61

Does anyone can link me to some tutorial where I can find out how to return days , hours , minutes, seconds in javascript between 2 unix datetimes?

I have:

var date_now = unixtimestamp;
var date_future = unixtimestamp;

I would like to return (live) how many days,hours,minutes,seconds left from the date_now to the date_future.

| |
  • 5
    date_future - date_now is the seconds and from there you make your way up to minutes (60 secs) and hours (3600 secs), etc... Where exactly are you having problems? – Lix Dec 16 '12 at 17:52
  • @Lix oh great this should be the answer man, put it i'll flagcheck that – itsme Dec 16 '12 at 17:54
  • Possible duplicate of stackoverflow.com/questions/41948/… – Gurpreet Singh Dec 16 '12 at 17:56
  • 1
    no end of resources in a google search for javascript date – charlietfl Dec 16 '12 at 17:56
  • same exact question asked twice today! – FrancescoMM Dec 16 '12 at 18:01

17 Answers 17

171

Just figure out the difference in seconds (don't forget JS timestamps are actually measured in milliseconds) and decompose that value:

// get total seconds between the times
var delta = Math.abs(date_future - date_now) / 1000;

// calculate (and subtract) whole days
var days = Math.floor(delta / 86400);
delta -= days * 86400;

// calculate (and subtract) whole hours
var hours = Math.floor(delta / 3600) % 24;
delta -= hours * 3600;

// calculate (and subtract) whole minutes
var minutes = Math.floor(delta / 60) % 60;
delta -= minutes * 60;

// what's left is seconds
var seconds = delta % 60;  // in theory the modulus is not required

EDIT code adjusted because I just realised that the original code returned the total number of hours, etc, not the number of hours left after counting whole days.

| |
  • 9
    I'd change var seconds = delta % 60; to var seconds = Math.floor(delta % 60); – Barry Carlyon Jul 11 '15 at 23:26
  • @BarryCarlyon I wouldn't - the OP might want to know about those rounded off milliseconds. – Alnitak Jul 12 '15 at 21:01
  • 1
    A valid point @alnitak but you'd probably want to split milliseconds out to it's own var in that case – Barry Carlyon Jul 12 '15 at 22:20
  • 1
    can anyone please explain what is 86400, 3600, 60. Why we use it to calculate? – Bear Nithi Oct 22 '19 at 7:16
  • 1
    @BearNithi they're the number of seconds in a day, an hour, and a minute. – Alnitak Oct 22 '19 at 21:48
39

Here's in javascript: (For example, the future date is New Year's Day)

DEMO (updates every second)

var dateFuture = new Date(new Date().getFullYear() +1, 0, 1);
var dateNow = new Date();

var seconds = Math.floor((dateFuture - (dateNow))/1000);
var minutes = Math.floor(seconds/60);
var hours = Math.floor(minutes/60);
var days = Math.floor(hours/24);

hours = hours-(days*24);
minutes = minutes-(days*24*60)-(hours*60);
seconds = seconds-(days*24*60*60)-(hours*60*60)-(minutes*60);
| |
33

I call it the "snowman-carl ☃ method" and I think it's a little more flexible when you need additional timespans like weeks, moths, years, centuries... and don't want too much repetitive code:

var d = Math.abs(date_future - date_now) / 1000;                           // delta
var r = {};                                                                // result
var s = {                                                                  // structure
    year: 31536000,
    month: 2592000,
    week: 604800, // uncomment row to ignore
    day: 86400,   // feel free to add your own row
    hour: 3600,
    minute: 60,
    second: 1
};

Object.keys(s).forEach(function(key){
    r[key] = Math.floor(d / s[key]);
    d -= r[key] * s[key];
});

// for example: {year:0,month:0,week:1,day:2,hour:34,minute:56,second:7}
console.log(r);

Have a FIDDLE / ES6 Version (2018) / TypeScript Version (2019)

Inspired by Alnitak's answer.

| |
  • 4
    Very elegant solution – Vlad Feb 1 '18 at 17:12
  • 1
    Note that this code does depend on the keys of s being enumerated in the specified order, which is only guaranteed true in ES2015 or later. – Alnitak Aug 27 '18 at 16:04
  • Note this solution is specific for months which contain 30 days. Months with 28, 29, 31 days are not supported here. – Owen Adley Apr 11 at 22:00
8

Please note that calculating only based on differences will not cover all cases: leap years and switching of "daylight savings time".

