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I'm trying to write an R function to calculate the number of weekdays between two dates. For example, Nweekdays('01/30/2011','02/04/2011') would equal 5.

Similar to this question. Thanks!

/edit: @J. Winchester's answer is great, but I was wondering if anyone could think of a way to vectorize this, so that it'll work on 2 columns of dates. Thanks! /edit 2: Thanks again!

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up vote 16 down vote accepted
Date1 <- as.Date("2011-01-30")
Date2 <- as.Date("2011-02-04")    
sum(!weekdays(seq(Date1, Date2, "days")) %in% c("Saturday", "Sunday"))

EDIT: And Zach said, let there be Vectorize :)

Dates1 <- as.Date("2011-01-30") + rep(0, 10)
Dates2 <- as.Date("2011-02-04") + seq(0, 9)
Nweekdays <- Vectorize(function(a, b) 
  sum(!weekdays(seq(a, b, "days")) %in% c("Saturday", "Sunday")))
Nweekdays(Dates1, Dates2)
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Thank you, that's very elegant – Zach Feb 18 '11 at 22:24
    
@J. Winchester Can you think of an easy way to vectorize this function so it works on more than one date at a time? – Zach Feb 18 '11 at 23:32
    
@Zach. Since there is no loop or apply, isn't it already vectorized? You could write the day check into a separate function, then apply that function to all your dates, but that seems like a needless complication. – J. Won. Feb 18 '11 at 23:53
    
@Zach: Never mind, it took me some mental digesting to remember what vectorize means. Edited the answer. – J. Won. Feb 19 '11 at 2:29
    
Will that work in a non-English locale? You need to get the words for Saturday and Sunday in the current locale and check for those. – Spacedman Feb 19 '11 at 11:36

I wrote this one, but the other answer is better :)

Nweekdays <- function(a,b)
{
dates <- as.Date(as.Date(a,"%m/%d/%y",origin="1900-01-01"):as.Date(b,"%m/%d/%y",origin="1900-01-01"),origin="1900-01-01")
days <- format(dates,"%w")[c(-1,-length(dates))]
return(sum(!days%in%c(0,6)))
}

Nweekdays('01/30/2011','02/04/2011')
[1] 3

EDIT: Calculates how many weekdays are in between of the two specified days.

Edit:

Taking J. Winchesters advice, the function could be streamlined as:

    Nweekdays <- function(a,b)
{
dates <- as.numeric((as.Date(a,"%m/%d/%y")):(as.Date(b,"%m/%d/%y")))
dates <- dates[- c(1,length(dates))]
return(sum(!dates%%7%in%c(0,6)))
}

Some results:

> Nweekdays('01/30/2011','02/04/2011')
[1] 4
> 
> Nweekdays('01/30/2011','01/30/2011')
[1] 0
> 
> Nweekdays('01/30/2011','01/25/2011')
[1] 3

Note that this is locale independent. (On that topic, how do I change locale anyway?)

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1  
I started out along those lines, this should be faster than mine if you streamlined it. Converting your date sequence to a numeric vector lets you go modulo %% 7 and drop all the weekend days (eg, 2:3 if your origin is the default). – J. Won. Feb 19 '11 at 0:19

I use the following approach - first a helper:

weekDays <- function(UPPER = TRUE) {
    days <- c('MONDAY', 'TUESDAY', 'WEDNESDAY',
      'THURSDAY', 'FRIDAY', 'SATURDAY', 
      'SUNDAY')
    if(!UPPER) return(.Internal(tolower(days))) 
    days
}

... and now the main function:

NumWeekDays <- function(dd, Xdays = c('saturday', 'sunday')) {
    # a function to count the number of non-Xdays in a month
    # >
    # first check if Xdays is of correct format
    stopifnot( all(.Internal(tolower(Xdays)) %in% weekDays(UP = FALSE)))
    # >
    # a helper function to find the number of non-X days between two dates
    NonXDays <- function(startDate, endDate, Xdays) {
        sum(!(.Internal(tolower(weekdays(seq(startDate, endDate, 'day')))) %in% 
              .Internal(tolower(Xdays))))
    }
    startDate <- as.Date(as.yearmon(index(dd)), frac = 0)
    endDate <- as.Date(as.yearmon(index(dd)), frac = 1)
    vapply(1:nrow(dd), 
           FUN = function(i) NonXDays(startDate[i], 
                                      endDate[i], 
                                      Xdays = c('saturday', 'sunday')), 
           FUN.VALUE = numeric(1))
}

Example:

set.seed(1)
dx <- apply.monthly(xts(rnorm(600), order.by = Sys.Date() + 1:600), mean)

R> NumWeekDays(dx)
 [1] 23 21 22 23 20 23 22 20 22 22 21 22 23 21 22 22 21 23 21 21
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