator. I have these 2 lines of code. Here num and j are both int. I have a situation where both the conditions are satisfied, but I don't know why it's not printing the value of j. Can anybody point out the mistakes? Thanks in advance.

if(k==1 && num%j==0)
share|improve this question
Well, could you perhaps tell us that situation? :) – fresskoma Aug 16 '10 at 18:45
A single line of code does not help solving the issue. You should describe the problem in a better way. – dierre Aug 16 '10 at 18:46
To debug this problem, print the values of k, j, num, and possibly even num%j BEFORE the condition statement to see what they REALLY are. Then do the evaluation by hand with pencil and paper if you're still stuck. – FrustratedWithFormsDesigner Aug 16 '10 at 18:47
@user417552: Since this has been resolved, either accept an answer or delete the question. :) – Justin Ardini Aug 16 '10 at 18:54
@user417552: Also, our curiosity is piqued, and we would like to know what the mistake was - values not what you expected, or output being swallowed somehow. – David Thornley Aug 16 '10 at 19:01

6 Answers 6

up vote 6 down vote accepted

In plain English, the expression k == 1 && num % j == 0 is true if and only if k equals 1 and the remainder from dividing num by j is 0. Not much more I can say.

share|improve this answer

There's two possibilities here. Either you never get to the printf, or the output never gets to you.

For the first case, are you sure that k == 1 and num % j == 0? Giving us the actual numeric values values in your test might help. Note that if k is a floating-point number that's the result of a computation it might be very slightly off from 1.0, and the condition would return false.

For the second case, how are you testing this? That should print out the value of j, but it doesn't flush the output, so if the program terminates abnormally or the console goes away at the end of the program or something you may not see it. Try printf("%d\n", j); or even fflush(stdout); to make sure the output is visible on your console or terminal.

share|improve this answer

If conditions are true, there is no problem in your code.

Check the output here.

share|improve this answer

you might also want to add an else statement. I cant count how many times this has happened to me. it is a good practice at least when in the initial stages of you coding. do this:

this will help you catch the problem

if(k==1 && num%j==0)
else {
   printf("%d \n",k);
   printf("%d \n",num);
   printf("%d \n",j);
   printf("%d \n",(num%j));
share|improve this answer

Your code runs fine, take a look at this testcase:

So the problem is not with those two lines. Try printing the three values involved right before you get into those lines, you may be surprised by what you see (or don't see).

share|improve this answer

You should also get in the habit of using parentheses liberally, imo:

if(k == 1 && (num % j == 0))

at the least.

share|improve this answer
Blech! To me superfluous parentheses detract from readability and suggest that the author was unsure how the language he's using works. – P Daddy Aug 16 '10 at 21:11
While this is subjective, I think that parentheses such as this can only add to readability when there might be ambiguity in order of operations. – Jonathan Aug 16 '10 at 21:57
Yes, of course it's subjective, but the fact that the above operators could be considered at all ambiguous speaks to me of gross unfamiliarity. It's understandable to forget the precedence rules for less-used (or, at least, less often mixed) operators like <<, &, ^, ?:, and friends, but there's little excuse for not memorizing simple ones like your example. They're pretty intuitive. The boolean operators (&&, ||) have lower precedence (&& is the higher of the two) than comparisons (==, <, etc.), which are lower than arithmetic operators, which follow normal mathematic rules. – P Daddy Aug 16 '10 at 22:10
But as far as aiding readability, quick, what happens here? if(((a + (2 * b)) < (foo() - bar())) || (((foo() < bar()) && (a < b)))) ifTrue(); else ifFalse(); Parenthesis soup! Yuck. The eye simple cannot follow this. Compare to if(a + 2 * b < foo() - bar() || foo() < bar() && a < b) ifTrue(); else ifFalse();. Knowing the simple precedence rules I outlined earlier, this is easy to follow (although, perhaps not so much in this comment box). – P Daddy Aug 16 '10 at 22:26

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.