Tell me more ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
up vote 0 down vote favorite

Months ago I ended up with a sub statement that originally worked with my input data. It has since stopped working causing me to re-examine my ugly process. I hate to share it but it accomplished several things at once:

active$id[grep("CIR",active$description)] <- sub(".*CIR0*(\\d+).*","\\1",active$description[grep("CIR",active$description)],perl=TRUE)

This statement created a new id column by finding rows that had an id embedded in the description column. The sub statement would find the number following a "CIR0" and populate the id column iff there was an id within a row's description. I recognize it is inefficient with the embedded grep subsetting either side of the assignment.

Is there a way to have a 'sub' replacement be NA or empty if the pattern does not match? I feel like I'm missing something very simple but ask for the community's assistance. Thank you.

Example with the results of creating an id column:

| name |  id | description       |
|------+-----+-------------------|
| a    | 343 | Here is CIR00343  |
| b    |     | Didn't have it    |
| c    | 123 | What is CIR0123   |
| d    |     | CIR lacks a digit |
| e    | 452 | CIR452 is next    |
share|improve this question
2  
It would be nice if you gave some sample data and output! That way we could verify what you need. – nograpes Mar 9 '12 at 21:12
I convinced myself the question was general enough that sample data might be more confusing but you're right - I've added a short table. – jed Mar 9 '12 at 21:49

2 Answers

up vote 1 down vote accepted

I was struggling with the same issue a few weeks ago. I ended up using the str_match function from the stringr package. It returns NA if the target string is not found. Just make sure you subset the result correctly. An example:

library(stringr)
str = "Little_Red_Riding_Hood"
sub(".*(Little).*","\\1",str) # Returns 'Little'
sub(".*(Big).*","\\1",str) # Returns 'Little_Red_Riding_Hood'
str_match(str,".*(Little).*")[1,2] #Returns 'Little'
str_match(str,".*(Big).*")[1,2] # Returns NA
share|improve this answer
Thanks for introducing me to the stringr package. Using it I've been able to clean up the process and capture a side case I hadn't anticipated. – jed Mar 9 '12 at 23:11
up vote 0 down vote

I think in this case you could try using ifelse(), i.e., 

active$id[grep("CIR",active$description)] <- ifelse(match, replacement, "")

where match should evaluate to true if there's a match, and replacement is what that element would be replaced with in that case. Likewise, if match evaluates to false, that element's replaced with an empty string (or NA if you prefer).

share|improve this answer
Disclaimer: I haven't used the grep/regex functionality in R all that much, so this might not be the best solution, but I'm just throwing it out there - ifelse() has saved my behind in so many situations that I've lost count. – a barking spider Mar 9 '12 at 21:21
Thanks, I hadn't considered ifelse() in this case but tried to work out a way to leverage it after your answer. I run into difficulty capturing the pattern from the test without duplicating the process as part of the replacement. I'll give it some more thought. – jed Mar 9 '12 at 23:17

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.