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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?

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4 Answers 4

up vote 13 down vote accepted

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.

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1  
Many math functions have float versions as well. Just add an f. For example: floorf(). –  gerry3 Feb 9 '11 at 1:24

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

NSInteger intValue = (NSInteger) roundf(f);
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This answer should be the top rated one –  Mutawe Sep 15 '14 at 12:10

Do

f = floor(f + 0.5)

before the integer conversion.

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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 May 19 '10 at 12:52

Try:

float f = 90.909088;
NSNumber *myNumber = [NSNumber numberWithDouble:(f+0.5)];
NSInteger myInt = [myNumber intValue];
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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 May 19 '10 at 13:06

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