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I need a Date.prototype.addBusDays function that'll take an integer as the number of working days to add to the date.

However, there are two considerations: 1. Weekends, 2. Holidays (which I imagine would be a preset array to compare against. If beginning date and end date contain 3 holidays, then you push out the end date by 3)

I have come across some scripts online, one dilemma I can think of is, lets say you address all the weekends first, then you do the holidays, what if you +1 day (due to holiday), and your end date is pushed into a weekends again...<

Any ideas? Thanks!

EDIT:

This is a part of a scheduling tool I am developing, which mean the dates will be tied to tasks which are linked together. Adding 1 day to a task, will trigger a recalculation of everything tied to it, potentially all dates in the database.

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Which method is most efficient depends on the number of days liable to be added. If the number is small, a simple loop suffices. –  Orbling Jun 27 '11 at 23:07
    
@William Sham: If you are doing a scheduling tool, it might be better to store the relative dates in such a way that such a large scale update is rarely, if ever, caused. –  Orbling Jun 27 '11 at 23:29
    
@Orbling: it won't be possible simply because it's scheduling. You want to see the effect on the final date of your project when you expand the duration of a task by 1 week, and push everything out. –  William Sham Jun 27 '11 at 23:34
    
@William Sham: Yes, I am very familiar with scheduling software. Usually most events within a critical path are stored as durations and sets of edges to parents, so a change in one event does not usually lead to changes to the rest of the table, just a different rendering of the critical path. –  Orbling Jun 27 '11 at 23:41
    
@Orbling: that's a very interesting way to look at it. Is there any article I can read about this? –  William Sham Jun 27 '11 at 23:47

3 Answers 3

up vote 1 down vote accepted

I would do a loop. Keep adding days until you hit a day that works.

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The problem with that is...this addDays function lives inside another function which call upon itself, link a scheduling tool, one date links to another...that mean even if i'm adding one day...when the data get big enough..that could translate to thousands of loop –  William Sham Jun 27 '11 at 23:08
    
@William Sham: If you are adding one day, then it'll be one pass through the loop, which I imagine would be optimal whatever size your data was. You can not avoid the basic tests. –  Orbling Jun 27 '11 at 23:11
    
@Orbling, please see my updates –  William Sham Jun 27 '11 at 23:13
    
My best suggestion then would be to make the loop and give it a try, I'd imagine it would be fine. Put it through a couple stress tests though, just to be sure. –  guywhoneedsahand Jun 27 '11 at 23:15
    
@William Sham: The loops to add days would not give rise to changes in the rest of the database until it was set. We are not suggesting changing the value fully at each step of the loop, just using a loop to find the correct day. –  Orbling Jun 27 '11 at 23:30

Have a look at the following implementation. Sourced from about.com

addWeekdays = function(date, dd) {
  var wks = Math.floor(dd/5);
  var dys = dd.mod(5);
  var dy = this.getDay();
  if (dy === 6 && dys > -1) {
     if (dys === 0) {dys-=2; dy+=2;}
     dys++; dy -= 6;
  }
  if (dy === 0 && dys < 1) {
    if (dys === 0) {dys+=2; dy-=2;}
    dys--; dy += 6;
  }
  if (dy + dys > 5) dys += 2;
  if (dy + dys < 1) dys -= 2;
  date.setDate(date.getDate()+wks*7+dys);
}

var date = new Date();
addWeekdays(date, 9);
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Datageek's solution helped me but I needed to augment it. This still doesn't do holidays but does do working days with the option of including Sat and/or Sun, and does support adding negative days:-

function AddWorkingDays(datStartDate, lngNumberOfWorkingDays, blnIncSat, blnIncSun) {
    var intWorkingDays = 5;
    var intNonWorkingDays = 2;
    var intStartDay = datStartDate.getDay(); // 0=Sunday ... 6=Saturday
    var intOffset;
    var intModifier = 0;

    if (blnIncSat) { intWorkingDays++; intNonWorkingDays--; }
    if (blnIncSun) { intWorkingDays++; intNonWorkingDays--; }
    var newDate = new Date(datStartDate)
    if (lngNumberOfWorkingDays >= 0) {
        // Moving Forward
        if (!blnIncSat && blnIncSun) {
            intOffset = intStartDay;
        } else {
            intOffset = intStartDay - 1;
        }
        // Special start Saturday rule for 5 day week
        if (intStartDay == 6 && !blnIncSat && !blnIncSun) {
            intOffset -= 6;
            intModifier = 1;
        }
    } else {
        // Moving Backward
        if (blnIncSat && !blnIncSun) {
            intOffset = intStartDay - 6;
        } else {
            intOffset = intStartDay - 5;
        }
        // Special start Sunday rule for 5 day week
        if (intStartDay == 0 && !blnIncSat && !blnIncSun) {
            intOffset++;
            intModifier = 1;
        }
    }
    // ~~ is used to achieve integer division for both positive and negative numbers
    newDate.setDate(datStartDate.getDate() + new Number((~~((lngNumberOfWorkingDays + intOffset) / intWorkingDays) * intNonWorkingDays) + lngNumberOfWorkingDays + intModifier));
    return newDate;
}
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