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I want to filter tags out of a description string, and want to make them into anchor tags. I am not able to return the value of the tag.

My input is:

a = "this is a sample #tag and the string is having a #second tag too"

My output should be:

a = "this is a sample <a href="/tags/tag">#tag</a> and the string is having a <a href="/tags/second">#second</a> tag too"

So far I am able to do some minor stuff but I am not able to achive the final output. This pattern:

a.gsub(/#\S+/i, "<a href='/tags/\0'>\0</a>")

returns:

"this is a sample <a href='/tags/\u0000'>\u0000</a> and the string is having a <a href='/tags/\u0000'>\u0000</a> tag too"

What do I need to do differently?

share|improve this question
    
You can take a bit of help using nokogiri. – Arup Rakshit Jul 24 '13 at 13:11
1  
@Priti just for this small thing I don't want add a gem in my application – Mohit Jain Jul 24 '13 at 13:16
    
If this was HTML parsing, then Nokogiri would be of use. It's HTML generation which reduces Nokogiri's value significantly for this purpose. – the Tin Man Jul 24 '13 at 14:01
up vote 5 down vote accepted

You can do it like this:

a.gsub(/#(\S+)/, '<a href="/tags/\1">\0</a>')

The reason why your replacement doesn't work is that you must use double escape when you are between double quotes:

a.gsub(/#(\S+)/, "<a href='/tags/\\1'>\\0</a>")

Note that the /i modifier is not needed here.

share|improve this answer
    
+1 for pointing out the /i isn't needed. The reason is that there is no lower-case value for '#' and everything following it is matched by \S+ anyway. – the Tin Man Jul 24 '13 at 14:09

You need to give gsub a block if you want to do something with the match from the regex:

a.gsub(/#(\S+)/i) { "<a href='/tags/#{$1}'>##{$1}</a>" }

$1 is a global variable that Ruby automatically fills with the first capture block in the matched string.

share|improve this answer
    
As evidenced by the other answers, it's possible to use \1 to reference the capture without a block being passed to gsub. So, while the answer works, the assertion isn't quite correct. – the Tin Man Jul 24 '13 at 14:12

Try this:

a.gsub(/(?<a>#\w+)/, '<a href="/tags/\k<a>">\k<a></a>')
share|improve this answer
    
returns "this is a sample <a href=\"/tags/#tag\">#tag</a> and the string is having a <a href=\"/tags/#second\">#second</a> tag too" (href is not as specified in the question) – tessi Jul 24 '13 at 13:34
    
I don't think this answer deserved a down vote just because of that small error. – Doydle Jul 24 '13 at 13:40
    
I agree, it was the principle of using named capture groups that was the key point. – Dave Sexton Jul 24 '13 at 13:48
    
Stylistically, I'd probably use a longer capture name than a. It blends into the pattern's use of <a href... and </a>, causing some consternation when reading it. I'd use something like ?<tagval> to make it stand out. – the Tin Man Jul 24 '13 at 14:07
    
@DaveSexton: +1 I didn't know that using named captures in a replacement pattern was possible – Casimir et Hippolyte Jul 24 '13 at 16:18

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