Javascript has poor built-in library for working with dates. I suggest you use a third party javascript library, e.g. MomentJS; you can see here the function you were looking for.

| |
7

my solution is not as clear as that, but I put it as another example

console.log(duration('2019-07-17T18:35:25.235Z', '2019-07-20T00:37:28.839Z'));

function duration(t0, t1){
    let d = (new Date(t1)) - (new Date(t0));
    let weekdays     = Math.floor(d/1000/60/60/24/7);
    let days         = Math.floor(d/1000/60/60/24 - weekdays*7);
    let hours        = Math.floor(d/1000/60/60    - weekdays*7*24            - days*24);
    let minutes      = Math.floor(d/1000/60       - weekdays*7*24*60         - days*24*60         - hours*60);
    let seconds      = Math.floor(d/1000          - weekdays*7*24*60*60      - days*24*60*60      - hours*60*60      - minutes*60);
    let milliseconds = Math.floor(d               - weekdays*7*24*60*60*1000 - days*24*60*60*1000 - hours*60*60*1000 - minutes*60*1000 - seconds*1000);
    let t = {};
    ['weekdays', 'days', 'hours', 'minutes', 'seconds', 'milliseconds'].forEach(q=>{ if (eval(q)>0) { t[q] = eval(q); } });
    return t;
}

| |
  • Love it, returns results equivalent to postgres's treatment of datetime diffs. – lakesare Mar 22 at 18:31
4

Here is a code example. I used simple calculations instead of using precalculations like 1 day is 86400 seconds. So you can follow the logic with ease.

// Calculate time between two dates:
var date1 = new Date('1110-01-01 11:10');
var date2 = new Date();

console.log('difference in ms', date1 - date2);

// Use Math.abs() so the order of the dates can be ignored and you won't
// end up with negative numbers when date1 is before date2.
console.log('difference in ms abs', Math.abs(date1 - date2));
console.log('difference in seconds', Math.abs(date1 - date2) / 1000);

var diffInSeconds = Math.abs(date1 - date2) / 1000;
var days = Math.floor(diffInSeconds / 60 / 60 / 24);
var hours = Math.floor(diffInSeconds / 60 / 60 % 24);
var minutes = Math.floor(diffInSeconds / 60 % 60);
var seconds = Math.floor(diffInSeconds % 60);
var milliseconds = Math.round((diffInSeconds - Math.floor(diffInSeconds)) * 1000);

console.log('days', days);
console.log('hours', ('0' + hours).slice(-2));
console.log('minutes', ('0' + minutes).slice(-2));
console.log('seconds', ('0' + seconds).slice(-2));
console.log('milliseconds', ('00' + milliseconds).slice(-3));
| |
  • useful after searching lot for get milliseconds part. Thanks. – Jinesh Jain Oct 1 at 10:03
3

The best library that I know of for duration breakdown is countdown.js. It handles all the hard cases such as leap years and daylight savings as csg mentioned, and even allows you to specify fuzzy concepts such as months and weeks. Here's the code for your case:

//assuming these are in *seconds* (in case of MS don't multiply by 1000 below)
var date_now = 1218374; 
var date_future = 29384744;

diff = countdown(date_now * 1000, date_future * 1000, 
            countdown.DAYS | countdown.HOURS | countdown.MINUTES | countdown.SECONDS);
alert("days: " + diff.days + " hours: " + diff.hours + 
      " minutes: " + diff.minutes + " seconds: " + diff.seconds);

