Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

How can I subset the following example data frame to only return one observation for the earliest occurance [i.e. min(year)] of each id?

id <- c("A", "A", "C", "D", "E", "F")
year <- c(2000, 2001, 2001, 2002, 2003, 2004)
qty  <- c(100, 300, 100, 200, 100, 500)
df=data.frame(year, qty, id)

In the example above there are two observations for the "A" id at years 2000 and 2001. In the case of duplicate id's, I would like the subset data frame to only include the the first occurance (i.e. at 2000) of the observations for the duplicate id.

df2 = subset(df, ???)

This is what I am trying to return:

df2

year qty id
2000 100  A
2001 100  C
2002 200  D
2003 100  E
2004 500  F

Any assistance would be greatly appreciated.

share|improve this question

4 Answers 4

up vote 8 down vote accepted

You can aggregate on minimum year + id, then merge with the original data frame to get qty:

df2 <- merge(aggregate(year ~ id, df1, min), df1)

# > df2
#   id year qty
# 1  A 2000 100
# 2  C 2001 100
# 3  D 2002 200
# 4  E 2003 100
# 5  F 2004 500
share|improve this answer
    
great intuitive solution. thank you very much. –  MikeTP Jun 27 '12 at 1:18

Using plyr

library(plyr)
## make sure first row will be min (year)
df <- arrange(df, id, year)
df2 <- ddply(df, .(id), head, n = 1)


df2
##   year qty id
## 1 2000 100  A
## 2 2001 100  C
## 3 2002 200  D
## 4 2003 100  E
## 5 2004 500  F

or using data.table. Setting the key as id, year will ensure the first row is the minimum of year.

library(data.table)
DF <- data.table(df, key = c('id','year'))
DF[,.SD[1], by = 'id']

##      id year qty
## [1,]  A 2000 100
## [2,]  C 2001 100
## [3,]  D 2002 200
## [4,]  E 2003 100
## [5,]  F 2004 500
share|improve this answer
2  
Also, for large data.tables, this may be faster: DF[J(unique(DF[,id])), mult="first"]. –  Josh O'Brien Jun 26 '12 at 23:41

Is this what you're looking for? Your second row looks wrong to me (it's the duplicated year, not the first).

> duplicated(df$year)
[1] FALSE FALSE  TRUE FALSE FALSE FALSE
> df[!duplicated(df$year), ]
  year qty id
1 2000 100  A
2 2001 300  A
4 2002 200  D
5 2003 100  E
6 2004 500  F

Edit 1: Er, I completely misunderstood what you were asking for. I'll keep this here for completeness though.

Edit 2:

Ok, here's a solution: Sort by year (so the first entry per ID has the earliest year) and then use duplicated. I think this is the simplest solution:

> df.sort.year <- df[order(df$year), ]
> df.sort.year[!duplicated(df$id),  ]
  year qty id
1 2000 100  A
3 2001 100  C
4 2002 200  D
5 2003 100  E
6 2004 500  F
share|improve this answer
    
thank you, I wasn't aware of the duplicated function –  MikeTP Jun 27 '12 at 1:20

There is likely a prettier way of doing this, but this is what came to mind

# use which() to get index for each id, saving only first
first_occurance <- with(df, sapply(unique(id), function(x) which(id %in% x)[1]))
df[first_occurance,]
#  year qty id
#1 2000 100  A
#3 2001 100  C
#4 2002 200  D
#5 2003 100  E
#6 2004 500  F
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.