Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

Why are you not allowed to add days to a date in std.datetime? You can add months and years, but not days.

Recently I had to calculate a date for Easter Sunday, then I had to calculate related holidays (Ascension, Pentecost, Trinity, Corpus) by adding a certain number of days (39, 10, 7, 4) to the last date.

I ended up using dayOfYear:

date.dayOfYear(date.dayOfYear + offset);

This worked well, but only because I remained within the same year. What if I have to add 50 days to, say, dec 28?

Is there an easy way of doing this that I have overlooked?

share|improve this question
    
there used to be a function int weekDay(d_time t); but it's deprecated now see dlang.org/phobos/std_date.html you could still use that i think by parsing it –  Rachel Gallen Jan 17 '13 at 11:40

4 Answers 4

up vote 5 down vote accepted

You can use Duration from core.time. Importing std.datetime will import core.time, so you can use it directly as follows.

import std.stdio, std.datetime;

void main() {
  auto date = Date(2013, 12, 28);
  writefln("%s + %s = %s", date, 10.days(), date + 10.days());
}

BTW, days() is an alias to dur!"days"() which constructs a Duration struct. Check the documentation of core.time http://dlang.org/phobos/core_time.html for more information.

share|improve this answer
    
That's even better than what I found. –  fwend Jan 17 '13 at 17:30

If you haven't read this article on std.datetime yet, then you probably should, as it will probably answer most basic questions that you have for how to use it.

But in general, core.time.Duration is what you should be using for adding and subtracting units from any of the time point types in std.datetime (SysTime, DateTime, Date, or TimeOfDay). So, you get code like

auto date = Date(2012, 12, 21);
date += dur!"days"(50);

or

auto date = Date(2012, 12, 21);
date += days(50);

(The templated dur function is the generic way to generate a Duration, but it has aliases for each of the units that it supports, so stuff like seconds(5) or 22.minutes() will work as well).

The add function exists for "months" and "years", because a Duration can't hold months or years (because you can't convert between them and smaller units without a specific date), and there needs to be a way to add months or years to a time point. Also, there's the question of what to do when you add or subtract a month or year to/from a date, and the month that it moves to doesn't include that day, so add accepts AllowDayOverflow in order to control that (which wouldn't be necessary with smaller units).

auto d3 = Date(2000, 2, 29);
d3.add!"years"(1);
assert(d3 == Date(2001, 3, 1));

auto d4 = Date(2000, 2, 29);
d4.add!"years"(1, AllowDayOverflow.no);
assert(d4 == Date(2001, 2, 28));

But add doesn't accept any other units, because you can simply use the normal arithmetic operations with a Duration. Also, subtracting two time points will result in a Duration.

assert(Date(2012, 12, 5) - Date(2002, 11, 17) == dur!"days"(3671));
assert(Date(2012, 12, 5) - dur!"days"(3671) == Date(2002, 11, 17));

Unlike add, roll accepts all of the units in the type rather than just "months" and "years", but that's because it's doing a different operation from +, and so adding or subtracting a Duration won't work (as that already adds or subtracts). Rather roll adds to a specific unit without adding to the others.

auto d = Date(2010, 1, 1);
d.roll!"days"(33);
assert(d == Date(2010, 1, 3));
share|improve this answer

You can useroll method:

date.roll!"days"(50);
share|improve this answer
1  
The roll method doesn't affect larger units, such as months or years. –  fwend Jan 17 '13 at 12:39
    
Then you can use add. Don't ask why there are 2 methods. –  hauleth Jan 17 '13 at 12:52
    
"add" doesn't accept days as unit –  fwend Jan 17 '13 at 12:59
1  
@ŁukaszNiemier Because add and roll do different things. add exists because Duration doesn't work with months or years (because you can't convert between them and smaller units without a specific date). roll on the other hand is adding to a specific unit in a way which will cause that field to roll around (without affecting the larger units) when it gets to the max or min for that field, like you might see with a GUI spin control that controls one of a date's fields. –  Jonathan M Davis Jan 17 '13 at 17:36

I did overlook it: you can use dayOfGregorianCal:

import std.stdio, std.datetime;

void main() {
    auto d = Date(2012, 12, 28); 
    writeln(d);    // 2012-Dec-28
    d.dayOfGregorianCal(d.dayOfGregorianCal + 50); 
    writeln(d);    // 2013-Feb-16
}
share|improve this answer
    
That will technically work in the case of days, but adding a Duration is how it's intended to work. –  Jonathan M Davis Jan 17 '13 at 17:32

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.