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Is it possible to increment numbers using PCRE substitution? Not using evaluated/function-based substitution, of course.

It's probably not very useful, but this question was inspired by another one, where the asker wanted to increment numbers in a text editor. I believe there exist more text editors that support regex susbtitutions than ones that support scripting, so a regex might be convenient to float around, if one exists. Also, many times I've learned something neat from clever solutions to practically useless problems, so I'm curious.

Assume we're only talking about non-negative decimal integers, i.e. \d+.

  • Is it possible in a single substitution? Or, a finite number of substitutions?

  • If not, is it at least possible given an upper bound, e.g. numbers up to 9999?

I imagine it must be possible in a while-loop (substituting while matched), for example by replacing each number with its increment, except 9 with a special character prepended to "carry the tens" and substitute in a subsequent iteration...

share|improve this question
    
The PCRE library's C API doesn't actually have any concept of "substitution"; rather, it just allows you to obtain detailed information about matches, and you can do anything with that information that you want. And it's not clear to me what sort of string substitution could increment even a one-digit number; it would have to have some way of converting 1 to 2 and 2 to 3, for example, but in Perl the only way to do that is either to use s/.../.../e, or else to use interpolation in the replacement-string: s/\d+/@{[$&+1]}/. –  ruakh Oct 17 '12 at 19:08
    
u have to do it with evaluator/function based substitution..Putting everything into regex would make it more complex and yes that would be a stupid thing to.. –  Anirudha Oct 17 '12 at 19:14
    
@ruakh - Hm, given the crazy things I've seen people do with regex, I thought converting 1 to 2, 2 to 3, etc. would be trivial, but perhaps not! Maybe we should start there. –  Andrew Cheong Oct 17 '12 at 19:20
1  
If I understood what you are asking this is a good question and there is a simple problem: think about 99: you have just one possible substitution token (eg replace something with 2 <- token). Where are you going to get the 1 to do the replacing? the one I pose is just a matter of available characters. I think this would be easier with binary numbers. –  Gabber Oct 17 '12 at 19:22
    
@Gabber - Great comment! Just as you posted it, I began to realize that's where I was getting stuck. So currently, I'm trying to solve the problem assuming that 0123456789 is available at the end of the "document" (grabbing the digit I need with a lookahead). Once I solve the problem this way, then I can see if there's some clever way to make "unavailable" numbers appear by magic... –  Andrew Cheong Oct 17 '12 at 19:26

4 Answers 4

Wow, turns out it is possible (albeit ugly)!

In case you do not have the time or cannot be bothered to read through the whole explanation, here is the code that does it:

$str = '0 1 2 3 4 5 6 7 8 9 10 11 12 13 19 20 29 99 100 139';
$str = preg_replace("/\d+/", "$0~", $str);
$str = preg_replace("/$/", "#123456789~0", $str);
do
{
$str = preg_replace(
    "/(?|0~(.*#.*(1))|1~(.*#.*(2))|2~(.*#.*(3))|3~(.*#.*(4))|4~(.*#.*(5))|5~(.*#.*(6))|6~(.*#.*(7))|7~(.*#.*(8))|8~(.*#.*(9))|9~(.*#.*(~0))|~(.*#.*(1)))/s",
    "$2$1",
    $str, -1, $count);
} while($count);
$str = preg_replace("/#123456789~0$/", "", $str);
echo $str;

Now let's get started.

So first of all, as the others mentioned, it is not possible in a single replacement, even if you loop it (because how would you insert the corresponding increment to a single digit). But if you prepare the string first, there is a single replacement that can be looped. Here is my demo implementation using PHP.

I used this test string:

$str = '0 1 2 3 4 5 6 7 8 9 10 11 12 13 19 20 29 99 100 139';

First of all, let's mark all digits we want to increment by appending a marker character (I use ~, but you should probably use some crazy Unicode character or ASCII character sequence that definitely will not occur in your target string.

$str = preg_replace("/\d+/", "$0~", $str);

Since we will be replacing one digit per number at a time (from right to left), we will just add that marking character after every full number.

Now here comes the main hack. We add a little 'lookup' to the end of our string (also delimited with a unique character that does not occur in your string; for simplicity I used #).

