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I want to replace non-ascii characters (for now, only spanish), by their ascii equivalent. If I have "á", I want to replace it with "a" and so on.

I built this function (works fine), but I don't want to use a loop (including internal loops like sapply).

latin2ascii<-function(x) {
if(!is.character(x)) stop ("input must be a character object")
require(stringr)
mapL<-c("á","é","í","ó","ú","Á","É","Í","Ó","Ú","ñ","Ñ","ü","Ü")
mapA<-c("a","e","i","o","u","A","E","I","O","U","n","N","u","U")
for(y in 1:length(mapL)) {
  x<-str_replace_all(x,mapL[y],mapA[y])
  }
x
}

Is there an elegante way to solve it? Any help, suggestion or modification is appreciated

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2 Answers 2

up vote 5 down vote accepted

gsubfn() in the package of the same name is really nice for this sort of thing:

library(gsubfn)

# Create a named list, in which:
#   - the names are the strings to be looked up
#   - the values are the replacement strings
mapL <- c("á","é","í","ó","ú","Á","É","Í","Ó","Ú","ñ","Ñ","ü","Ü")
mapA <- c("a","e","i","o","u","A","E","I","O","U","n","N","u","U")

# ll <- setNames(as.list(mapA), mapL) # An alternative to the 2 lines below
ll <- as.list(mapA)
names(ll) <- mapL


# Try it out
string <- "ÍÓáÚ"
gsubfn("[áéíóúÁÉÍÓÚñÑüÜ]", ll, string)
# [1] "IOaU"

Edit:

G. Grothendieck points out that base R also has a function for this:

A <- paste(mapA, collapse="")
L <- paste(mapL, collapse="")
chartr(L, A, "ÍÓáÚ")
# [1] "IOaU"
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Thanks! works perfectly. Only one question (just to know); do you know if the gsubfn function use any kind of internal loop? Should be faster than sapply? –  Álvaro May 22 '12 at 16:00
    
@Álvaro -- I don't think gsubfn() is particularly fast -- 'just' convenient and elegant. –  Josh O'Brien May 22 '12 at 16:28
1  
Also see chartr in the base of R which seems ok for the problem as stated although if there are variations in the real problem such as replacing two character sequences then gsubfn could still handle it but not chartr. –  G. Grothendieck May 22 '12 at 18:53
    
@G.Grothendieck -- Thanks for pointing that out. I've appended it to the answer. –  Josh O'Brien May 22 '12 at 20:27

I like the version by Josh, but I thought I might add another 'vectorized' solution. It returns a vector of unaccented strings. It also only relies on the base functions.

x=c('íÁuÚ','uíÚÁ')

mapL<-c("á","é","í","ó","ú","Á","É","Í","Ó","Ú","ñ","Ñ","ü","Ü")
mapA<-c("a","e","i","o","u","A","E","I","O","U","n","N","u","U")
split=strsplit(x,split='')
m=lapply(split,match,mapL)
mapply(function(split,m) paste(ifelse(is.na(m),split,mapA[m]),collapse='') , split, m)
# "iAuU" "uiUA"
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