//or even better
alert(diff.toString()); 

Here's a JSFiddle, but it would probably only work in FireFox or in Chrome with web security disabled, since countdown.js is hosted with a text/plain MIME type (you're supposed to serve the file, not link to countdownjs.org).

| |
3

Short and flexible with support for negative values, although by using two comma expressions :)

function timeUnitsBetween(startDate, endDate) {
  let delta = Math.abs(endDate - startDate) / 1000;
  const isNegative = startDate > endDate ? -1 : 1;
  return [
    ['days', 24 * 60 * 60],
    ['hours', 60 * 60],
    ['minutes', 60],
    ['seconds', 1]
  ].reduce((acc, [key, value]) => (acc[key] = Math.floor(delta / value) * isNegative, delta -= acc[key] * isNegative * value, acc), {});
}

Example:

timeUnitsBetween(new Date("2019-02-11T02:12:03+00:00"), new Date("2019-02-11T01:00:00+00:00"));
// { days: -0, hours: -1, minutes: -12, seconds: -3 }

Inspired by RienNeVaPlu͢s solution.

| |
2

Use moment.js library, for example:

var time = date_future - date_now;
var seconds = moment.duration(time).seconds();
var minutes = moment.duration(time).minutes();
var hours   = moment.duration(time).hours();
var days    = moment.duration(time).days();
| |
1
function update(datetime = "2017-01-01 05:11:58") {
    var theevent = new Date(datetime);
    now = new Date();
    var sec_num = (theevent - now) / 1000;
    var days    = Math.floor(sec_num / (3600 * 24));
    var hours   = Math.floor((sec_num - (days * (3600 * 24)))/3600);
    var minutes = Math.floor((sec_num - (days * (3600 * 24)) - (hours * 3600)) / 60);
    var seconds = Math.floor(sec_num - (days * (3600 * 24)) - (hours * 3600) - (minutes * 60));

    if (hours   < 10) {hours   = "0"+hours;}
    if (minutes < 10) {minutes = "0"+minutes;}
    if (seconds < 10) {seconds = "0"+seconds;}

    return  days+':'+ hours+':'+minutes+':'+seconds;
}
| |
1

Here's my take:

timeSince(123456) => "1 day, 10 hours, 17 minutes, 36 seconds"

And the code:

function timeSince(date, longText) {
    let seconds = null;
    let leadingText = null;

    if (date instanceof Date) {
        seconds = Math.floor((new Date() - date) / 1000);
        if (seconds < 0) {
            leadingText = " from now";
        } else {
            leadingText = " ago";
        }
        seconds = Math.abs(seconds);
    } else {
        seconds = date;
        leadingText = "";
    }

    const intervals = [
        [31536000, "year"  ],
        [ 2592000, "month" ],
        [   86400, "day"   ],
        [    3600, "hour"  ],
        [      60, "minute"],
        [       1, "second"],
    ];

    let interval = seconds;
    let intervalStrings = [];
    for (let i = 0; i < intervals.length; i++) {
        let divResult = Math.floor(interval / intervals[i][0]);
        if (divResult > 0) {
            intervalStrings.push(divResult + " " + intervals[i][1] + ((divResult > 1) ? "s" : ""));
            interval = interval % intervals[i][0];
            if (!longText) {
                break;
            }
        }
    }
    let intStr = intervalStrings.join(", ");

    return intStr + leadingText;
}
| |
  • this is more accurate with singular and plural - second/second(s) – Ananth Jun 11 at 10:30
1

Easy Way

function diff_hours(dt2, dt1) 
 {

  var diff =(dt2.getTime() - dt1.getTime()) / 1000;
  diff /= (60 * 60);
  return Math.abs(Math.round(diff));

