37

I run into a problem when converting character of percentage to numeric. E.g. I want to convert "10%" into 10%, but

as.numeric("10%")

returns NA. Do you have any ideas?

64

10% is per definition not a numeric vector. Therefore, the answer NA is correct. You can convert a character vector containing these numbers to numeric in this fashion:

percent_vec = paste(1:100, "%", sep = "")
as.numeric(sub("%", "", percent_vec))

This works by using sub to replace the % character by nothing.

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29

Remove the "%", convert to numeric, then divide by 100.

x <- c("10%","5%")
as.numeric(sub("%","",x))/100
# [1] 0.10 0.05
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8

Get rid of the extraneous characters first:

topct <- function(x) { as.numeric( sub("\\D*([0-9.]+)\\D*","\\1",x) )/100 }
my.data <- paste(seq(20)/2, "%", sep = "")
> topct( my.data )
 [1] 0.005 0.010 0.015 0.020 0.025 0.030 0.035 0.040 0.045 0.050 0.055 0.060 0.065 0.070 0.075 0.080
[17] 0.085 0.090 0.095 0.100

(Thanks to Paul for the example data).

This function now handles: leading non-numeric characters, trailing non-numeric characters, and leaves in the decimal point if present.

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  • 1
    It's more complex because it strips out anything non-numeric that follows the numbers.... – Ari B. Friedman Nov 30 '11 at 16:30
  • 1
    Edited to make it handle preceeding characters as well, and to make it a function that you can re-use. – Ari B. Friedman Nov 30 '11 at 16:36
  • @PaulHiemstra Thanks. I was a bit hesitant to make it too general, and would still probably prefer your solution, since having any non-"%", non-digit characters might be a sign that something isn't really a percentage after all. Thus having an NA returned might be preferable to having it return something sensible. – Ari B. Friedman Nov 30 '11 at 16:38
  • As you said, for a more general function your solution would be preferable. But than it would be called percentChar2numeric() or something and the OP would have to problem with the complexity (which would be hidden in the function). – Paul Hiemstra Nov 30 '11 at 16:40
7

If you're a tidyverse user (and actually also if not) there's now a parse_number function in the readr package:

readr::parse_number("10%")

The advantage is generalization to other common string formats such as:

parse_number("10.5%")
parse_number("$1,234.5")
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  • 2
    I really enjoy all the old SO questions that now have sexy Tidyverse solutions. – Andrew Brēza Dec 11 '18 at 1:20
3

Try with:

> x = "10%"
> as.numeric(substr(x,0,nchar(x)-1))
[1] 10

This works also with decimals:

> x = "10.1232%"
> as.numeric(substr(x,0,nchar(x)-1))
[1] 10.1232

The idea is that the symbol % is always at the end of the string.

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1

I wanted to convert an entire column and combined the above answers.

pct_to_number<- function(x){
  x_replace_pct<-sub("%", "", x)
  x_as_numeric<-as.numeric(x_replace_pct)
  }
df[['ColumnName']] = pct_to_number(df[['ColumnName']])
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  • Thanks Gregor! Modified my response. – nanselm2 Mar 29 '19 at 18:29

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