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I've got an amount of seconds that passed from a certain event. It's stored in a NSTimeInterval data type.

I want to convert it into minutes and seconds.

For example I have: "326.4" seconds and I want to convert it into the following string: "5:26".

What is the best way to achieve this goal?

Thanks.

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8 Answers 8

up vote 101 down vote accepted

pseudo-code:

minutes = floor(326.4/60)
seconds = round(326.4 - minutes * 60)
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60  
I think it's also worth mentioning that an NSTimerInterval is just a typedef for double. –  Armentage Apr 10 '10 at 14:02
1  
See Albaregar's answer - it is a better way of doing this (more code but more flexible, maintainable) –  benvolioT Sep 12 '10 at 16:49
1  
That code is very expensive, however. For a quick conversion of a duration in seconds, this answer is better. –  SpacyRicochet Jul 4 '12 at 14:28
1  
Please note that this answer will give you stuff like 1:60. Look at StratFan's answer which is closer to the truth. But remove floor and round and you should be home free. –  InvulgoSoft Jul 17 '12 at 10:31
    
Nice answe...+1 –  Dilip Dec 2 '13 at 14:53

Brief Description

  1. The answer from Brian Ramsay is more convenient if you only want to convert to minutes.
  2. If you want Cocoa API do it for you and convert your NSTimeInterval not only to minutes but also to days, months, week, etc,... I think this is a more generic approach
  3. Use NSCalendar method:

    • (NSDateComponents *)components:(NSUInteger)unitFlags fromDate:(NSDate *)startingDate toDate:(NSDate *)resultDate options:(NSUInteger)opts

    • "Returns, as an NSDateComponents object using specified components, the difference between two supplied dates". From the API documentation.

  4. Create 2 NSDate whose difference is the NSTimeInterval you want to convert. (If your NSTimeInterval comes from comparing 2 NSDate you don't need to do this step, and you don't even need the NSTimeInterval).

  5. Get your quotes from NSDateComponents

Sample Code

// The time interval 
NSTimeInterval theTimeInterval = 326.4;

// Get the system calendar
NSCalendar *sysCalendar = [NSCalendar currentCalendar];

// Create the NSDates
NSDate *date1 = [[NSDate alloc] init];
NSDate *date2 = [[NSDate alloc] initWithTimeInterval:theTimeInterval sinceDate:date1]; 

// Get conversion to months, days, hours, minutes
unsigned int unitFlags = NSHourCalendarUnit | NSMinuteCalendarUnit | NSDayCalendarUnit | NSMonthCalendarUnit;

NSDateComponents *conversionInfo = [sysCalendar components:unitFlags fromDate:date1  toDate:date2  options:0];

NSLog(@"Conversion: %dmin %dhours %ddays %dmoths",[conversionInfo minute], [conversionInfo hour], [conversionInfo day], [conversionInfo month]);

[date1 release];
[date2 release];

Known issues

  • Too much for just a conversion, you are right, but that's how the API works.
  • My suggestion: if you get used to manage your time data using NSDate and NSCalendar, the API will do the hard work for you.
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4  
Definitively is a lot of workaround just to do a little conversion, but it feels confortable, modular and really flexible, vote up for this sample code @Albaregar. –  Rigo Vides Jun 19 '10 at 17:27
2  
+1 For a good thorough answer, however this code is quite expensive. –  Nick Weaver May 16 '12 at 7:52
1  
+1 it really help a lot to me :) –  Rajneesh071 Sep 5 '12 at 10:04
    
+1 ... one caveat. Be careful using this style of code if you need to round up fractional seconds. The default behaviour of -[NSCalendar components:fromDate:toDate:options:] can mess up in the scenario where the toDate component is 31.5 seconds (for example) ahead of the fromDate - the components returned will have 31 in the seconds field. There's an optional parameter of NSWrapCalendarComponents, but from the (limited) experimentation I've done with this, it wraps to the nearest second rather than rounding up or down. Your mileage may vary. –  David Doyle Apr 9 '13 at 9:55
2  
People who find this (like Nick Weaver) are going to think that code looks like it would be slow. It isn't. I'm doing a timer app and I just tested Albaregar's version against something in the style of Brian Ramsey (and others)... and surprisingly, even polling 100 times a second (which is tremendous overkill) on a relatively slow device (4S) there was less than a 1% difference in processor utilization. –  mmc Jan 8 at 13:50

Forgive me for being a Stack virgin... I'm not sure how to reply to Brian Ramsay's answer...

Using round will not work for second values between 59.5 and 59.99999. The second value will be 60 during this period. Use trunc instead...

 double progress;

 int minutes = floor(progress/60);
 int seconds = trunc(progress - minutes * 60);
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1  
Actually just remove floor and trunk/round altogether. :) –  InvulgoSoft Jul 17 '12 at 10:28

All of these look more complicated than they need to be! Here's a short and sweet way to convert a time interval into hours, minutes and seconds:

NSTimeInterval timeInterval = 326.4;
long seconds = lroundf(timeInterval); // Modulo (%) operator below needs int or long

int hour = seconds / 3600
int mins = (seconds % 3600) / 60;
int secs = seconds % 60;

Note when you put a float into an int, you get floor() automatically, but you can add it to the first two if if makes you feel better :-)

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Awesome! I tried Ramsay’s code though it seem to be out by a second. –  Gerard Grundy Dec 2 '13 at 6:26
    
You are missing a semicolon in your code but it wouldn't let me edit it to fix it. –  Jeef Mar 19 at 17:07
    
I think your approach is best - simple, gets the job done, and "light" on the ticks. Perfect. –  BonanzaDriver May 2 at 17:43

Brian Ramsay’s code, de-pseudofied:

- (NSString*)formattedStringForDuration:(NSTimeInterval)duration
{
    NSInteger minutes = floor(duration/60);
    NSInteger seconds = round(duration - minutes * 60);
    return [NSString stringWithFormat:@"%d:%02d", minutes, seconds];
}
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Since it's essentially a double...

Divide by 60.0 and extract the integral part and the fractional part.

The integral part will be the whole number of minutes.

Multiply the fractional part by 60.0 again.

The result will be the remaining seconds.

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    NSDate *timeLater = [NSDate dateWithTimeIntervalSinceNow:60*90];

    NSTimeInterval duration = [timeLater  timeIntervalSinceNow];

    NSInteger hours = floor(duration/(60*60));
    NSInteger minutes = floor((duration/60) - hours * 60);
    NSInteger seconds = floor(duration - (minutes * 60) - (hours * 60 * 60));

    NSLog(@"timeLater: %@", [dateFormatter stringFromDate:timeLater]);

    NSLog(@"time left: %d hours %d minutes  %d seconds", hours,minutes,seconds);

Outputs:

timeLater: 22:27
timeLeft: 1 hours 29 minutes  59 seconds
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Here's a Swift version:

func durationsBySecond(seconds s: Int) -> (days:Int,hours:Int,minutes:Int,seconds:Int) {
    return (s / (24 * 3600),(s % (24 * 3600)) / 3600, s % 3600 / 60, s % 60)
}

Can be used like this:

let (d,h,m,s) = durationsBySecond(seconds: duration)
println("time left: \(d) days \(h) hours \(m) minutes \(s) seconds")
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