Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Is there a better way to add a certain unit of time to a DateTime object?

I would like to do something similar to:

TimeUnit unit = TimeUnit.valueOf("days");
DateTime date = new DateTime().add(unit, 20);

This is my current implementation.

int number = 20;
MutableDateTime now = new MutableDateTime();
String timeUnit = getTimeUnit(); // returns "days", "months", "years"
if (timeUnit.equals("days"))
    now.addDays(number);
else if (timeUnit.equals("months"))
    now.addMonths(number);
else
    now.addYears(number);
return now.toDateTime();
share|improve this question

2 Answers 2

up vote 1 down vote accepted

I don't know of a built-in way to do it. Instead, you can create a Map of String names mapped to corresponding DurationFieldType objects. For example

static Map<String, DurationFieldType> durationFieldTypes = new HashMap<>();
static {
    durationFieldTypes.put("days", DurationFieldType.days());
    durationFieldTypes.put("months", DurationFieldType.months());
    ...
}

And then just query that Map for the appropriate object

MutableDateTime dateTime = new MutableDateTime();
String timeUnit = getTimeUnit(); // returns "days", "months", "years"
dateTime.add(durationFieldTypes.get(timeUnit), amount);

You will possibly need some fail safe for invalid timeUnit values.

share|improve this answer

The answer of Sotirios Delimanolis is right. JodaTime has no enum-like concept because it was developed before the introduction of Java generics and enums in JDK5. In Java 8 you can also go this way or similar:

String name = "days"; // or months or years
ChronoUnit unit = ChronoUnit.valueOf(name.toUpperCase());
LocalDateTime ldt = LocalDateTime.of(...);
ldt = ldt.plus(number, unit);

Or consider using ZonedDateTime instead of LocalDateTime. The new approach is much more elegant (yes JodaTime becomes old).

share|improve this answer

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.