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How could I determine the number of days between two NSDate values (taking into consideration time as well)?

The NSDate values are in whatever form [NSDate date] takes.

Specifically, when a user enters the inactive state in my iPhone app, I store the following value:

exitDate = [NSDate date];

And when they open the app back up, I get the current time:

NSDate *now = [NSDate date];

Now I'd like to implement the following:

-(int)numberOfDaysBetweenStartDate:exitDate andEndDate:now
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Please change the selected answer to the correct one. –  Leo Natan Feb 4 at 13:37
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11 Answers

up vote 189 down vote accepted

Here's an implementation I used to determine the number of calendar days between two dates:

+ (NSInteger)daysBetweenDate:(NSDate*)fromDateTime andDate:(NSDate*)toDateTime
{
    NSDate *fromDate;
    NSDate *toDate;

    NSCalendar *calendar = [NSCalendar currentCalendar];

    [calendar rangeOfUnit:NSDayCalendarUnit startDate:&fromDate
        interval:NULL forDate:fromDateTime];
    [calendar rangeOfUnit:NSDayCalendarUnit startDate:&toDate
        interval:NULL forDate:toDateTime];

    NSDateComponents *difference = [calendar components:NSDayCalendarUnit
        fromDate:fromDate toDate:toDate options:0];

    return [difference day];
}
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3  
why dont you use, NSDateComponents *difference = [calendar components:NSDayCalendarUnit fromDate:fromDate toDate:toDate options:0]; only. –  karim Jul 19 '11 at 13:52
7  
@karim if you only use that function the difference won't be in "calendar days". –  João Portela Dec 30 '11 at 16:04
1  
Very nice solution! –  Oscar Broman May 18 '12 at 11:18
14  
@karim: Just to provide an example, to clarify what João said: If fromDateTime = Feb 1st 11:00pm and toDateTime = Feb 2nd 01:00am the result should be 1 (even though it's only 2 hours, but it's another date). Without stripping the time part of the dates (which is done by the calls to rangeOfUnit:...), the result would be 0 (because 2h < 1 day). –  Daniel Rinser Aug 22 '12 at 12:31
    
I'm interested in returning a value that is negative if the toDate is in the past and positive if it's in the future. This method doesn't work for that. I get an off by one error for any negative dates. @Biosopher's answer works better for me. –  thoughtadvances May 19 at 21:52
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Here's the best solution I've found. Seems to utilize the Apple approved method for determining any amount of units between NSDates.

- (int)daysBetween:(NSDate *)dt1 and:(NSDate *)dt2 {
    NSUInteger unitFlags = NSDayCalendarUnit;
    NSCalendar *calendar = [[NSCalendar alloc] initWithCalendarIdentifier:NSGregorianCalendar]; 
    NSDateComponents *components = [calendar components:unitFlags fromDate:dt1 toDate:dt2 options:0];
    return [components day]+1;
}

E.g. if you want months as well, then you could include 'NSMonthCalendarUnit' as a unitFlag.

To credit the original blogger, I found this info here (although there was a slight mistake that I've fixed above): http://cocoamatic.blogspot.com/2010/09/nsdate-number-of-days-between-two-dates.html?showComment=1306198273659#c6501446329564880344

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4  
This is the method from the Apple docs. This should be accepted –  Jonathan. Jul 7 '12 at 12:35
1  
Where is the declaration for calendar? Why not implement this as a category? –  Rob Sep 9 '12 at 22:15
2  
return [components day]+1; should be return ABS([components day])+1; to prevent wrong day count on negative value –  Tek Yin Jul 25 '13 at 8:04
2  
It works incorrect. It gives the same result for the same dates, and for dates with 1 day difference. components.day is 0 in this case. –  Shmidt Nov 24 '13 at 19:17
1  
I want a method that returns negative values for a toDate that's in the past and positive values for a toDate that's in the future, as well as 0 if the toDate is the same day as the fromDate. This method does that for me if I remove the +1 in the last line of code. –  thoughtadvances May 19 at 21:54
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NSDate *lastDate = [NSDate date];
NSDate *todaysDate = [NSDate date];
NSTimeInterval lastDiff = [lastDate timeIntervalSinceNow];
NSTimeInterval todaysDiff = [todaysDate timeIntervalSinceNow];
NSTimeInterval dateDiff = lastDiff - todaysDiff;

dateDiff will then be the number of second between the two dates. Just divide by the number of seconds in a day.

