2

I'm trying to use gsub to remove words / text in column y that are in column x.

x = c("a","b","c")
y = c("asometext", "some, a b text", "c a text")
df = cbind(x,y)
df = data.frame(df)
df$y = gsub(df$x, "", df$y)

If I run the code above, it removes only the text from column x row 1 and not all the rows:

> df
  x             y
1 a      sometext
2 b some,  b text
3 c       c  text

I want the end result to be:

> df
  x             y
1 a      sometext
2 b      some,   text
3 c      text

So all the words / letters from column x should be removed from the column y. Is this possible with gsub?

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  • df$y <- mapply(gsub, df$x, "", df$y) can work – Pierre L Dec 8 '16 at 21:23
4

Normally gsub takes three arguments 1) pattern, 2) replacement and 3) vector to replace values.

The pattern must be a single string. And the same for the replacement. The only part of the function that is open to multiple values is the vector. We call it vectorized because of this.

gsub(df$x, "", df$y)  #doesn't work because 'df$x' isn't one string

The pattern argument is not vectorized, but we can use mapply to complete the task.

mapply and gsub (bffs)

x = c("a","b","c")
y = c("asometext", "some, a b text", "c a text")
repl = ""

#We do
mapply(gsub, x, repl, y)

#On the inside
gsub(x[[1]], repl[[1]], y[[1]])
gsub(x[[2]], repl[[2]], y[[2]])
gsub(x[[3]], repl[[3]], y[[3]])

You may be asking, but I only have one repl, how does repl[[2]] and repl[[3]] work? The function noticed that for us and repeated 'repl' until it equaled the length of the others.

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  • Hi thanks! this works, but it only removes the x from the same row, so if row number 2 in column y contains "b", and the row 1 in column x contains "b" then it won't be removed. Is there a solution for that? – Aanna Dec 8 '16 at 21:57
  • Try gsub(paste(df$x, collapse ="|"), "", df$y) – Pierre L Dec 8 '16 at 22:04
  • Thanks! this is exactly what I was looking for! – Aanna Dec 8 '16 at 22:08
  • 1
    This is the best explanation I have ever seen on any R function, thanks! upvoted! – Ibo Jan 27 at 18:24
0

Here is a solution using str_remove_all:

library(stringr)    
x  = c("a","b","c")
y  = c("asometext", "some, a b text", "c a text")
df = cbind(x,y)
df = data.frame(df,stringsAsFactors = F)

# creating a format of "[abc]" to use in str_remove_all
comb_a = paste0("[",paste(df$x,collapse = ""),"]")

df$y = sapply(df$y, function(r) str_remove_all(r, comb_a) )
df

enter image description here

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0

i tried the above answers on a really large dataset, and found this code to work the best:

x = c("a","b","c")
y = c("asometext", "some, a b text", "c a text")

library(qdap)

z<- mgsub(x, "", y) 

which gives the desired solution:

z: "sometext", "some,  text", "  text"

This is because mgsub function is a wrapper for gsub that takes a vector of search terms and a vector or single value of replacements, and i have found it to be more powerful than gsub, especially when working with big datasets. it accomplishes what gsub takes 2-3 lines of code to do.

while the above gsub(paste0) solution works well with very small datasets, i have found it returns error for large datasets.

note for Mac users: before installing qdap package, make sure you have java and pdk (oracle) softwares installed on your computer beforehand. otw you will run into errors when installing/trying to run qdap package since it is java based.

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