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How do I convert NSTimeInterval into an Integer value?

My TimeInterval holds the value 83.01837. I need to convert it into 83. I have googled but couldn't find any help.

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NSTimeInterval is simply a double. You can cast it. See: stackoverflow.com/questions/4058198/… –  ctrahey Jun 20 '12 at 14:12

3 Answers 3

up vote 18 down vote accepted

Direct assignment:

NSTimeInterval interval = 1002343.5432542;
NSInteger time = interval;
//time is now equal to 1002343

NSTimeInterval is a double, so if you assign it directly to a NSInteger (or int, if you wish) it'll work. This will cut off the time to the nearest second.

If you wish to round to the nearest second (rather than have it cut off) you can use round before you make the assignment:

NSTimeInterval interval = 1002343.5432542;
NSInteger time = round(interval);
//time is now equal to 1002344
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Possibly want a round() call in there. –  Richard J. Ross III Jun 20 '12 at 14:16
    
hmmm...wouldn't it be better to just add .5 to interval? I know I'm really bickering here but the effect will be the same without using up a function call. –  Aaron Hayman Jun 20 '12 at 14:18
2  
Actually, round is better, seeing as it works properly with negative numbers as expected, whilst adding .5 or to the number doesn't... –  Richard J. Ross III Jun 20 '12 at 14:19
    
Ahh true enough...pesky negatives. :) –  Aaron Hayman Jun 20 '12 at 14:21

According to the documentation, NSTimeInterval is just a double:

typedef double NSTimeInterval;

You can cast this to an int:

seconds = (int) myTimeInterval;

Watch out for overflows, though!

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I suspect that NSTimeInterval values from NSDate would overflow an NSInteger. You'd likely want a long long. (64 bit integer.) Those can store honking-big integer values (-2^63 to 2^63 -1)

long long integerSeconds = round([NSDate timeIntervalSinceReferenceDate]);
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