2

I have such a data frame(df):

col1  col2
a     2      
a     3 
b     7
b     5
c     4
c     2
c     1
d     5
d     7

Namely;

df<-data.frame(col1=c("a","a","b","b","c","c","c","d","d"), col2=c(2,3,7,5,4,2,1,5,7))

Desired output data frame(df1) is:

col1  col2
b     7
b     5
d     5
d     7

For example,

first row of df in col1 is 2. Related col1 value is "a". Then delete all rows which include "a" in col1. In the same way, 6th row of col2 is equal to 2. Related col1 value is equal to "c". Then delete all rows which include "c" in col1.

How can I do that using R? I will be very glad for any help. Thanks a lot.

  • 1
    Sorry. I meant to add a short explanation. It's dirty, but it just subsets df based on a condition. It finds those unique col1 values which have col2 values less than or equal to 2 and removes them from df. df[-which(df$col1 %in% unique(df$col1[which(df$col2 <=2)])),] – Tad Dallas Mar 23 '15 at 19:00
  • 2
    I have no idea what you're asking: df[with(df, ave(col2 == 2, col1, FUN = Negate(any))), ] ? – rawr Mar 23 '15 at 19:04
  • @rawr nice one! – David Arenburg Mar 23 '15 at 19:04
  • @Ted Dallas, thanks also for your solution:) . And also thanks to rawr:). – oercim Mar 23 '15 at 19:54
2

You could try

library(data.table)
setDT(df)[, .SD[!col1 %in% col1[col2==2]]]
#    col1 col2
#1:    b    7
#2:    b    5
#3:    d    5
#4:    d    7

Or using dplyr

library(dplyr)
filter(df, !col1 %in% col1[col2==2])
  • Thanks akrun, it worked very well. – oercim Mar 23 '15 at 19:03
  • No love for the base R solution(s)?! :) @akrun 's solution is solid though. – Tad Dallas Mar 23 '15 at 19:05
  • @TadDallas I think the `rawrs' solution is pretty good. – akrun Mar 23 '15 at 19:07
  • 1
    @akrun You can formulate your second solution also with base R subset(df,!col1%in%col1[col2==2]) – cryo111 Mar 23 '15 at 19:42
  • @cryo111 Thanks, yes it can be done. I see that you posted the solution and deleted it. Why did you delete it? – akrun Mar 24 '15 at 3:38
2

Base solution with subset.

subset(df,!col1%in%col1[col2==2])
  • Yes, this is simple – akrun Mar 24 '15 at 15:19

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