$str = preg_replace("/$/", "#123456789~0", $str);

We will use this to replace digits by their corresponding successors.

Now comes the loop:

do
{
$str = preg_replace(
    "/(?|0~(.*#.*(1))|1~(.*#.*(2))|2~(.*#.*(3))|3~(.*#.*(4))|4~(.*#.*(5))|5~(.*#.*(6))|6~(.*#.*(7))|7~(.*#.*(8))|8~(.*#.*(9))|9~(.*#.*(~0))|(?<!\d)~(.*#.*(1)))/s",
    "$2$1",
    $str, -1, $count);
} while($count);

Okay, what is going on? The matching pattern has one alternative for every possible digit. This maps digits to successors. Take the first alternative for example:

0~(.*#.*(1))

This will match any 0 followed by our increment marker ~, then it matches everything up to our cheat-delimiter and the corresponding successor (that is why we put every digit there). If you glance at the replacement, this will get replaced by $2$1 (which will then be 1 and then everything we matched after the ~ to put it back in place). Note that we drop the ~ in the process. Incrementing a digit from 0 to 1 is enough. The number was successfully incremented, there is no carry-over.

The next 8 alternatives are exactly the same for the digits 1to 8. Then we take care of two special cases.

9~(.*#.*(~0))

When we replace the 9, we do not drop the increment marker, but place it to the left of our the resulting 0 instead. This (combined with the surrounding loop) is enough to implement carry-over propagation. Now there is one special case left. For all numbers consisting solely of 9s we will end up with the ~ in front of the number. That is what the last alternative is for:

(?<!\d)~(.*#.*(1))

If we encounter a ~ that is not preceded by a digit (therefore the negative lookbehind), it must have been carried all the way through a number, and thus we simply replace it with a 1. I think we do not even need the negative lookbehind (because this is the last alternative that is checked), but it feels safer this way.

A short note on the (?|...) around the whole pattern. This makes sure that we always find the two matches of an alternative in the same references $1 and $2 (instead of ever larger numbers down the string).

Lastly, we add the DOTALL modifier (s), to make this work with strings that contain line breaks (otherwise, only numbers in the last line will be incremented).

That makes for a fairly simple replacement string. We simply first write $2 (in which we captured the successor, and possibly the carry-over marker), and then we put everything else we matched back in place with $1.

That's it! We just need to remove our hack from the end of the string, and we're done:

$str = preg_replace("/#123456789~0$/", "", $str);
echo $str;
> 1 2 3 4 5 6 7 8 9 10 11 12 13 14 20 21 30 100 101 140

So we can do this entirely in regular expressions. And the only loop we have always uses the same regex. I believe this is as close as we can get without using preg_replace_callback().

Of course, this will do horrible things if we have numbers with decimal points in our string. But that could probably be taken care of by the very first preparation-replacement.

Update: I just realised, that this approach immediately extends to arbitrary increments (not just +1). Simply change the first replacement. The number of ~ you append equals the increment you apply to all numbers. So

$str = preg_replace("/\d+/", "$0~~~", $str);

would increment every integer in the string by 3.

share|improve this answer
    
Ahah, put TL;DR at the beginning!! and bravo! this is a really good solution! +1 for the explanation (not tested yet) –  Gabber Oct 17 '12 at 20:23
1  
Very nice! Quick answer, too. You can make the pattern prettier by using lookaheads: instead of (.*#.*(1)), you can use (?=.*?(1)) - it still captures, and saves you from replacing with $2$1 (also - you don't really care if the 1 comes from your lookup or not). I'm pretty sure you can use a similar approach to add two numbers ("1234 + 5678"), but that pattern will be ugly (100 lookups? at least 45, I think) - it can be a nice exercise to write a script to generate that pattern. –  Kobi Oct 17 '12 at 21:17
    
Good point! However, the # in the lookahead was not used to take successors only from behind the #. In case someone uses that hack-appendix in a different order (e.g. ~0123456879), the ~ would be replaced within that bit. That is why I left the # in every alternative, so that it works regardless of the order of the appendix. And if you leave that in, the lookahead doesn't make it that much prettier, I think. –  Martin Büttner Oct 17 '12 at 21:28
    