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2  
Just for clarity you would divide by 60*60*24, and then you need to decide if a partial day counts as a day or not, is 5.9 equal to 6 days? Figure out the appropriate rounding scheme for your application. –  Chris Wagner Jan 19 '11 at 19:13
61  
You should never do this sort of math in an application. This will fall down with time zone transitions (which can cause 23- or 25-hour days), leap seconds (which are applied at the end of some years but not others), and any number of other calendar complications. –  Brent Royal-Gordon Jan 5 '12 at 6:46
6  
NSCalendar has methods for performing date math. The WWDC 2011 session videos include a session on performing date math safely. –  Brent Royal-Gordon Aug 3 '12 at 19:14
7  
wrong answer. see Biosopher's answer below –  nont Dec 20 '12 at 2:49
6  
This is so far beyond wrong its not even funny Biosopher's answer is the correct one. –  Tony Million Mar 15 '13 at 7:49
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I needed the number of days between two dates including the beginning day. e.g. days between 14-2-2012 and 16-2-2012 would produce a result of 3.

+ (NSInteger)daysBetween:(NSDate *)dt1 and:(NSDate *)dt2 {
        NSUInteger unitFlags = NSDayCalendarUnit;
        NSCalendar* calendar = [NSCalendar currentCalendar];
        NSDateComponents *components = [calendar components:unitFlags fromDate:dt1 toDate:dt2 options:0];
        NSInteger daysBetween = abs([components day]);
    return daysBetween+1;
}

Note that it doesn't matter in which order you provide the dates. It will always return a positive number.

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I use this as category method for NSDate class

// returns number of days (absolute value) from another date (as number of midnights beween these dates)
- (int)daysFromDate:(NSDate *)pDate {
        NSCalendar *calendar = [[NSCalendar alloc] initWithCalendarIdentifier:NSGregorianCalendar];
        NSInteger startDay=[calendar ordinalityOfUnit:NSDayCalendarUnit
                                               inUnit:NSEraCalendarUnit
                                              forDate:self];
        NSInteger endDay=[calendar ordinalityOfUnit:NSDayCalendarUnit
                                             inUnit:NSEraCalendarUnit
                                            forDate:pDate];
        [calendar release];
        return abs(endDay-startDay);
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1  
This is the best and correctly working solution. –  Shmidt Nov 24 '13 at 19:21
    
Why do you hate currentCalendar? –  Andy Jun 6 at 17:46
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@Brian

Brian's answer while good, only calculates difference in days in terms of 24h chunks, but not calendar day differences. For example 23:59 on Dec 24th is only 1 minute away from Christmas Day, for the purpose of many application that is considered one day still. Brian's daysBetween function would return 0.

Borrowing from Brian's original implementation and beginning/end of day, I use the following in my program: (NSDate beginning of day and end of day)

- (NSDate *)beginningOfDay:(NSDate *)date
{
    NSCalendar *cal = [NSCalendar currentCalendar];
    NSDateComponents *components = [cal components:( NSDayCalendarUnit | NSMonthCalendarUnit | NSYearCalendarUnit | NSHourCalendarUnit | NSMinuteCalendarUnit | NSSecondCalendarUnit ) fromDate:date];
    [components setHour:0];
    [components setMinute:0];
    [components setSecond:0];
    return [cal dateFromComponents:components];
}

- (NSDate *)endOfDay:(NSDate *)date
{
    NSCalendar *cal = [NSCalendar currentCalendar];
    NSDateComponents *components = [cal components:( NSDayCalendarUnit | NSMonthCalendarUnit | NSYearCalendarUnit | NSHourCalendarUnit | NSMinuteCalendarUnit | NSSecondCalendarUnit ) fromDate:date];
    [components setHour:23];
    [components setMinute:59];
    [components setSecond:59];
    return [cal dateFromComponents:components];
}

