12

I need to round a float value and convert it into an NSInteger value.

For example:

float f = 90.909088;

I want the result to be 91. How to get rid of this?

4 Answers 4

22

A quick round and cast will work for negative values as well as positives:

NSInteger intValue = (NSInteger) roundf(f);
1
  • This answer should be the top rated one
    – Mutawe
    Commented Sep 15, 2014 at 12:10
19

One of the following C math functions might work for you:

  • double ceil(double)
  • double floor(double)
  • double nearbyint(double)
  • double rint(double)
  • double round(double)
  • long int lrint(double)
  • long int lround(double)
  • long long int llrint(double)
  • long long int llround(double)
  • double trunc(double)

To get more documentation, open a terminal session and type (for example)

man lround

I pick lround as an example because I think that is the one you want.

1
  • 1
    Many math functions have float versions as well. Just add an f. For example: floorf().
    – gerry3
    Commented Feb 9, 2011 at 1:24
4

Do

f = floor(f + 0.5)

before the integer conversion.

1
  • when I done with this if I pass the value as 315 it was converted as 32.I need to remain it same as 315 if it doesn't have any decimal points.
    – monish
    Commented May 19, 2010 at 12:52
1

Try:

float f = 90.909088;
NSNumber *myNumber = [NSNumber numberWithDouble:(f+0.5)];
NSInteger myInt = [myNumber intValue];
1
  • when I done with this if I pass the value as 315 it was converted as 32.I need to remain it same as 315 if it doesn't have any decimal points
    – monish
    Commented May 19, 2010 at 13:06

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.