Got it - good point. You could remove #[^#]*$. Then again, my suggestion is 10 characters - same as yours. Minor point, anyway :) –  Kobi Oct 17 '12 at 21:58
2  
@BradGilbert the whole point of the question was not to use callback implementations, but only regex matching and String replacement. Otherwise it's a one-liner in PHP, as well... –  Martin Büttner Oct 20 '12 at 19:45
up vote 3 down vote accepted

I managed to get it working in 3 substitutions (no loops).

tl;dr

s/$/ ~0123456789/

s/(?=\d)(?:([0-8])(?=.*\1(\d)\d*$)|(?=.*(1)))(?:(9+)(?=.*(~))|)(?!\d)/$2$3$4$5/g

s/9(?=9*~)(?=.*(0))|~| ~0123456789$/$1/g

Explanation

Let ~ be a special character not expected to appear anywhere in the text.

  1. If a character is nowhere to be found in the text, then there's no way to make it appear magically. So first we insert the characters we care about at the very end.

    s/$/ ~0123456789/
    

    For example (click here for refiddle),

    0 1 2 3 7 8 9 10 19 99 109 199 909 999 1099 1909
    

    becomes:

    0 1 2 3 7 8 9 10 19 99 109 199 909 999 1099 1909 ~0123456789
    
  2. Next, for each number, we (1) increment the last non-9 (or prepend a 1 if all are 9s), and (2) "mark" each trailing group of 9s.

    s/(?=\d)(?:([0-8])(?=.*\1(\d)\d*$)|(?=.*(1)))(?:(9+)(?=.*(~))|)(?!\d)/$2$3$4$5/g
    

    For example, (click here for refiddle), our example becomes:

    1 2 3 4 8 9 19~ 11 29~ 199~ 119~ 299~ 919~ 1999~ 1199~ 1919~ ~0123456789
    
  3. Finally, we (1) replace each "marked" group of 9s with 0s, (2) remove the ~s, and (3) remove the character set at the end.

    s/9(?=9*~)(?=.*(0))|~| ~0123456789$/$1/g
    

    For example, (click here for refiddle), our example becomes:

    1 2 3 4 8 9 10 11 20 100 110 200 910 1000 1100 1910
    

PHP Example

You can copy and paste this into http://www.writecodeonline.com/php:

$str = '0 1 2 3 7 8 9 10 19 99 109 199 909 999 1099 1909';
echo $str . '<br/>';
$str = preg_replace('/$/', ' ~0123456789', $str);
echo $str . '<br/>';
$str = preg_replace('/(?=\d)(?:([0-8])(?=.*\1(\d)\d*$)|(?=.*(1)))(?:(9+)(?=.*(~))|)(?!\d)/', '$2$3$4$5', $str);
echo $str . '<br/>';
$str = preg_replace('/9(?=9*~)(?=.*(0))|~| ~0123456789$/', '$1', $str);
echo $str . '<br/>';

Output:

0 1 2 3 7 8 9 10 19 99 109 199 909 999 1099 1909
0 1 2 3 7 8 9 10 19 99 109 199 909 999 1099 1909 ~0123456789
1 2 3 4 8 9 19~ 11 29~ 199~ 119~ 299~ 919~ 1999~ 1199~ 1919~ ~0123456789
1 2 3 4 8 9 10 11 20 100 110 200 910 1000 1100 1910
share|improve this answer
    
@m.buettner - I would like to mark my answer as the accepted one, as I feel it is the most compact. However, you posted the first solution many hours before I did (and neither of our solutions were single substitutions, this having been found impossible), so I'd like to credit you appropriately. Would you (or anyone) be opposed to or have any ethical qualms with me opening and awarding a bounty to you, as soon as I'm able to (in 2 days)? (Do you accept this arrangement, or would you rather I accept your answer? I'm happy with any choice.) –  Andrew Cheong Oct 18 '12 at 2:22
    
Cool, that's a nice solution, too! I don't mind the bounty, but I have a few questions about your solution. Firstly, what's the (?=\d) for? Secondly, why does the first alternative in step 2 not match the 1 in 10? Thirdly, I just tried to implement this with PHP (which uses PCRE, too), and I could not get it to work (only strings of 9 were incremented correctly). And lastly, you too need to add the DOTALL modifier, otherwise it will only work in the last line of the string. –  Martin Büttner Oct 18 '12 at 8:08
    
