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So, I'm digesting a protein sequence with an enzyme (for your curiosity, Asp-N) which cleaves before the proteins coded by B or D in a single-letter coded sequence. My actual analysis uses String#scan for the captures. I'm trying to figure out why the following regular expression doesn't digest it correctly...

(\w*?)(?=[BD])|(.*\b)

where the antecedent (.*\b) exists to capture the end of the sequence. For:

MTMDKPSQYDKIEAELQDICNDVLELLDSKGDYFRYLSEVASGDN

This should give something like: [MTM, DKPSQY, DKIEAELQ, DICN, DVLELL, DSKG, ... ] but instead misses each D in the sequence.

I've been using http://www.rubular.com for troubleshooting, which runs on 1.8.7 although I've also tested this REGEX on 1.9.2 to no avail. It is my understanding that zero-width lookahead assertions are supported in both versions of ruby. What am I doing wrong with my regex?

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What method are you using? String#scan, String#split or something else? –  Andrew Grimm May 18 '11 at 23:38
3  
+1 What a great question. I did not expect the results you got, and further analysis taught me a little something about the way the regex handles repeated zero-width matches. –  Phrogz May 19 '11 at 3:01
    
I am a bit confused by your statement "which cleaves before the proteins coded by B or D". As I understand things, B is the single letter code for either D or N (where it is not known whether the residue is Asp or Asn)? Can Asp-N cleave before Asn? –  TomD May 21 '11 at 19:00
1  
@TomD Sorry if my phrasing isn't clear. Asp-N doesn't cleave after Asn, but for analysis purposes, it is assumed that a cleavage occurs, rather than assuming that B represents N. This increases the number of peptide fragments that results, but ensures that you haven't neglected a possible fragment. Makes sense, right? –  Ryanmt May 22 '11 at 3:42
    
@Ryanmt OK, I get the idea now :-) Thanks for that clarification. –  TomD May 22 '11 at 19:33

2 Answers 2

up vote 3 down vote accepted

The simplest way to support this is to split on the zero-width lookahead:

s = "MTMDKPSQYDKIEAELQDICNDVLELLDSKG"
p s.split /(?=[BD])/
#=> ["MTM", "DKPSQY", "DKIEAELQ", "DICN", "DVLELL", "DSKG"]

For understanding as to what was going wrong with your solution, let's look first at your regex versus one that works:

p s.scan(/.*?(?=[BD]|$)/)
#=> ["MTM", "", "KPSQY", "", "KIEAELQ", "", "ICN", "", "VLELL", "", "SKG", ""]

p s.scan(/.+?(?=[BD]|$)/)
#=> ["MTM", "DKPSQY", "DKIEAELQ", "DICN", "DVLELL", "DSKG"]

The problem is that if you can capture zero characters and still match your zero-width lookahead, you succeed without advancing the scanning pointer. Let's look at a simpler-but-similar test case:

s = "abcd"
p s.scan //      # Match any position, without advancing
#=> ["", "", "", "", ""]

p s.scan /(?=.)/ # Anywhere that is followed by a character, without advancing
#=> ["", "", "", ""]

A naive implementation of String#scan might get stuck in an infinite loop, repeatedly matching with the pointer before the first character. It appears that once a match occurs without advancing the pointer the algorithm forcibly advances the pointer by one character. This explains the results in your case:

  1. First it matches all the characters up to a B or D,
  2. then it matches the zero-width position right before the B or D, without moving the character pointer,
  3. as a result the algorithm moves the pointer past the B or D, and continues on after that.
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Perhaps I should simplify, as the other answer does seem to work, but this is really what I was looking for: Understanding! Thank you for explaining why my Regular Expression was broken! –  Ryanmt May 19 '11 at 15:06
    
@Ryanmt I'm glad I could help. I've also modified my regex to show you a simpler way to capture the end of the sequence if you wanted to use this rather than the simpler split-based solution. –  Phrogz May 19 '11 at 16:57
    
Ah. I've read about that but hadn't applied it to my problem. Thanks! –  Ryanmt May 19 '11 at 17:48

Basically, you want to cut you string before each B or D?

"...".split(/(?=[BD])/)

Gives you

["MTM", "DKPSQY", "DKIEAELQ", "DICN", "DVLELL", "DSKG", "DYFRYLSEVASG", "DN"]
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Great answer, and clean. Thanks! –  Ryanmt May 19 '11 at 17:49

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