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Example of string I am working with:

s = "{new {value1 value2 value3}} {old {value2 value1 value1}} {{old school} {value2 value3 value1}}"

The {}'s are affected by spaces, which is why "old school" is surrounded while "new" and "old" are not.

Parsing the first two (new and old) are easily done using s.split[1] to access "new" and s.split[3..5] for the values. The problem comes when "new" or "old" has a space, in this case "old school". In the database I am accessing, these names with spaces occur randomly.

How can I alter my parsing to account for these occurrences?

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closed as not a real question by sawa, Eric Wendelin, Andrew Barber, tereško, tchrist Oct 7 '12 at 0:14

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2  
How do you parse it so far? –  Anthony Alberto Oct 5 '12 at 17:19
1  
Replace {old school} with sch –  Ωmega Oct 5 '12 at 17:24
    
You haven't told us what output you want. The answers so far assume key/value pairs, but to me it looks hierarchical. –  Mark Thomas Oct 6 '12 at 0:16

2 Answers 2

up vote 0 down vote accepted

You can do it with this one line:

s.split("}} {").map{|x| x.split(" {")}.map{|x| x.map{|y| y.gsub("{","").gsub("}","")}}

Kind of ugly but works with your example, returns:

[["new", "value1 value2 value3"], ["old", "value2 value1 value1"], ["old school", "value2 value3 value1"]]

You can then parse if further by breaking values into their own objects etc. If you want it as hash, you can get it like this:

Hash[s.split("}} {").map{|x| x.split(" {")}.map{|x| x.map{|y| y.gsub("{","").gsub("}","")}}]

This will return:

{"new"=>"value1 value2 value3", "old"=>"value2 value1 value1", "old school"=>"value2 value3 value1"} 
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Actually the better solution. Doesn't work though in case you allow s = "{new value} {old {value2 value1 value1}} ;-) –  Philip Oct 5 '12 at 18:16
1  
Of course, I am just targeting his specific example :) –  iouri Oct 5 '12 at 18:21
    
This is the solution. Thank you! –  lemmiwinks43 Oct 8 '12 at 13:16

You don't want to parse this with regular expressions, you should rather go character by character and remember your position in there bracket hierarchy.

Here is a solution of mine: http://pastebin.com/kLLnS5qB

(That's only a rought cut, some calls aren't really dry and it lacks testing.)

$ ruby foo.rb 
[#<struct key="new", values=["value1", "value2", "value3"]>, #<struct key="old", values=["value2", "value1", "value1"]>, #<struct key="old school", values=["value2", "value3", "value1"]>]
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