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I have a string containing a path:

/var/www/project/data/path/to/file.mp3

I need to get the substring starting with '/data' and delete all before it. So, I need to get only /data/path/to/file.mp3.

What would be the fastest solution?

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4 Answers 4

'/var/www/project/data/path/to/file.mp3'.match(/\/data.*/)[0]
=> "/data/path/to/file.mp3"
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3  
This can be simplified to: '/var/www/project/data/path/to/file.mp3'[%r[(/data.*)], 1] –  the Tin Man Oct 24 '12 at 16:48
    
@theTinMan, cool thing, even couldn't think that it can be possible –  megas Oct 24 '12 at 16:51

could be as easy as:

string = '/var/www/project/data/path/to/file.mp3'

path = string[/\/data.*/]

puts path
=> /data/path/to/file.mp3
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Please try this:

"/var/www/project/data/path/to/file.mp3".scan(/\/var\/www(\/.+)*/)

It should return you all occurrences.

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This doesn't work. –  the Tin Man Oct 24 '12 at 16:50
    
was for the double backslash –  QuarK Oct 24 '12 at 17:53

Using regular expression is a good way. Though I am not familiar with ruby, I think ruby should have some function like "substring()"(maybe another name in ruby).

Here is a demo by using javascript:

var str = "/var/www/project/data/path/to/file.mp3";
var startIndex = str.indexOf("/data");
var result = str.substring(startIndex );

And the link on jsfiddle demo

I think the code in ruby is similar, you can check the documentation. Hope it's helpful.

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