 }


function diff_minutes(dt2, dt1) 
 {

  var diff =(dt2.getTime() - dt1.getTime()) / 1000;
  diff /= (60);
  return Math.abs(Math.round(diff));

 }

function diff_seconds(dt2, dt1) 
 {

  var diff =(dt2.getTime() - dt1.getTime()) / 1000;
  return Math.abs(Math.round(diff));

 }

function diff_miliseconds(dt2, dt1) 
 {

  var diff =(dt2.getTime() - dt1.getTime());
  return Math.abs(Math.round(diff));

 }


dt1 = new Date(2014,10,2);
dt2 = new Date(2014,10,3);
console.log(diff_hours(dt1, dt2));


dt1 = new Date("October 13, 2014 08:11:00");
dt2 = new Date("October 14, 2014 11:13:00");
console.log(diff_hours(dt1, dt2));

console.log(diff_minutes(dt1, dt2));

console.log(diff_seconds(dt1, dt2));

console.log(diff_miliseconds(dt1, dt2));
| |
1
function calculateExamRemainingTime(exam_end_at) {

$(function(){

    const calcNewYear = setInterval(function(){

        const exam_ending_at    = new Date(exam_end_at);
        const current_time      = new Date();
       
        const totalSeconds     = Math.floor((exam_ending_at - (current_time))/1000);;
        const totalMinutes     = Math.floor(totalSeconds/60);
        const totalHours       = Math.floor(totalMinutes/60);
        const totalDays        = Math.floor(totalHours/24);

        const hours   = totalHours - ( totalDays * 24 );
        const minutes = totalMinutes - ( totalDays * 24 * 60 ) - ( hours * 60 );
        const seconds = totalSeconds - ( totalDays * 24 * 60 * 60 ) - ( hours * 60 * 60 ) - ( minutes * 60 );

        const examRemainingHoursSection = document.querySelector('#remainingHours');
        const examRemainingMinutesSection = document.querySelector('#remainingMinutes');
        const examRemainingSecondsSection = document.querySelector('#remainingSeconds');

        examRemainingHoursSection.innerHTML = hours.toString();
        examRemainingMinutesSection.innerHTML = minutes.toString();
        examRemainingSecondsSection.innerHTML = seconds.toString();

    },1000);
});
}

calculateExamRemainingTime('2025-06-03 20:20:20');
| |
0

here is an code to find difference between two dates in Days,Hours,Minutes,Seconds (assuming the future date is new year date).

var one_day = 24*60*60*1000;              // total milliseconds in one day

var today = new Date();
var new_year = new Date("01/01/2017");    // future date

var today_time = today.getTime();         // time in miliiseconds
var new_year_time = new_year.getTime();                         

var time_diff = Math.abs(new_year_time - today_time);  //time diff in ms  
var days = Math.floor(time_diff / one_day);            // no of days

var remaining_time = time_diff - (days*one_day);      // remaining ms  

var hours = Math.floor(remaining_time/(60*60*1000));   
remaining_time = remaining_time - (hours*60*60*1000);  

var minutes = Math.floor(remaining_time/(60*1000));        
remaining_time = remaining_time - (minutes * 60 * 1000);   

var seconds = Math.ceil(remaining_time / 1000);   
| |
0
let delta = Math.floor(Math.abs(start.getTime() - end.getTime()) / 1000);
let hours = Math.floor(delta / 3600);
delta -= hours * 3600;
let minutes = Math.floor(delta / 60);
delta -= minutes * 60;
let seconds = delta;
if (hours.toString().length === 1) {
  hours = `0${hours}`;
}
if (minutes.toString().length === 1) {
  minutes = `0${minutes}`;
}
if (seconds.toString().length === 1) {
  seconds = `0${seconds}`;
}
const recordingTime = `${hours}:${minutes}:${seconds}`;
| |
0

MomentJS has a function to do that:

const start = moment(j.timings.start);
const end = moment(j.timings.end);
const elapsedMinutes = end.diff(start, "minutes");
| |
-1

