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This question already has an answer here:

I need to calculate : a) the maximum and minimum (temperature) values for every row of my data set(200 such rows). b) Every column corresponds to 'Jan', 'Feb' ... 'Dec' (12 columns). Thus, I need to find the month associated with maximum and minimum temperature.

For (a) this works:

 i= 1
  temp.max = NULL
  for(i in 1:200)
  { temp.max[i]<- max(temp.data[i,1:12])}

Can someone please help me with (b)?

eg. If the dataset looks like :

Jan Feb Mar Apr May Jun ... Dec
1     2   3   4  12   6       2

Max Value is 12. I need to output that, 'May' is the corresponding month.

marked as duplicate by Frank r Mar 24 '16 at 19:39

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max.col is handy for this (I've just repeated your first row 3 times to show it works for multiple rows):

names(dat)[max.col(dat,ties.method="first")]
#[1] "May" "May" "May"

data used:

dat <- setNames(data.frame(matrix(c(1,2,3,4,12,6,2),nrow=1)),month.abb[1:7])
dat <- dat[rep(1,3),]
  • ... but the OP said they need to do this for a data frame with 200 rows ... – Ben Bolker Apr 15 '15 at 1:00
  • @BenBolker - it's vectorized. – thelatemail Apr 15 '15 at 1:00
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    cool. You learn something every day. Interesting that there's no min.col ... are you just supposed to multiply by -1? – Ben Bolker Apr 15 '15 at 1:00
  • @BenBolker - I usually just put a -ve sign in front, yep. A bit clunky admittedly. – thelatemail Apr 15 '15 at 1:02
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maxvals <- apply(mydata,1,max)
maxlocs <- colnames(mydata)[apply(mydata,1,which.max)]

and similarly for min/which.min

By the way, your solution to (a) puts you in the second circle of Patrick Burns's R Inferno; the inefficiency probably won't matter in this application but could come back to bite you later ...

  • Hi! The code is working. However, I am not able to iterate across the 200 rows I have. This is the code : i= 1 temp.max = NULL for(i in 1:200) {maxvals <- apply(litter[i,1:12],1,max) maxlocs <- colnames(litter[i,1:12])[apply(litter[i,1:12],1,which.max)] } – user4021557 Apr 15 '15 at 1:01
  • you don't need to do it 200 times! Just L <- litter[,1:12]; apply(L,1,max) and colnames(L)[apply(L,1,which.max)] -- or use @thelatemail's slightly more efficient answer. – Ben Bolker Apr 15 '15 at 1:07
  • Hi! I am running into an error which says : "invalid subscript type 'list'. Can you please help me? – user4021557 Jul 15 '15 at 2:17