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Suppose I have the following data frame:

User.Id    Tags
34234      imageUploaded,people.jpg,more,comma,separated,stuff
34234      imageUploaded
12345      people.jpg

How might I use grep (or some other tool) to only grab rows that include both "imageUploaded" and "people"? In other words, how might I create a subset that includes just the rows with the strings "imageUploaded" AND "people.jpg", regardless of order.

I have tried:

data.people<-data[grep("imageUploaded|people.jpg",results$Tags),]
data.people<-data[grep("imageUploaded?=people.jpg",results$Tags),]

Is there an AND operator? Or perhaps another way to get the intended result?

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up vote 10 down vote accepted

Thanks to this answer, this regex seems to work. You want to use grepl() which returns a logical to index into your data object. I won't claim to fully understand the inner workings of the regex, but regardless:

x <- c("imageUploaded,people.jpg,more,comma,separated,stuff", "imageUploaded", "people.jpg")

grepl("(?=.*imageUploaded)(?=.*people\\.jpg)", x, perl = TRUE)
#-----
[1]  TRUE FALSE FALSE
share|improve this answer
    
Thanks! This worked great. – Rob Nov 2 '12 at 0:29
    
I had bee playing around with grep("(?=imageUploaded)(?=people\\.jpg)" and not getting success, so the secrets appear to be a) the perl=TRUE, b) the parens for grouping and c) the leading .* after the ?= – 42- Nov 2 '12 at 1:02
    
The people\\.jpg didn't work so I just did data.people<-data[grepl("(?=.*imageUploaded)(?=.*people)",data$Tags,perl=TRUE),‌​] I didn't need to match the .jpg extension, but I'm curious to know how to do that using grep. – Rob Nov 2 '12 at 1:27

I love @Chase's answer, and it makes good sense to me, but it can be a bit dangerous to use constructs that one doesn't totally understand.

This answer is meant to reassure anyone who'd like to use @thelatemail's more straightforward approach that it works just as well and is completely competitive speedwise. It's certainly what I'd use in this case. (It's also reassuring that the more sophisticated Perl-compatible-regex pays no performance cost for its power and easy extensibility.)

library(rbenchmark)
x <- paste0(sample(letters, 1e6, replace=T), ## A longer vector of
            sample(letters, 1e6, replace=T)) ## possible matches

## Both methods give identical results
tlm <- grepl("a", x, fixed=TRUE) & grepl("b", x, fixed=TRUE)
pat <- "(?=.*a)(?=.*b)"
Chase <- grepl(pat, x, perl=TRUE)
identical(tlm, Chase)
# [1] TRUE    

## Both methods are similarly fast
benchmark(
    tlm = grepl("a", x, fixed=TRUE) & grepl("b", x, fixed=TRUE),
    Chase = grepl(pat, x, perl=TRUE))
#          test replications elapsed relative user.self sys.self
# 2       Chase          100    9.89    1.105      9.80     0.10
# 1 thelatemail          100    8.95    1.000      8.47     0.48
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I think, this is a great answer. The tlm method (while being fast) is very simple to follow. – Gandalf Jul 18 at 21:06

For readability's sake, you could just do:

x <- c(
       "imageUploaded,people.jpg,more,comma,separated,stuff",
       "imageUploaded",
       "people.jpg"
       )

xmatches <- intersect(
                      grep("imageUploaded",x,fixed=TRUE),
                      grep("people.jpg",x,fixed=TRUE)
                     )
x[xmatches]
[1] "imageUploaded,people.jpg,more,comma,separated,stuff"
share|improve this answer
    
Of course the simple answer is just to apply grep twice (once to extract rows with 'imageUploaded' and on that result, extract rows with 'people.jpg'). Your solution does not create a temporary object (which might be large). – Matthew Lundberg Nov 2 '12 at 1:46

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