Select rows with min value by group
I got a problems that bugs me for some time… hopefully anybody here can help me.
I got the following data frame
f <- c('a','a','b','b','b','c','d','d','d','d')
v1 <- c(1.3,10,2,10,10,1.1,10,3.1,10,10)
v2 <- c(1:10)
df <- data.frame(f,v1,v2)
f is a factor; v1 and v2 are values. For each level of f, I want only want to keep one row: the one that has the lowest value of v1 in this factor level.
f v1 v2
a 1.3 1
b 2 3
c 1.1 6
d 3.1 8
I tried various things with aggregate, ddply, by, tapply… but nothing seems to work. For any suggestions, I would be very thankful.
Using DWin's solution, tapply
can be avoided using ave
.
df[ df$v1 == ave(df$v1, df$f, FUN=min), ]
This gives another speed-up, as shown below. Mind you, this is also dependent on the number of levels. I give this as I notice that ave
is far too often forgotten about, although it is one of the more powerful functions in R.
f <- rep(letters[1:20],10000)
v1 <- rnorm(20*10000)
v2 <- 1:(20*10000)
df <- data.frame(f,v1,v2)
> system.time(df[ df$v1 == ave(df$v1, df$f, FUN=min), ])
user system elapsed
0.05 0.00 0.05
> system.time(df[ df$v1 %in% tapply(df$v1, df$f, min), ])
user system elapsed
0.25 0.03 0.29
> system.time(lapply(split(df, df$f), FUN = function(x) {
+ vec <- which(x[3] == min(x[3]))
+ return(x[vec, ])
+ })
+ .... [TRUNCATED]
user system elapsed
0.56 0.00 0.58
> system.time(df[tapply(1:nrow(df),df$f,function(i) i[which.min(df$v1[i])]),]
+ )
user system elapsed
0.17 0.00 0.19
> system.time( ddply(df, .var = "f", .fun = function(x) {
+ return(subset(x, v1 %in% min(v1)))
+ }
+ )
+ )
user system elapsed
0.28 0.00 0.28
A data.table
solution.
library(data.table)
DT <- as.data.table(df)
DT[,.SD[which.min(v1)], by = f]
## f v1 v2
## 1: a 1.3 1
## 2: b 2.0 3
## 3: c 1.1 6
## 4: d 3.1 8
Or, more efficiently
DT[DT[,.I[which.min(v1)],by=f][['V1']]]
some benchmarking
f <- rep(letters[1:20],100000)
v1 <- rnorm(20*100000)
v2 <- 1:(20*100000)
df <- data.frame(f,v1,v2)
DT <- as.data.table(df)
f1<-function(){df2<-df[order(df$f,df$v1),]
df2[!duplicated(df2$f),]}
f2<-function(){df2<-df[order(df$v1),]
df2[!duplicated(df2$f),]}
f3<-function(){df[ df$v1 == ave(df$v1, df$f, FUN=min), ]}
f4 <- function(){DT[,.SD[which.min(v1)], by = f]}
f5 <- function(){DT[DT[,.I[which.min(v1)],by=f][['V1']]]}
library(microbenchmark)
microbenchmark(f1(),f2(),f3(),f4(), f5(),times = 5)
# Unit: milliseconds
# expr min lq median uq max neval
# f1() 3254.6620 3265.4760 3286.5440 3411.4054 3475.4198 5
# f2() 1630.8572 1639.3472 1651.5422 1721.4670 1738.6684 5
# f3() 172.2639 174.0448 177.4985 179.9604 184.7365 5
# f4() 206.1837 209.8161 209.8584 210.4896 210.7893 5
# f5() 105.5960 106.5006 107.9486 109.7216 111.1286 5
The .I
approach is the winner (FR #2330 will hopefully render the elegance of the .SD
approach similarly fast when implemented).
With plyr
, I'd use:
ddply(df, .var = "f", .fun = function(x) {
return(subset(x, v1 %in% min(v1)))
}
)
Give that a try and see if it returns what you want.
Another tapply
solution, with no unnecessary scanning of vector with %in%
:
df[tapply(1:nrow(df),df$f,function(i) i[which.min(df$v1[i])]),]
EDIT: This will left only first row in case of a tie.
EDIT2: Impressed by ave
, I've made additional improvements:
df[sapply(split(1:nrow(df),df$f),function(x) x[which.min(df$v1[x])]),]
On my machine (using Joris' benchmark data):
> system.time(df[ df$v1 == ave(df$v1, df$f, FUN=min), ])
user system elapsed
0.022 0.000 0.021
> system.time(df[sapply(split(1:nrow(df),df$f),function(x) x[which.min(df$v1[x])]),])
user system elapsed
0.006 0.000 0.007