17

I have a data frame like this:

name         weight
r apple         0.5
y pear          0.4
y cherry        0.1
g watermelon    5.0
pp grape        0.5
y apple pear    0.4
...  ...

I would like to remove all characters before the first white space in the name column. Can anybody give me a favor? Thank you!

4 Answers 4

34

Try this:

sub(".*? ", "", D$name)

Edit:

The pattern is looking for any character zero or more times (.*) up until the first space, and then capturing the one or more characters ((.+)) after that first space. The ? after .* makes it "lazy" rather than "greedy" and is what makes it stop at the first space found. So, the .*? matches everything before the first space, the space matches the first space found.

1
  • This works great, however, what does pattern command of the sub() mean?
    – B C
    Dec 4, 2018 at 18:41
8

If D is your data frame, try

sub(".+? ", "", D$name)
4
  • Sorry, I tried but for "y apple pear", it will give me only pear not the apple pear. I would like to remove everything before the first space not the last space. Thank you, though!
    – cutebunny
    Sep 24, 2015 at 17:20
  • 2
    Make the pattern: "^[^ ]+ "
    – IRTFM
    Sep 24, 2015 at 17:26
  • 1
    Try changing the pattern to ".+? "
    – C_Z_
    Sep 24, 2015 at 17:27
  • Sorry, I forgot how greedy regular expressions can be. Thanks, BondedDust and CactusWoman for keeping me honest.
    – Benjamin
    Sep 24, 2015 at 17:29
3

The following solution does not use gsub but it can be applied to a dataframe using a pipe operator %>%.

library(tidyverse)

# The data
df <- structure(list(name = c("r apple", "y pear", "y cherry", "g watermelon",
        "pp grape", "y apple pear"), weight = c(0.5, 0.4, 0.1, 5.0, 0.5, 0.4)),
        class = "data.frame", row.names = c(NA, -6L))

# Remove the first characters preceding a white space in the column "name"
df2 <- df %>% 
        mutate(name = str_replace(name, "^\\S* ", ""))

The regular expression "^\\S* " search for all characters from the beginning of the string until the first white space.

2

Let's say your data frame is called 'df'

library(reshape2)    
df$name = colsplit(df$name," ", names = c("chuck","name"))[,2]

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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