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Consider the following strings

breaking out a of a simple prison
this is b moving up
following me is x times better

All strings are lowercased already. I would like to remove any "loose" a-z characters, resulting in:

breaking out of simple prison
this is moving up
following me is times better

Is this possible with a single regex in php?

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3  
Yes, what do you have so far? –  jeroen Apr 24 '12 at 21:34
2  
Please, show some effort. –  David Thomas Apr 24 '12 at 21:36
    
To think people want to match HTML with regex! This post is a good example of why matching HTML with regex is such a bad idea, if there are so many pitfalls in removing a single character from a text. –  rid Apr 24 '12 at 22:39
    
@Radu: Fortunately, whitespace is not as significant in HTML as it is in normal language :) (But in this case, it's a problem of unclearly defined specifications. If Pr0no (very mature nick, by the way, kid) had taken the time to think about his problem, he could have written a good question.) –  Tim Pietzcker Apr 25 '12 at 4:57

5 Answers 5

up vote 2 down vote accepted
$str = "breaking out a of a simple prison
this is b moving up
following me is x times better";
$res = preg_replace("@\\b[a-z]\\b ?@i", "", $str);
echo $res;
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+1 for a clean solution although he was asking how to do it in a single regex –  Tim Pietzcker Apr 24 '12 at 21:57
1  
Also, this removes spaces from other parts of the text as well, not just those around the "loose" a-z characters. –  rid Apr 24 '12 at 21:57
    
@Tim, just noticed the word single. I tried a single regex but I was unable to figure out if I should eat the leading whitespace or the trailing one (it is 3AM :) –  Salman A Apr 24 '12 at 22:07
    
Right, it's just past midnight here, too, and I should be going to bed. But I think my solution covers most cases, removing at most one space, preferably the preceding one. –  Tim Pietzcker Apr 24 '12 at 22:11
1  
@Radu: just revised my answer. –  Salman A Apr 24 '12 at 22:57

How about:

preg_replace('/(^|\s)[a-z](\s|$)/', '$1', $string);

Note this also catches single characters that are at the beginning or end of the string, but not single characters that are adjacent to punctuation (they must be surrounded by whitespace).

If you also want to remove characters immediately before punctuation (e.g. 'the x.'), then this should work properly in most (English) cases:

preg_replace('/(^|\s)[a-z]\b/', '$1', $string);
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^ and $ match the beginning and end of string, not after and before newlines. Consider adding m modifier. –  Salman A Apr 24 '12 at 21:58
    
@Salman: Yes, that's what I want. Why would you want to match line-wise? The \s takes care of newlines... –  Cameron Apr 24 '12 at 22:01
    
@Tim: It keeps the leading one (as captured by $1) –  Cameron Apr 24 '12 at 22:12
    
@Cameron: sorry, just realized that you're replacing with $1 instead of "" so it should work without m. –  Salman A Apr 24 '12 at 22:13

As a one-liner:

$result = preg_replace('/\s\p{Ll}\b|\b\p{Ll}\s/u', '', $subject);

This matches a single lowercase letter (\p{Ll}) which is preceded or followed by whitespace (\s), removing both. The word boundaries (\b) ensure that only single letters are indeed matched. The /u modifier makes the regex Unicode-aware.

The result: A single letter surrounded by spaces on both sides is reduced to a single space. A single letter preceded by whitespace but not followed by whitespace is removed completely, as is a single letter only followed but not preceded by whitespace.

So

This a is my test sentence a. o How funny (what a coincidence a) this is!

is changed to

This is my test sentence. How funny (what coincidence) this is!
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What if the leading whitespace is a new line? The regex would eat it. (I had the same problem before I gave up). (edit: got it, change the first \s to [ \t]). –  Salman A Apr 24 '12 at 22:32

You could try something like this:

preg_replace('/\b\S\s\b/', "", $subject);

This is what it means:

\b    # Assert position at a word boundary
\S    # Match a single character that is a “non-whitespace character”
\s    # Match a single character that is a “whitespace character” (spaces, tabs, and line breaks)
\b    # Assert position at a word boundary

Update

As raised by Radu, because I've used the \S this will match more than just a-zA-Z. It will also match 0-9_. Normally, it would match a lot more than that, but because it's preceded by \b, it can only match word characters.

As mentioned in the comments by Tim Pietzcker, be aware that this won't work if your subject string needs to remove single characters that are followed by non word characters like test a (hello). It will also fall over if there are extra spaces after the single character like this

test a  hello 

but you could fix that by changing the expression to \b\S\s*\b

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Does \b match at ^ and $ in PHP? I know it doesn't in some regex engines... –  Cameron Apr 24 '12 at 21:42
    
You really should put this in single quotes. Also, if you don't use delimiters, it's invalid syntax. –  rid Apr 24 '12 at 21:44
    
@Cameron, yes PCRE matches start and end of lines for word boundaries –  Robbie Apr 24 '12 at 21:45
    
@Radu thanks, it was a mistake, i've corrected it. –  Robbie Apr 24 '12 at 21:46
1  
@Robbie, even in C#, \S catches many other things aside from a-zA-Z. –  rid Apr 24 '12 at 21:50

Try this one:

$sString = preg_replace("@\b[a-z]{1}\b@m", ' ', $sString);
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3  
The {1} is redundant? –  Robbie Apr 24 '12 at 21:42
    
yah, you are right, in this case, it is. we need it if more symbols is needed.. like {1,3} will remove 1 to 3 symbols words. –  Anton Apr 24 '12 at 21:51
    
What do the @ characters mean in php regex? –  David Thomas Apr 24 '12 at 22:00
1  
@DavidThomas, they're just delimiters. –  rid Apr 24 '12 at 22:02
1  
@DavidThomas: as far as preg_* functions are concerned, most punctuation characters and symbols can be used as delimiters. –  Salman A Apr 24 '12 at 22:04

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