8

How can I convert duration with JavaScript, for example:

PT16H30M

14

You could theoretically get an ISO8601 Duration that looks like the following:

P1Y4M3W2DT10H31M3.452S

I wrote the following regular expression to parse this into groups:

(-)?P(?:([.,\d]+)Y)?(?:([.,\d]+)M)?(?:([.,\d]+)W)?(?:([.,\d]+)D)?T(?:([.,\d]+)H)?(?:([.,\d]+)M)?(?:([.,\d]+)S)?

It's not pretty, and someone better versed in regular expressions might be able to write a better one.

The groups boil down into the following:

  1. Sign
  2. Years
  3. Months
  4. Weeks
  5. Days
  6. Hours
  7. Minutes
  8. Seconds

I wrote the following function to convert it into a nice object:

var iso8601DurationRegex = /(-)?P(?:([.,\d]+)Y)?(?:([.,\d]+)M)?(?:([.,\d]+)W)?(?:([.,\d]+)D)?T(?:([.,\d]+)H)?(?:([.,\d]+)M)?(?:([.,\d]+)S)?/;

window.parseISO8601Duration = function (iso8601Duration) {
    var matches = iso8601Duration.match(iso8601DurationRegex);

    return {
        sign: matches[1] === undefined ? '+' : '-',
        years: matches[2] === undefined ? 0 : matches[2],
        months: matches[3] === undefined ? 0 : matches[3],
        weeks: matches[4] === undefined ? 0 : matches[4],
        days: matches[5] === undefined ? 0 : matches[5],
        hours: matches[6] === undefined ? 0 : matches[6],
        minutes: matches[7] === undefined ? 0 : matches[7],
        seconds: matches[8] === undefined ? 0 : matches[8]
    };
};

Used like this:

window.parseISO8601Duration('P1Y4M3W2DT10H31M3.452S');

Hope this helps someone out there.


Update

If you are using momentjs, they have ISO8601 duration parsing functionality available. You'll need a plugin to format it, and it doesn't seem to handle durations that have weeks specified in the period as of the writing of this note.

  • 1
    P1D is a valid duration, so you should not expect the T inside the regex. Here is a more valid regex : (-)?P(?:([.,\d]+)Y)?(?:([.,\d]+)M)?(?:([.,\d]+)W)?(?:([.,\d]+)D)?(?:T(?:([.,\d]+)H)?(?:([.,\d]+)M)?(?:([.,\d]+)S)?)? – Ser May 25 '18 at 8:58
  • I specially logged in to upvote it. Great and timesaving, thanks! – Artyom Pranovich May 2 at 15:03
3
"PT16H30M".replace(/PT(\d+)H(\d+)M/, "$1:$2");
  • 1
    it works..tnx.. – cvelinho Feb 18 '13 at 10:58
3

I have just done this for durations that are even over a year long.
Here is a fiddle.

function convertDuration(t){ 
    //dividing period from time
    var x = t.split('T'),
        duration = '',
        time = {},
        period = {},
        //just shortcuts
        s = 'string',
        v = 'variables',
        l = 'letters',
        // store the information about ISO8601 duration format and the divided strings
        d = {
            period: {
                string: x[0].substring(1,x[0].length),
                len: 4,
                // years, months, weeks, days
                letters: ['Y', 'M', 'W', 'D'],
                variables: {}
            },
            time: {
                string: x[1],
                len: 3,
                // hours, minutes, seconds
                letters: ['H', 'M', 'S'],
                variables: {}
            }
        };
    //in case the duration is a multiple of one day
    if (!d.time.string) {
        d.time.string = '';
    }

    for (var i in d) {
        var len = d[i].len;
        for (var j = 0; j < len; j++) {
            d[i][s] = d[i][s].split(d[i][l][j]);
            if (d[i][s].length>1) {
                d[i][v][d[i][l][j]] = parseInt(d[i][s][0], 10);
                d[i][s] = d[i][s][1];
            } else {
                d[i][v][d[i][l][j]] = 0;
                d[i][s] = d[i][s][0];
            }
        }
    } 
    period = d.period.variables;
    time = d.time.variables;
    time.H +=   24 * period.D + 
                            24 * 7 * period.W +
                            24 * 7 * 4 * period.M + 
                            24 * 7 * 4 * 12 * period.Y;

    if (time.H) {
        duration = time.H + ':';
        if (time.M < 10) {
            time.M = '0' + time.M;
        }
    }

    if (time.S < 10) {
        time.S = '0' + time.S;
    }

    duration += time.M + ':' + time.S;
    alert(duration);
}
  • 1
    this is cool, only bug is that when minutes are not provided, it outputs three zeros instead of two. – wiherek Jul 3 '14 at 13:47
  • 1
    Thank you, I didn't notice that. I did manage to fix this "by mistake" when rewriting the script. Updating now. – Mikołaj Łukasik Jul 11 '14 at 18:47
0

Specifically solving DateTime strings which can be used within the HTML5 <time/> tags, as they are limited to Days, Minutes and Seconds (as only these can be converted to a precise number of seconds, as Months and Years can have varying durations)

function parseDurationString( durationString ){
    var stringPattern = /^PT(?:(\d+)D)?(?:(\d+)H)?(?:(\d+)M)?(?:(\d+(?:\.\d{1,3})?)S)?$/;
    var stringParts = stringPattern.exec( durationString );
    return (
             (
               (
                 ( stringParts[1] === undefined ? 0 : stringParts[1]*1 )  /* Days */
                 * 24 + ( stringParts[2] === undefined ? 0 : stringParts[2]*1 ) /* Hours */
               )
               * 60 + ( stringParts[3] === undefined ? 0 : stringParts[3]*1 ) /* Minutes */
             )
             * 60 + ( stringParts[4] === undefined ? 0 : stringParts[4]*1 ) /* Seconds */
           );
}

Test Data

"PT1D"         returns  86400
"PT3H"         returns  10800
"PT15M"        returns    900
"PT1D12H30M"   returns 131400
"PT1D3M15.23S" returns  86595.23

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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