1

I'm trying to use grepl to flag some data that might be interesting in a genetics dataset I have.

An example of the data looks like this

test <- c("AAT,TAA,TGA,A,G", "A,AAT,AAAT,AATAAT", "CA,CAA,CAAA")
pattern <- c("TAA", "G", "CAA")
df <- data.frame(test, pattern)

What I am trying to do is to create a third column, say result that evaluates whether the value in the pattern column is in the test column.

I tried this:

df.result <- df %>% mutate(result = grepl(pattern, test))

But for some reason I get a TRUE, TRUE, FALSE in the result column, which isn't what I'm expecting - I would expect a TRUE, FALSE, TRUE result.

I've played around with things like adding a comma to the end of each field, but that didn't seem to work either.

Would appreciate any help with this!

Thanks, Steve

2

The stringi package provides string matching functions that are vectorised over both string and pattern;

library(stringi)
df %>% mutate(result = stri_detect_regex(test,  pattern))

is one answer to the original question. An answer to the question about avoiding substring matches is

df %>% mutate(result = stri_detect_regex(test, stri_join('(^|,)', pattern, '(,|$)')))
  • That is damn brilliant. Thank you so much for introducing me to that package. – Steven Jun 3 '16 at 1:38
5

Use the apply() function:

df$result <- apply(df, 1, FUN=function(x) grepl(x[2], x[1])

df
#                test pattern result
# 1   AAT,TAA,TGA,A,G     TAA   TRUE
# 2 A,AAT,AAAT,AATAAT       G  FALSE
# 3       CA,CAA,CAAA     CAA   TRUE

The apply function loops through each row of the df separately, feeding grepl with per row information. grepl cannot process a vector with three elements in the pattern argument. The help page says:

If a character vector of length 2 or more is supplied [as pattern], the first element is used with a warning.

Thus, the original command grepl(df$pattern, df$test) compared the first element from pattern (TAA) to the whole vector in test.

  • That didn't seem to work...gave me the same result. – Steven Jun 2 '16 at 16:30
  • It works for me. – ytk Jun 2 '16 at 16:36
  • I added a column to df with the above code. To store the result in a separate variable, use df.result <- apply(df, 1, FUN=function(x) grepl(x[2], x[1])) – nya Jun 2 '16 at 16:39
  • 1
    got it thanks! that works beautifully :-) – Steven Jun 2 '16 at 16:42
3

This can be otherwise done with mapply

df$result <- mapply(grepl, df$pattern, df$test)
df$result
#[1]  TRUE FALSE  TRUE
  • Thanks for the tip with mapply. I'm still having an issue here, not so much with getting the code to run but with the exact matching. Let me give you an example: If I have a field that has the following text in it "T,AATTT" and I'm trying to use grepl with the pattern "AATTT" I get, a 1, which is what I want. But if I use the pattern "ATTT" I also get a 1. This is not what I want :-( I'm trying to get it to match any of the patterns exactly between the commas. I tried the "fixed = TRUE" flag but that didn't seem to work. Any other thoughts? – Steven Jun 2 '16 at 22:27
  • @Steven Perhaps you need a word boundary. i.e. grepl("\\bATTT", "T,AATTT") #[1] FALSE; grepl("\\bAATTT", "T,AATTT") . Using the current code, it can be done with paste i.e. mapply(grepl, paste0("\\", df$pattern, df$test) #[1] TRUE – akrun Jun 3 '16 at 1:56

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