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Could someone please explain how this regular expression is supposed to work:

^(a)|\1$

?

I intepret it as:

*1. start of string,

followed by:

*2. either:

*2a. an a,

or:

*2b. the previously matched (a) group,

followed by:

*3. end of string

But then, 2b is an impossibility, because there is no previously matched (a) group if 2b is chosen over 2a. So, the interpretation is equivalent to:

*1. start of string,

followed by:

*2. an a,

followed by:

*3. end of string

In other words, that regular expression is equivalent to just: ^a$ (One could just as well say that the OR'ed backreference is nonsensical.)

But then, in Python I get:

>>> import re

>>> re.findall(r'^a$', r'aa')
[] # as expected

>>> re.findall(r'^(a)|\1$', r'a')
['a'] # as expected

>>> re.findall(r'^(a)|\1$', r'aa')
['a'] # NOT as expected

How can aa possibly match ^(a)|\1$ ?

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6  
I'm afraid ^(a)|\1$ means (?:^(a))|(?:\1$), not ^(?:(a)|\1)$. The behavior is perfectly consistent. –  Jan Dvorak Mar 2 '13 at 21:00
    
Generally, if I find my regex getting this complicated, I do something else. What are you trying to accomplish with this regex? It's not the right tool for every job. –  jpmc26 Mar 2 '13 at 21:05
    
@Jan: Yes, you are right. I got caught by operators precedence... Thanks. –  user1387866 Mar 2 '13 at 21:07
1  
@jpmc26: "Tell us what you need, we'll explain why you don't need it." –  user1387866 Mar 2 '13 at 21:08
    
@user1387866 I suppose. I just see tons of questions related to back referencing with regex, which suggests to me that it's markedly complicated to use. The fact it's complicated suggests to me that there are probably better ways of dealing with those cases, and even once you make it work, it's difficult to maintain because of the complexity. Hence why I avoid it, and hence why I thought it might be useful to consider other avenues. –  jpmc26 Mar 2 '13 at 21:12

1 Answer 1

This is actually a case of unreachable regex code:

In principal, this matches either a single a at the beginning of a line, or a single a at the end of a line if and only if a single a at the begining of the line has already been matched. However, since matching a single a at the begining of the line means the match is already done, the second part of the regex will never be reached and just the first a will always be returned.

I'm guessing you have a more complicated group instead of just "a" specifically, so here's one that matches the phrase a, a second a (optional), and then the end of the line: ^(a)\1?$

That means "Match a at the begining of the line, and then allow another foo if it's there, and then the end of the string, where a can be any regex pattern. If a really is just the letter "a", then ^aa?$ is a simpler alternative.

If you just want to match any whole line starting with or ending with a, then ^(a.*|.*a)$ would work, or ^(a[^\n]*|[^\n]*a)$ if using single-line mode, simplified as ^(a.*?|.*?a)$ for regex flavors supporting the *? operator. Unfortunately, in this case, the pattern for a must be written both at the beginning and end of the overall pattern, as back-references won't do the trick. If a is a pattern with the | operator, then surround it in parentheses like ^((a).*|.*(a))$.

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