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I need to find 2 elegant complete implementations of

public static DateTime AddBusinessDays(this DateTime date, int days)
{
 // code here
}

and 

public static int GetBusinessDays(this DateTime start, DateTime end)
{
 // code here
}

O(1) preferable (no loops).

EDIT: By business days i mean working days (Monday, Tuesday, Wednesday, Thursday, Friday). No holidays, just weekends excluded.

I already have some ugly solutions that seem to work but i wonder if there are elegant ways to do this. Thanks


This is what i've written so far. It works in all cases and does negatives too. Still need a GetBusinessDays implementation

public static DateTime AddBusinessDays(this DateTime startDate,
                                         int businessDays)
{
    int direction = Math.Sign(businessDays);
    if(direction == 1)
    {
        if(startDate.DayOfWeek == DayOfWeek.Saturday)
        {
            startDate = startDate.AddDays(2);
            businessDays = businessDays - 1;
        }
        else if(startDate.DayOfWeek == DayOfWeek.Sunday)
        {
            startDate = startDate.AddDays(1);
            businessDays = businessDays - 1;
        }
    }
    else
    {
        if(startDate.DayOfWeek == DayOfWeek.Saturday)
        {
            startDate = startDate.AddDays(-1);
            businessDays = businessDays + 1;
        }
        else if(startDate.DayOfWeek == DayOfWeek.Sunday)
        {
            startDate = startDate.AddDays(-2);
            businessDays = businessDays + 1;
        }
    }

    int initialDayOfWeek = Convert.ToInt32(startDate.DayOfWeek);

    int weeksBase = Math.Abs(businessDays / 5);
    int addDays = Math.Abs(businessDays % 5);

    if((direction == 1 && addDays + initialDayOfWeek > 5) ||
         (direction == -1 && addDays >= initialDayOfWeek))
    {
        addDays += 2;
    }

    int totalDays = (weeksBase * 7) + addDays;
    return startDate.AddDays(totalDays * direction);
}
share|improve this question
8  
Are there elegant solutions when it comes to something as illogical as dates? –  Wyatt Barnett Jun 25 '09 at 15:54
2  
Donno. That's why i asked. –  AZ. Jun 25 '09 at 15:57
    
Are you conerned with Holidays? –  James Conigliaro Jun 25 '09 at 15:59
    
Are you conerned with Holidays? – James Conigliaro . No –  AZ. Jun 25 '09 at 16:01
5  
Voting down people who are trying to help is not a winning strategy. –  Jamie Ide Jun 25 '09 at 16:24

8 Answers 8

up vote 57 down vote accepted

Latest attempt for your first function:

public static DateTime AddBusinessDays(DateTime date, int days)
{
    if (days < 0)
    {
        throw new ArgumentException("days cannot be negative", "days");
    }

    if (days == 0) return date;

    if (date.DayOfWeek == DayOfWeek.Saturday)
    {
        date = date.AddDays(2);
        days -= 1;
    }
    else if (date.DayOfWeek == DayOfWeek.Sunday)
    {
        date = date.AddDays(1);
        days -= 1;
    }

    date = date.AddDays(days / 5 * 7);
    int extraDays = days % 5;

    if ((int)date.DayOfWeek + extraDays > 5)
    {
        extraDays += 2;
    }

    return date.AddDays(extraDays);

}

The second function, GetBusinessDays, can be implemented as follows:

public static int GetBusinessDays(DateTime start, DateTime end)
{
    if (start.DayOfWeek == DayOfWeek.Saturday)
    {
        start = start.AddDays(2);
    }
    else if (start.DayOfWeek == DayOfWeek.Sunday)
    {
        start = start.AddDays(1);
    }

    if (end.DayOfWeek == DayOfWeek.Saturday)
    {
        end = end.AddDays(-1);
    }
    else if (end.DayOfWeek == DayOfWeek.Sunday)
    {
        end = end.AddDays(-2);
    }

    int diff = (int)end.Subtract(start).TotalDays;

    int result = diff / 7 * 5 + diff % 7;

    if (end.DayOfWeek < start.DayOfWeek)
    {
        return result - 2;
    }
    else{
        return result;
    }
}
share|improve this answer
    
