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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?

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4 Answers 4

up vote 36 down vote accepted

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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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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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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nice work. However, it's a bit complex. –  Frank Wang Nov 30 '11 at 16:25
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
    
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
    
+1 for being general! –  Paul Hiemstra 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

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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