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What is the most efficient/recommended way of comparing two NSDates? I would like to be able to see if both dates are on the same day, irrespective of the time and have started writing some code that uses the timeIntervalSinceDate: method within the NSDate class and gets the integer of this value divided by the number of seconds in a day. This seems long winded and I feel like I am missing something obvious.

The code I am trying to fix is:

if (!([key compare:todaysDate] == NSOrderedDescending))
{
    todaysDateSection = [eventSectionsArray count] - 1;
}

where key and todaysDate are NSDate objects and todaysDate is creating using:

NSDate *todaysDate = [[NSDate alloc] init];

Regards

Dave

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beautiful question +1 –  abbood Mar 28 at 6:24

9 Answers 9

up vote 42 down vote accepted

You set the time in the date to 00:00:00 before doing the comparison:

unsigned int flags = NSYearCalendarUnit | NSMonthCalendarUnit | NSDayCalendarUnit;
NSCalendar* calendar = [NSCalendar currentCalendar];

NSDateComponents* components = [calendar components:flags fromDate:date];

NSDate* dateOnly = [calendar dateFromComponents:components];

// ... necessary cleanup

Then you can compare the date values. See the overview in reference documentation.

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Thanks for the quick response Gregory, this is really helpful. I guess my next question is, as this is part of a tight loop, do you think it is more efficient to use the timeIntervalSinceDate: method and some integer arithmetic, rather than creating more objects, doing the necessary computation and then cleaning up? Thanks again for your help, Dave –  Magic Bullet Dave Dec 6 '09 at 10:00
10  
My advice is: correct implementation is gold; then profile. If this particular loop is really a bottleneck, then optimize –  Gregory Pakosz Dec 6 '09 at 10:09
3  
Since you're only pulling out the Year, Month, and Day units, the Hour, Minutes, and Seconds are automatically set to 0. Hence, you don't have to explicitly do it yourself. –  Dave DeLong Dec 7 '09 at 2:23
    
@Dave > indeed, thank you I edited the answer –  Gregory Pakosz Dec 7 '09 at 7:42
1  
I tried to use this method didn't work. i am always having the time not equal to 00:00? –  Shady Sep 13 '12 at 8:33

I'm surprised that no other answers have this option for getting the "beginning of day" date for the objects:

[[NSCalendar currentCalendar] rangeOfUnit:NSDayCalendarUnit startDate:&date1 interval:NULL forDate:date1];
[[NSCalendar currentCalendar] rangeOfUnit:NSDayCalendarUnit startDate:&date2 interval:NULL forDate:date2];

Which sets date1 and date2 to the beginning of their respective days. If they are equal, they are on the same day.

Or this option:

NSUInteger day1 = [[NSCalendar currentCalendar] ordinalityOfUnit:NSDayCalendarUnit inUnit:NSEraCalendarUnit forDate:date1];
NSUInteger day2 = [[NSCalendar currentCalendar] ordinalityOfUnit:NSDayCalendarUnit inUnit:NSEraCalendarUnit forDate:date2];

Which sets day1 and day2 to somewhat arbitrary values that can be compared. If they are equal, they are on the same day.

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2  
+1 I've never noticed those methods before! Very cool. –  Dave DeLong Dec 7 '09 at 2:24

This is a shorthand of all the answers:

NSInteger interval = [[[NSCalendar currentCalendar] components: NSDayCalendarUnit
                                                                  fromDate: date1
                                                                    toDate: date2
                                                                   options: 0] day];
    if(interval<0){
       //date1<date2
    }else if (interval>0){
       //date2<date1
    }else{
       //date1=date2
    }
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This code doesn't work. If you add 23 hours to [NSDate date] it will show both dates to be on the same day, which is obviously wrong in most cases. –  Gottfried Mar 13 at 14:55
    
@ Gottfired This will ignore the time part as the OP requested. Not sure what you mean by adding 23 hours. You mean changing the dates? –  Bms270 Mar 15 at 18:02
    
@Bms270 He means changing the day. If you compare today @ 3PM to tomorrow @ 9AM, your code returns a delta of 0 days, even though the second date is clearly another day. –  Christian Schnorr Jul 17 at 19:45
    
@Jenox Have you tried this code? Your example should return: today>tomorrow no matter what time it is. It simply ignores the hours as if you were comparing 12am with 12am. OP says " irrespective of the time". –  Bms270 Jul 17 at 19:56

I use this little util method:

-(NSDate*)normalizedDateWithDate:(NSDate*)date
{
   NSDateComponents* components = [calendar components:(NSYearCalendarUnit | NSMonthCalendarUnit | NSDayCalendarUnit)
                                              fromDate: date];
   return [calendar_ dateFromComponents:components]; // NB calendar_ must be initialized
}

(You obviously need to have an ivar called calendar_ containing an NSCalendar.)

Using this, it is easy to check if a date is today like this:

[[self normalizeDate:aDate] isEqualToDate:[self normalizeDate:[NSDate date]]];

([NSDate date] returns the current date and time.)

This is of course very similar to what Gregory suggests. The drawback of this approach is that it tends to create lots of temporary NSDate objects. If you're going to process a lot of dates, I would recommend using some other method, such as comparing the components directly, or working with NSDateComponents objects instead of NSDates.

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incredibly helpful :) thank you very much –  pasql Sep 19 '12 at 14:26

I used the Duncan C approach, I have fixed some mistakes he made

-(NSInteger) daysBetweenDate:(NSDate *)firstDate andDate:(NSDate *)secondDate { 

    NSCalendar *currentCalendar = [NSCalendar currentCalendar];
    NSDateComponents *components = [currentCalendar components: NSDayCalendarUnit fromDate: firstDate toDate: secondDate options: 0];

    NSInteger days = [components day];

    return days;
}
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The answer is simpler than everybody makes it out to be. NSCalendar has a method

components:fromDate:toDate:options

That method lets you calculate the difference between two dates using whatever units you want.

So write a method like this:

-(NSInteger) daysBetweenDate: (NSDate *firstDate) andDate: (NSDate *secondDate)
{
  NSCalendar *currentCalendar = [NSCalendar currentCalendar];
  NSDateComponents components* = [currentCalendar components: NSDayCalendarUnit
    fromDate: firstDate 
    toDate: secondDate
    options: 0];

  NSInteger days = [components days];
  return days;
}

If the above method returns zero, the two dates are on the same day.

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The documentation regarding NSDate indicates that the compare: and isEqual: methods will both perform a basic comparison and order the results, albeit they still factor in time.

Probably the simplest way to manage the task would be to create a new isToday method to the effect of the following:

- (bool)isToday:(NSDate *)otherDate
{
    currentTime = [however current time is retrieved]; // Pardon the bit of pseudo-code

    if (currentTime < [otherDate timeIntervalSinceNow])
    {
        return YES;
    }
    else
    {
        return NO;
    }
}
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This is a particularly ugly cat to skin, but here's another way to do it. I don't say it's elegant, but it's probably as close as you can get with the date/time support in iOS.

bool isToday = [[NSDateFormatter localizedStringFromDate:date dateStyle:NSDateFormatterFullStyle timeStyle:NSDateFormatterNoStyle] isEqualToString:[NSDateFormatter localizedStringFromDate:[NSDate date] dateStyle:NSDateFormatterFullStyle timeStyle:NSDateFormatterNoStyle]];
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int interval = (int)[firstTime timeIntervalSinceDate:secondTime]/(60*60*24);
if (interval!=0){
   //not the same day;
}
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