For the second one, one solution is to take the difference between date and date+days. This is nice in that it guarantees that the two functions will sync properly, and it removes redundancy. –  Brian Jun 25 '09 at 16:20
1  
@Patrick: Should be fixed now - hope you don't mind the edit. (Just rollback if I've done something silly.) –  Noldorin Jun 25 '09 at 16:31
    
Feed current date, run for 0 to 10 business days, it always fail on Wednesday. –  Adrian Godong Jun 25 '09 at 16:35
    
latest posting seems to work okay –  Patrick McDonald Jun 25 '09 at 16:48
1  
Yeah, we got there in the end. (I say 'we' for my tiny contribution!) Up-voted for the effort. –  Noldorin Jun 25 '09 at 16:53

using Fluent DateTime:

var now = DateTime.Now;
var dateTime1 = now.AddBusinessDays(3);
var dateTime2 = now.SubtractBusinessDays(5);

internal code is as follows

    /// <summary>
    /// Adds the given number of business days to the <see cref="DateTime"/>.
    /// </summary>
    /// <param name="current">The date to be changed.</param>
    /// <param name="days">Number of business days to be added.</param>
    /// <returns>A <see cref="DateTime"/> increased by a given number of business days.</returns>
    public static DateTime AddBusinessDays(this DateTime current, int days)
    {
        var sign = Math.Sign(days);
        var unsignedDays = Math.Abs(days);
        for (var i = 0; i < unsignedDays; i++)
        {
            do
            {
                current = current.AddDays(sign);
            }
            while (current.DayOfWeek == DayOfWeek.Saturday ||
                current.DayOfWeek == DayOfWeek.Sunday);
        }
        return current;
    }

    /// <summary>
    /// Subtracts the given number of business days to the <see cref="DateTime"/>.
    /// </summary>
    /// <param name="current">The date to be changed.</param>
    /// <param name="days">Number of business days to be subtracted.</param>
    /// <returns>A <see cref="DateTime"/> increased by a given number of business days.</returns>
    public static DateTime SubtractBusinessDays(this DateTime current, int days)
    {
        return AddBusinessDays(current, -days);
    }
share|improve this answer
    
This is the only solution that actually worked for me when converted to VB.Net –  Nicholas Oct 1 '09 at 18:50
    
Nice and elegant. –  Ari Braginsky Apr 28 '10 at 18:15
    
awsome job, elegant for sure –  Booji Boy Jan 7 '12 at 20:52

I created an extension that allows you to add or subtract business days. Use a negative number of businessDays to subtract. I think it's quite an elegant solution. It seems to work in all cases.

namespace Extensions.DateTime
{
    public static class BusinessDays
    {
        public static System.DateTime AddBusinessDays(this System.DateTime source, int businessDays)
        {
            var dayOfWeek = businessDays < 0
                                ? ((int)source.DayOfWeek - 12) % 7
                                : ((int)source.DayOfWeek + 6) % 7;

            switch (dayOfWeek)
            {
                case 6:
                    businessDays--;
                    break;
                case -6:
                    businessDays++;
                    break;
            }

            return source.AddDays(businessDays + ((businessDays + dayOfWeek) / 5) * 2);
        }
    }
}

Example:

using System;
using System.Windows.Forms;
using Extensions.DateTime;

namespace AddBusinessDaysTest
{
    public partial class Form1 : Form
    {
        public Form1()
        {
            InitializeComponent();
            label1.Text = DateTime.Now.AddBusinessDays(5).ToString();
            label2.Text = DateTime.Now.AddBusinessDays(-36).ToString();
        }
    }
}
share|improve this answer
    
