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I have a data frame that looks like this:

species<-"ABC"
ind<-rep(1:4,each=24)
hour<-rep(seq(0,23,by=1),4)
month<-rep(seq(1,12),8)
depth<-runif(length(ind),1,50)
df<-data.frame(species,ind,month,hour,depth)

What I would like is to use the column month to specify intervals for each season and return those values in a new column from the same data frame. I was using this code for the seasons, which seems to work fine,

# Classify months into seasons

summer<-c(1,2,12)
fall<-c(3,4,5)
winter<-c(6,7,8)
spring<-c(9,10,11)

# Create a new column with seasons

df$season<-NA
for(i in 1:nrow(df)){
  if(df$month[i]%in%summer){df$season[i]<-"1-summer"} else
    if(df$month[i]%in%fall){df$season[i]<-"2-fall"} else
      if(df$month[i]%in%winter){df$season[i]<-"3-winter"} else
        if(df$month[i]%in%spring){df$season[i]<-"spring"} 

}

However, this loop in already inside of a bigger loop with more complex and bigger data bases. So I was looking for a faster, more efficient approach. The reason that I am using a loop rather than cutting or subsetting my original data frame is because the first loop that I am using is separating and performing analyses on individual animals. The length of resulting data frame varies between animals and one of the problems that I was having is that not all animals were present in all months, so when I was trying to assign seasons inside the loop for animals that were not present on a particular season, then R gave me an error message...

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Have you seen this? stackoverflow.com/questions/9500114/… –  Roman Luštrik Dec 19 '12 at 11:50

2 Answers 2

up vote 1 down vote accepted

I'd just generate the lookup table for season names and apply that:

> season.names <- rep("",12)
> season.names[summer] <- "1-summer"
> season.names[fall] <- "2-fall"
> season.names[winter] <- "3-winter"
> season.names[spring] <- "4-spring"
> season.names
 [1] "1-summer" "1-summer" "2-fall"   "2-fall"   "2-fall"   "3-winter" "3-winter"
 [8] "3-winter" "4-spring" "4-spring" "4-spring" "1-summer"
> df$season <- season.names[df$month]
> head(df)
  species ind month hour     depth   season
1     ABC   1     1    0 41.643471 1-summer
2     ABC   1     2    1 36.055533 1-summer
3     ABC   1     3    2  1.901639   2-fall
4     ABC   1     4    3  7.737539   2-fall
5     ABC   1     5    4 35.327364   2-fall
6     ABC   1     6    5  9.156978 3-winter
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I am trying to use the same approach for "day"/"night" but I noticed that the last "night" for hour 23 is not showing so that code does not run properly. Any suggestions? day<-seq(6,17,1) alltimes<-seq(0,23,1) night<-alltimes[!alltimes%in%day] diel.names<-rep("",24) diel.names[day]<-"day" diel.names[night]<-"night" diel.names –  user1626688 Dec 20 '12 at 0:04
    
The problem is that the hours start at 0 and go to 23, but the vector diel.names has to be indexed from 1 to 24. One way to deal with that is just to have index i refer to hour i-1: diel.names[day+1]<-"day" ; diel.names[night+1]<-"night"; df$diel <- diel.names[df$hour+1]. –  Jonathan Dursi Dec 20 '12 at 3:29
seasons <- c("1-summer", "2-fall", "3-winter", "spring")
df$season2 <- factor(trunc(df$month %% 12 / 3) + 1, labels = seasons)
table(df$season, df$season2)

You can convert df$season2 to character if you wish.

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It does not work. It gives me this error message "Error in factor(trunc(df$month%%12/3) + 1, labels = seasons) : invalid labels; length 4 should be 1 or 0" –  user1626688 Dec 19 '12 at 12:32
    
@user1626688 You receive this error because you did not include month in your data frame df. Both djhurio's solution and your loop will work if you add the column month to your data frame. –  Sven Hohenstein Dec 19 '12 at 12:34
    
I am trying to run this code in my real script but it is giving me a similar error message "invalid labels; length 4 should be 1 or 1". In some of the individuals there is only data for October and November. Is this going to be an issue here with this code? –  user1626688 Dec 19 '12 at 12:44
    
Strange, I don't receive the error on example data. Try to simplify if something doesn't work. Drop factor. Does this work? df$season2 <- trunc(df$month %% 12 / 3) + 1 –  djhurio Dec 19 '12 at 14:11
    
The example is fine. This code seems to work fine, but when I try to run the code on real data (which not always have all months because some of the animals in my study were only present for 3 or 4 months) then I get an error message. I am not sure if I need to have all months so that the code can specify all seasons. If for example the months for summer are missing, then I don't know if it will still work? –  user1626688 Dec 19 '12 at 22:11

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