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How can I extract a substring from within a string in Ruby?

Example:

String1 = "<name> <substring>"

I want to extract substring from String1 (i.e. everything within the last occurrence of < and >).

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4 Answers 4

up vote 25 down vote accepted
String1.scan( /<([^>]*)>/).last.first

scan creates an array which, for each <item> in String1 contains the text between the < and the > in a one-element array (because when used with a regex containing capturing groups, scan creates an array containing the captures for each match). last gives you the last of those array and first then gives you the string in it.

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"<name> <substring>"[/.*<([^>]*)/,1]
=> "substring"

No need to use scan, if we need only one result.
No need to use match, when we have String[regexp,#].

See: http://ruby-doc.org/core/String.html#method-i-5B-5D

Note: str[regexp, capture] → new_str or nil

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5  
No need to discredit other perfectly valid (and might I opine, more readable) solutions. –  coreyward Nov 6 '10 at 21:07
10  
@coreyward, if they are better, please, argument it. For example, sepp2k's solution is more flexible, and that's why I pointed if we need only one result in my solution. And match()[] is slower, because it's two methods instead of one. –  Nakilon Nov 6 '10 at 21:10
2  
Yeah... let's make this function 2 times slower... and their child functions too... and parents too... they are so quick, that we'll never notice them... take a rule not to be afraid to make a function 2 times slower!... what? our chain of 10 functions are now slower in 1024 times? fantastic... –  Nakilon Nov 7 '10 at 0:00
2  
This is the fastest of all the methods presented, but even the slowest method takes only 4.5 microseconds on my machine. I do not care to speculate why this method is faster. In performance, speculation is useless. Only measurement counts. –  Wayne Conrad Nov 7 '10 at 7:32
1  
I find this solution more straightforward and to the point (since I am new to Ruby). Thanks. –  Ryan H. Jun 30 '11 at 10:46

You can use a regular expression for that pretty easily…

Allowing spaces around the word (but not keeping them):

str.match(/< ?([^>]+) ?>\Z/)[1]

Or without the spaces allowed:

str.match(/<([^>]+)>\Z/)[1]
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1  
I'm not sure that the last <> actually needs to be the last thing in the string. If e.g. the string foo <bar> baz is allowed (and supposed to give the result bar), this will not work. –  sepp2k Nov 6 '10 at 21:03
    
I just went based on the sample string he provided. –  coreyward Nov 6 '10 at 21:06

Here's a slightly more flexible approach using the match method. With this, you can extract more than one string:

s = "<ants> <pants>"
matchdata = s.match(/<([^>]*)> <([^>]*)>/)

# Use 'captures' to get an array of the captures
matchdata.captures   # ["ants","pants"]

# Or use raw indices
matchdata[0]   # whole regex match: "<ants> <pants>"
matchdata[1]   # first capture: "ants"
matchdata[2]   # second capture: "pants"
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