63

I have a list of alphanumeric characters that looks like:

x <-c('ACO2', 'BCKDHB456', 'CD444')

I would like the following output:

x <-c('ACO', 'BCKDHB', 'CD')

4 Answers 4

118

You can use gsub for this:

gsub('[[:digit:]]+', '', x)

or

gsub('[0-9]+', '', x)
# [1] "ACO"    "BCKDHB" "CD" 
0
16

Using stringr

Most stringr functions handle regex

str_replace_all will do what you need

str_replace_all(c('ACO2', 'BCKDHB456', 'CD444'), "[:digit:]", "")
2
  • This is probably the best answer for most people. Commented Feb 14, 2020 at 13:43
  • 3
    str_remove_all from stringr would do this identically without needing the 3rd argument
    – MBorg
    Commented Jun 26, 2022 at 7:36
16

If your goal is just to remove numbers, then the removeNumbers() function removes numbers from a text. Using it reduces the risk of mistakes.

library(tm)

x <-c('ACO2', 'BCKDHB456', 'CD444') 

x <- removeNumbers(x)

x

[1] "ACO"    "BCKDHB" "CD"    
1
  • 2
    Please format your answer and provide information about how your answer is better than the ones that were already posted. Also: Just code usually isn't enough. Can you explain what your solution does? Commented May 31, 2017 at 19:27
6

A solution using stringi:

# your data
x <-c('ACO2', 'BCKDHB456', 'CD444')

# extract capital letters
x <- stri_extract_all_regex(x, "[A-Z]+")

# unlist, so that you have a vector
x <- unlist(x)

Solution in one line:

Screenshot on-liner in R

2
  • Is a nice solution, however I have state names with footnotes (that I want to remove) and by "District of Columbia" I get three character values instead of one. Due to this my output vector is much longer than my input vector. Ideas how to fix this?
    – N.Varela
    Commented Feb 24, 2017 at 21:22
  • You could use this solution, which is going to work for every state but DC, because it's not a state. You'd have to add DC to the state.abb and state.name vectors manually.
    – altabq
    Commented Feb 25, 2017 at 16:50

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