We can do it by simple method

/*Declare the function */
function Clock(){
    let d1 = new Date("1 Jan 2021");
    let d2 = new Date();

    let difference = Math.abs(d1 - d2); //to get absolute value
    //calculate for each one
    let Days = Math.floor(difference / ( 1000 * 60 * 60 * 24 ));
    let Hours = Math.floor((difference / ( 1000 * 60 * 60 )) % 24);
    let Mins = Math.floor((difference / ( 1000 * 60 )) % 60);
    let Seconds = Math.floor((difference / ( 1000 )) % 60);

    //getting nodes and change the text inside
    let getday = document.querySelector(".big_text_days");
    let gethour = document.querySelector(".big_text_hours");
    let getmins = document.querySelector(".big_text_mins");
    let getsec = document.querySelector(".big_text_sec");

    getday.textContent = Check_Zero(Days); 
    gethour.textContent = Check_Zero(Hours);
    getmins.textContent = Check_Zero(Mins)
    getsec.textContent = Check_Zero(Seconds);
}

//call the funcion for every 1 second
setInterval(Clock , 1000);


//check and add zero in front, if it is lessthan 10
function Check_Zero(mytime){
    return mytime < 10 ? "0"+mytime : mytime;

}
*{
    padding: 0px;
    margin: 0px;
    box-sizing: border-box;
}
body{
    max-width: 900px;
    margin: 0px auto;
    background-color:whitesmoke;
    background-size: cover;
    display: flex;
    flex-direction: column;
    align-items: center;
    margin-top: 5rem;
}
.main_container{
    display: flex;
    flex-wrap: wrap;
    justify-content: center;
}
h1{
    font-size: 3rem;
    color: #3D4B72;
}
.big_text_days , .big_text_hours , .big_text_mins , .big_text_sec{
    font-size: 2rem;
    font-weight: bold;
    line-height: 2;
    color: #AC7591;
    text-align: center;
}
p{
    padding: 20px 0px 20px 0px;
    font-size: 3rem;
    text-align: center;
}
.spantext{
    color: #103c28;
    margin: 0px 3rem;
    font-size: 2rem;
    font-style: italic;
}
.text_sec{
    color : #005259;
}
<!DOCTYPE html>
<html>
    <head>
        <meta charset="UTF-8">
        <meta name="description" content="Responsive site">
        <meta name="keywords" content="HTML,CSS,JS">
        <meta name="author" content="Ranjan">
        <meta name="viewport" content="width=device-width, initial-scale=1.0">

        <title>Home</title>

        <link href="https://fonts.googleapis.com/css?family=Alfa+Slab+One|Bree+Serif|Exo|Exo+2|Lato|Mansalva|Playfair+Display&display=swap" rel="stylesheet">
       
        <link rel="stylesheet" href="https://use.fontawesome.com/releases/v5.2.0/css/all.css" integrity="sha384-hWVjflwFxL6sNzntih27bfxkr27PmbbK/iSvJ+a4+0owXq79v+lsFkW54bOGbiDQ" crossorigin="anonymous">

</head>

    <body>
        
    <section>
      <h1>CountDown Timer</h1>
        </section>
                
         <section>
          <div class="main_container">
                
            <div class="days_container">
             <p class="big_text_days">1</p>
              <span class="spantext spantextdays">Days</span>
            </div>
    
            <div class="hours_container">
             <p class="big_text_hours">1</p>
              <span class="spantext spantexthours">Hours</span>
            </div>
    
            <div class="mins_container">
             <p class="big_text_mins">1</p>
              <span class="spantext spantextmins">Minutes</span>
            </div>
            
            <div class="sec_container">
             <p class="big_text_sec text_sec">1</p>
              <span class="spantext spantextsec">Seconds</span>
            </div>
         </div>
        </section>

    </body>
</html>

| |

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.