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I would like to find all of the Tuesdays between two dates. But if the Tuesday falls on a user-defined list of holidays, then I would like Wednesday instead.

This code works in my tests, but it is pretty janky and I am afraid it will fail silently.

low.date <- "1996-01-01"
high.date <- "1997-01-01"
holidays = c("01-01", "07-04", "12-25")
tues <- seq(as.Date(low.date), as.Date(high.date), by = 1) 
tues <- subset(tues, format(tues, "%a") == "Tue")
tues <- ifelse(format(tues, "%m-%d") %in% holidays, tues + 1, tues)
tues <- as.Date(tues, origin = "1970-01-01")

Thanks! I see answers pointing to the timeDate package, but I only see methods for finding business days or holidays. Is there a cleaner/safer logic than what I'm using?

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Only a minor comment but re-using the variable tues like that will make it harder to test. If there were an error in the second assignment to tues, say, it will be overwritten twice more by the end so it will be hard to trace back. –  G. Grothendieck Jan 22 '11 at 23:43
    
@G -- Good call. Thanks. Sometimes I think I am conserving RAM, but that's ridiculous in this case. –  Richard Herron Jan 23 '11 at 14:42
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2 Answers 2

up vote 2 down vote accepted

POSIXlt in the base package gives you access to wday as a number, which is a little safer since names of days change from system to system.

low.date <- "1996-01-01"
high.date <- "1997-01-01"
holidays <- c("01-01", "07-04", "12-25")

all.days <- seq(as.Date(low.date), as.Date(high.date), by = "day")

# Tuesday is Day 2 of the week
all.tues <- all.days[as.POSIXlt(all.days)$wday == 2]
tues.holidays <- format(all.tues, "%m-%d") %in% holidays
all.tues[tues.holidays] <- all.tues[tues.holidays] + 1
share|improve this answer
    
This seems worse than the poster's solution. –  G. Grothendieck Jan 22 '11 at 22:59
    
Cleaned it up a bit, but I don't think it can get much clearer. The code in the original question sequences out all the days, then reformats and string compares every day to see if it's a Tuesday, then reformats every one to see if it's a holiday, and reassigns every day with an ifelse whether it needed to change or not. Sorry, but this is better. –  J. Winchester Jan 23 '11 at 0:34
    
It needs to stick to using "Date" class as in the poster's solution. The introduction of calculations based on seconds is particularly undesirable. –  G. Grothendieck Jan 23 '11 at 0:44
    
best of both worlds –  J. Winchester Jan 23 '11 at 1:57
    
ok. I have reversed the down vote. –  G. Grothendieck Jan 23 '11 at 3:15
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It's difficult to modify the logic of your solution. But here is a different form using wday function from lubridate package.

hol_tue <-  wday(tues) == 3L & format(tues, "%m-%d") %in% holidays
wday(tues)[hol_tue] <- 4

Slightly inconveniently in lubridate package day count starts from Sunday with Sunday being day 1 as opposed to POSIXlt where it's 0.

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Why is starting on Sunday inconvienant? You have to start the week somewhere and most businesses I have worked for used timesheets that started the week with Sunday. The standard strftime function also counts Sunday as day 0. –  Sharpie Jan 23 '11 at 0:34
    
@Sharpie, 0 is not 1 :) This was my point (updated). I don't mind starting with Sunday but call it 0. POSIXlt refers to Tuesdays as the second day. I don't know how it is in US but in Europe when you say second day of the week you mean Tuesday. –  VitoshKa Jan 23 '11 at 9:20
1  
We made Sunday 1 to be consistent with what most people expect: the first day of the month is 1, the first day of the year is 1, January is month one, the first year is 1, ... I don't know who thinks this is a good idea: as.POSIXlt(ymd(20080101))$year –  hadley Jan 23 '11 at 15:45
1  
Another approach is wday(tues, T) == "Tues" which is easier to understand when you come back to the code –  hadley Jan 23 '11 at 15:47
2  
Another way to write the code would be wday(tues) <- wday(tues) + days(hol_tue) based on conversion of FALSE to 0 and TRUE to 1. –  hadley Jan 23 '11 at 22:50
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