- (int)daysBetween:(NSDate *)date1 and:(NSDate *)date2 {
    NSDate *beginningOfDate1 = [self beginningOfDay:date1];
    NSDate *endOfDate1 = [self endOfDay:date1];
    NSCalendar *calendar = [[NSCalendar alloc] initWithCalendarIdentifier:NSGregorianCalendar];
    NSDateComponents *beginningDayDiff = [calendar components:NSDayCalendarUnit fromDate:beginningOfDate1 toDate:date2 options:0];
    NSDateComponents *endDayDiff = [calendar components:NSDayCalendarUnit fromDate:endOfDate1 toDate:date2 options:0];
    if (beginningDayDiff.day > 0)
        return beginningDayDiff.day;
    else if (endDayDiff.day < 0)
        return endDayDiff.day;
    else {
        return 0;
    }
}
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Actually the whole purpose of my solution is to calculate the difference in calendar days - try it :-). The time portion of the timestamp is discarded, so only the difference in days is returned (so Dec 24 at 23:59:59 and Dec 25 are considered 1 day apart). –  Brian Mar 28 at 15:19
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Do you mean calendar days or 24-hour periods? i.e. is Tuesday at 9PM a day before Wednesday at 6AM, or less than one day?

If you mean the former, it's a bit complicated and you'll have to resort to manipulations via NSCalendar and NSDateComponent which I don't recall off the top of my head.

If you mean the latter, just get the dates' time intervals since the reference date, subtract one from the other, and divide by 24 hours (24 * 60 * 60) to get the approximate interval, leap seconds not included.

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Or daylight savings time... –  Dave DeLong Jan 19 '11 at 19:14
    
Sorta. Daylight savings time would never affect the range by more than an hour, as it flips back and forth over time--it doesn't accumulate error. –  Jonathan Grynspan Jan 19 '11 at 19:16
    
Whoever downvoted--would you care to explain why? –  Jonathan Grynspan Jul 7 '12 at 16:20
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Got one, not sure it's exactly what you want, but it could help some of you, (helped me!!)

My goal was to know if, between two date (less than 24h difference) i had a "overday" day+1:

i did the following (a bit archaic i admit)

NSDate *startDate = ...
NSDate *endDate = ...

NSDate already formatted by another NSDateFormatter (this one is just for this purpose :)

NSDateFormatter *dayFormater = [[NSDateFormatter alloc]init];
[dayFormater setDateFormat:@"dd"];

int startDateDay = [[dayFormater stringFromDate:startDate]intValue];

int endDateDay = [[dayFormater stringFromDate:dateOn]intValue];

if (endDateDay > startDateDay) {
    NSLog(@"day+1");
} else {
    NSLog(@"same day");
}

maybe something like this already exist, but didn't find it

Tim

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The solution I found was:

+(NSInteger)getDaysDifferenceBetween:(NSDate *)dateA and:(NSDate *)dateB {

  if ([dateA isEqualToDate:dateB]) 
    return 0;

  NSCalendar * gregorian = 
        [[NSCalendar alloc] initWithCalendarIdentifier:NSGregorianCalendar];



  NSDate * dateToRound = [dateA earlierDate:dateB];
  int flags = (NSYearCalendarUnit | NSMonthCalendarUnit |  NSDayCalendarUnit);
  NSDateComponents * dateComponents = 
         [gregorian components:flags fromDate:dateToRound];


  NSDate * roundedDate = [gregorian dateFromComponents:dateComponents];

  NSDate * otherDate = (dateToRound == dateA) ? dateB : dateA ;

  NSInteger diff = abs([roundedDate timeIntervalSinceDate:otherDate]);

  NSInteger daysDifference = floor(diff/(24 * 60 * 60));

  return daysDifference;
}

Here I am effectively rounding the first date to start from the beginning of the day and then calculating the difference as Jonathan is suggesting above...

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Why not just:

int days = [date1 timeIntervalSinceDate:date2]/24/60/60;

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Because this does not take into account daylight savings or timezone differences, for instance. You should do this math using a NSCalendar. –  leolobato Jun 13 '13 at 13:54
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Another approach:

NSDateFormatter* dayFmt = [[NSDateFormatter alloc] init];
[dayFmt setTimeZone:<whatever time zone you want>];
[dayFmt setDateFormat:@"g"];
NSInteger firstDay = [[dayFmt stringFromDate:firstDate] integerValue];    
NSInteger secondDay = [[dayFmt stringFromDate:secondDate] integerValue];
NSInteger difference = secondDay - firstDay;

Has the advantage over the timeIntervalSince... scheme that timezone can be taken into account, and there's no ambiguity with intervals a few seconds short or long of one day.

And a bit more compact and less confusing than the NSDateComponents approaches.

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