The result is questionable if the source date is a Saturday or Sunday. For example: Saturday + 1 business day results in Tuesday, where I'd rather expect Monday. –  Slauma Apr 18 at 14:00
public static DateTime AddBusinessDays(this DateTime date, int days)
{
    date = date.AddDays((days / 5) * 7);

    int remainder = days % 5;

    switch (date.DayOfWeek)
    {
        case DayOfWeek.Tuesday:
            if (remainder > 3) date = date.AddDays(2);
            break;
        case DayOfWeek.Wednesday:
            if (remainder > 2) date = date.AddDays(2);
            break;
        case DayOfWeek.Thursday:
            if (remainder > 1) date = date.AddDays(2);
            break;
        case DayOfWeek.Friday:
            if (remainder > 0) date = date.AddDays(2);
            break;
        case DayOfWeek.Saturday:
            if (days > 0) date = date.AddDays((remainder == 0) ? 2 : 1);
            break;
        case DayOfWeek.Sunday:
            if (days > 0) date = date.AddDays((remainder == 0) ? 1 : 0);
            break;
        default:  // monday
            break;
    }

    return date.AddDays(remainder);
}
share|improve this answer

With internationalization, this is difficult. As mentioned in other threads here on SOF, holidays differ from country to country certainly and even from province to province. Most governments do not schedule out their holidays more than five years or do.

share|improve this answer
4  
I can't understand why someone downvoted Ash: it's true that it's not an answer to what was asked, but Ash IS TOTALLY RIGHT, I have the very same issue: my software has to run in Europe (Mon-Sun) AND Africa/Asia (Sat-Fri). To downvote this, one has to be an ass (the animal, just in case) who can't see beyond his nose: it looks like there are people on SO who are afraid of knowledge, just don't want to know and prefer to remain on their reassuring ignorance: but they don't do a service to AZ in first place (and to themself too, but it's their own business) –  Turro Jun 26 '09 at 10:20
1  
i (the OP) downvoted because i thought i made it clear in the question what are the constraints and it seemed Ash dind not pay attention. I apologize if that hurt someones feeling but is just a downvote –  AZ. Jun 26 '09 at 10:59
    
@AZ : Where in the original question did you mention internationalization constraints? –  Ash Machine Apr 27 '11 at 22:57
    
@AshMachine, exactly. He didn't. –  jwg Mar 8 '13 at 16:26

The only real solution is to have those calls access a database table that defines the calendar for your business. You could code it for a Monday to Friday workweek without too much difficult but handling holidays would be a challenge.

Edited to add non-elegant and non-tested partial solution:

public static DateTime AddBusinessDays(this DateTime date, int days)
{
    for (int index = 0; index <= days; index++;)
    {
        switch (date.DayOfWeek)
        {
            case DayOfWeek.Friday:
                date.AddDays(3);
                break;
            case DayOfWeek.Saturday:
                date.AddDays(2);
                break;
            default:
                date.AddDays(1);
                break;
         }
    }
    return date;
}

Also I violated the no loops requirement.

share|improve this answer
    
don't care about holidays –  AZ. Jun 25 '09 at 16:00
    
I don't think the Saturday case would ever be hit. –  CoderDennis Jun 25 '09 at 16:51
    
@Dennis -- it would if the date passed in is a Saturday. –  Jamie Ide Jun 25 '09 at 17:50

Hope this helps someone.

private DateTime AddWorkingDays(DateTime addToDate, int numberofDays)
    {
        addToDate= addToDate.AddDays(numberofDays);
        while (addToDate.DayOfWeek == DayOfWeek.Saturday || addToDate.DayOfWeek == DayOfWeek.Sunday)
        {
            addToDate= addToDate.AddDays(1);
        }
        return addToDate;
    }
share|improve this answer
    public static DateTime AddBusinessDays(DateTime date, int days)
    {
        if (days == 0) return date;
        int i = 0;
        while (i < days)
        {
            if (!(date.DayOfWeek == DayOfWeek.Saturday ||  date.DayOfWeek == DayOfWeek.Sunday)) i++;  
            date = date.AddDays(1);
        }
        return date;
    }
share|improve this answer
    
in the future add a bit more context for answer and maybe why you've put what you have :) –  dax Sep 16 '13 at 19:12

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