7

Let's say I have a long character string: pneumonoultramicroscopicsilicovolcanoconiosis. I'd like to use stringr::str_replace_all to replace certain letters with others. According to the documentation, str_replace_all can take a named vector and replaces the name with the value. That works fine for 1 replacement, but for multiple it seems to do it iteratively, so the result is a replacement of the prelast iteration. I'm not sure this is the intended behaviour.

library(tidyverse)
text_string = "developer"
text_string %>% 
  str_replace_all(c(e ="X")) #this works fine
[1] "dXvXlopXr"
text_string %>% 
  str_replace_all(c(e ="p", p = "e")) #not intended behaviour
[1] "develoeer"

Desired result:

[1] "dpvploepr"

Which I get by introducing a new character:

text_string %>% 
  str_replace_all(c(e ="X", p = "e", X = "p"))

It's a usable workaround but hardly generalisable. Is this a bug or are my expectations wrong?

I'd like to also be able to replace n letters with n other letters simultaneously, preferably using either two vectors (like "old" and "new") or a named vector as input.

reprex edited for easier human reading

6
  • Can you do the example on a smaller word? ... This one is confusing :)
    – Sotos
    Jan 9, 2018 at 13:27
  • @sotos. Done. I initially wanted a very long word but I realise it's very difficult to read.
    – biomiha
    Jan 9, 2018 at 13:45
  • 1
    Ok, then chartr will do just fine. Try chartr('pe', 'ep', text_string)
    – Sotos
    Jan 9, 2018 at 13:55
  • Thanks @sotos but I really need to be able to replace 3 or 4 or n letters simultaneously, i.e. a generalisable use case. I only changed the reprex for easier human reading.
    – biomiha
    Jan 9, 2018 at 14:09
  • You can do multiple letters too. Try chartr('pedl', 'epf5', x)
    – Sotos
    Jan 9, 2018 at 14:10

4 Answers 4

7

I'm working on a package to deal with the type of problem. This is safer than the qdap::mgsub function because it does not rely on placeholders. It fully supports regex as the matching and the replacement. You provide a named list where the names are the strings to match on and their value is the replacement.

devtools::install_github("bmewing/mgsub")
library(mgsub)
mgsub("developer",list("e" ="p", "p" = "e"))
#> [1] "dpvploepr"

qdap::mgsub(c("e","p"),c("p","e"),"developer")
#> [1] "dpvploppr"
4
  • Yes, this is exactly it. Thank you.
    – biomiha
    Jan 10, 2018 at 14:15
  • A coworker posed this problem as a random problem yesterday so this was very fortuitous timing!
    – Mark
    Jan 10, 2018 at 14:16
  • Looks like mgsub() now accepts a vector of patterns and a vector of replacements
    – stevec
    Nov 25, 2020 at 14:56
  • A lot has happened with the mgsub package since this answer was written
    – Mark
    Nov 25, 2020 at 15:03
2

My workaround would be to take advantage of the fact that str_replace_all can take functions as an input for the replacement.

library(stringr)
text_string = "developer"
pattern <- "p|e"
fun <- function(query) {
    if(query == "e") y <- "p"
    if(query == "p") y <- "e"
    return(y)
}

str_replace_all(text_string, pattern, fun)

Of course, if you need to scale up, I would suggest to use a more sophisticated function.

3
  • Definitely the best answer so far. I'll look into a generalisable way of setting up the if statements.
    – biomiha
    Jan 9, 2018 at 14:11
  • I guess it really depends on your use-case/where the information comes form but I guess some sort of table structure with one column for pattern and one with replacement would be best. You can find an example with colors and rgb values in the documentation of str_replace_all. Maybe that will inspire you :) Jan 9, 2018 at 14:38
  • 1
    this is a very nice solution. Instead of the somewhat clunky series of if statements, an option would be the use of switch: fun <- function(query) switch(query, e = "p", p = "e"). also no need to return(x) in that case
    – tjebo
    Feb 20, 2021 at 18:20
1

The iterative behavior is intended. That said, we can use write our own workaround. I am going to use character subsetting for the replacement.

In a named vector, we can look up things by name and get a replacement value for each name. This is like doing all the replacement simultaneously.

rules <- c(a = "X", b = "Y", X = "a")
chars <- c("a", "a", "b", "X", "X")
rules[chars]
#>   a   a   b   X   X 
#> "X" "X" "Y" "a" "a"

So here, looking up "a" in the rules vector gets us "X", effectively replacing "a" with "X". The same goes for the other characters.

One problem is that names without a match yield NA.

rules <- c(a = "X", b = "Y", X = "a")
chars <- c("a", "Y", "Z")
rules[chars]
#>    a <NA> <NA> 
#>  "X"   NA   NA

To prevent the NAs from appearing, we can expand the rules to include any new characters so that a character is replaced by itself.

rules <- c(a = "X", b = "Y", X = "a")
chars <- c("a", "Y", "Z")
no_rule <- chars[! chars %in% names(rules)]
rules2 <- c(rules, setNames(no_rule, no_rule))
rules2[chars]
#>   a   Y   Z 
#> "X" "Y" "Z"

And that's the logic behind the following function.

  • Break strings to characters
  • Create a full list of replacement rules
  • Look up replacement values
  • Glue strings back together
library(stringr)

str_replace_chars <- function(string, rules) {
  # Expand rules to replace characters with themselves 
  # if those characters do not have a replacement rule
  chars <- unique(unlist(strsplit(string, "")))
  complete_rules <- setNames(chars, chars)
  complete_rules[names(rules)] <- rules

  # Split each string into characters, replace and unsplit
  for (string_i in seq_along(string)) {
    chars_i <- unlist(strsplit(string[string_i], ""))
    string[string_i] <- paste0(complete_rules[chars_i], collapse = "")
  }
  string
}

rules <- c(a = "X", p = "e", e = "p")
string <- c("application", "developer")
str_replace_chars(string, rules)
#> [1] "XeelicXtion" "dpvploepr"
3
  • Can you elaborate on why the behaviour would be intended? I understand the "break/replace/glue" approach and I've managed the same thing by using recode, so that's not an issue, however I'd like to use stringr::str_replace_all for the integration with other tidyverse packages.
    – biomiha
    Jan 9, 2018 at 15:27
  • 1
    I inferred by looking at the source code and seeing that the source code uses stringi::stri_replace_all() with vectorize_all set to false. That means that the rules are applied iteratively. If vectorize_all were true, your example would have applied the rules separately but never merged them (c("dpvploppr", "develoeer")). That seems like a bad default setting because it returns more strings than the input. Also, the rules can be regular expressions which can conflict in which case there is no obvious way to merge the replacements together.
    – TJ Mahr
    Jan 9, 2018 at 16:21
  • Great explanation. Thanks.
    – biomiha
    Jan 9, 2018 at 16:38
0

There is probably an order in what the function does, so after replacing all c by s, you replace all s by c, only c remains .. try this :

long_string %>% str_replace_all(c(c ="X", s = "U"))  %>% str_replace_all(c(X ="s", U = "c"))
1
  • 3
    Thank you, but I feel this is not a generalisable workaround because you would need n new characters for each n you wanted to replace. Not only is that sometimes difficult, it also makes the code unwieldy. Please note my edit as per Sotos' comment.
    – biomiha
    Jan 9, 2018 at 13:49

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