@m.buettner - Hm, I was able to implement it in PHP. Here, I added an example to my answer. Let me know if I'm missing something! Good point about the DOTALL modifier for multi-line input though. I think usually text editors run the substitution on a per-line basis (or imply DOTALL) anyway, but those are special cases. –  Andrew Cheong Oct 18 '12 at 14:09
    
@m.buettner - To answer your questions, the (?=\d) was one of several ways to prevent the matching of an empty string (you can see how, without it, the expression would always fall back to the second half of both alternations |(?=.*(1)) and |)), and I felt this was the simplest. (Other methods involved lookbehinds, which aren't supported by JavaScript.) And, the first alternative in step 2 doesn't match the 1 in 10 because I assert (?!\d) at the end; I am only interested in the last [0-8] or the trailing string of 9s. –  Andrew Cheong Oct 18 '12 at 14:13
1  
@m.buettner - Ah, that would do it. Many a time I've twisted my expressions into pretzels before realizing I just didn't escape a backslash. –  Andrew Cheong Oct 18 '12 at 15:07

Is it possible in a single substitution?

No.

If not, is it at least possible in a single substitution given an upper bound, e.g. numbers up to 9999?

No.

You can't even replace the numbers between 0 and 8 with their respective successor. Once you have matched, and grouped this number:

/([0-8])/

you need to replace it. However, regex doesn't operate on numbers, but on strings. So you can replace the "number" (or better: digit) with twice this digit, but the regex engine does not know it is duplicating a string that holds a numerical value.

Even if you'd do something (silly) as this:

/(0)|(1)|(2)|(3)|(4)|(5)|(6)|(7)|(8)/

so that the regex engine "knows" that if group 1 is matched, the digit '0' is matched, it still cannot do a replacement. You can't instruct the regex engine to replace group 1 with the digit '1', group '2' with the digit '2', etc. Sure, some tools like PHP will let you define a couple of different patterns with corresponding replacement strings, but I get the impression that is not what you were thinking about.

share|improve this answer
    
Ah, I see. Thanks for the explanation. I agree: as long as in regex (or at least, PCRE), one cannot make unencountered entities appear magically, there is no hope. I'm still thinking of a way ;) but meanwhile, +1. –  Andrew Cheong Oct 17 '12 at 19:34
    
good point..regex operates on strings not other types..Using it for diff types is not supported and would be stupid thing 2 do –  Anirudha Oct 17 '12 at 19:35
    
@acheong87, I am curious to see what you're thinking of yourself. Although I'm pretty familiar with regex, and pretty sure there is no neat solution in this case, I am sometimes baffled by what people who are more familiar with regex than I am come up with. –  Bart Kiers Oct 17 '12 at 19:36
    
I gave up trying to make characters appear magically, but I did come across a more compact solution. Anyway, many thanks for the initial observation, which so far stands unchallenged! –  Andrew Cheong Oct 18 '12 at 2:24
    
It's possible in Perl $str =~ s/(\d+)/$1+1/e –  Brad Gilbert Oct 20 '12 at 18:26

It is not possible by regular expression search and substitution alone.

You have to use use something else to help achieve that. You have to use the programming language at hand to increment the number.

Edit:

The regular expressions definition, as part of Single Unix Specification doesn't mention regular expressions supporting evaluation of aritmethic expressions or capabilities for performing aritmethic operations.


Nonetheless, I know some flavors ( TextPad, editor for Windows) allow you use \i as a substitution term which is an incremental counter of how many times has the search string been found, but it doesn't evaluate or parse found strings into a number nor does it allow to add a number to it.

share|improve this answer
    
This is a valid answer, but it being the negative answer to a positive question, one cannot accept it without proof (whereas a negative/positive answer to a negative/positive question is proven by a simpler means: an example). So, I would very much like to know a proof (or even an outline of one) as to why it is definitively impossible. –  Andrew Cheong Oct 17 '12 at 19:30
    
@acheong87 I improved the answer a little bit for you. –  user1598390 Oct 17 '12 at 20:20

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