Currently i am working on an application that splits a long column into short ones. For that i split the entire text into words, but at the moment my regex splits numbers too.

What i do is this:

str = "This is a long string with some numbers [125.000,55 and 140.000] and an end. This is another sentence.";
sentences = str.replace(/\.+/g,'.|').replace(/\?/g,'?|').replace(/\!/g,'!|').split("|");

The result is:

Array [
    "This is a long string with some numbers [125.",
    "000,55 and 140.",
    "000] and an end.",
    " This is another sentence."
]

The desired result would be:

Array [
    "This is a long string with some numbers [125.000, 140.000] and an end.",
    "This is another sentence"
]

How do i have to change my regex to achieve this? Do i need to watch out for some problems i could run into? Or would it be good enough to search for ". ", "? " and "! "?

  • Can you change the string or is this not an option? – Beejee Sep 20 '13 at 10:38
  • Are you looking for a working regex that would get the desired result (or) you already know that and want suggestions on other potential problems with it? – Harry Sep 20 '13 at 10:39
  • @Beejee: I could manipulate the string. – Tobias Golbs Sep 20 '13 at 10:48
  • 'Or would it be good enough to search for ". ", "? " and "! "?' - No, because it doesn't allow for use of ". " in an abbreviation: "Should we go to the F.B.I. or the Grammar Police?" – nnnnnn Aug 19 '16 at 7:29
up vote 24 down vote accepted
str.replace(/([.?!])\s*(?=[A-Z])/g, "$1|").split("|")

Output:

[ 'This is a long string with some numbers [125.000,55 and 140.000] and an end.',
  'This is another sentence.' ]

Breakdown:

([.?!]) = Capture either . or ? or !

\s* = Capture 0 or more whitespace characters following the previous token ([.?!]). This accounts for spaces following a punctuation mark which matches the English language grammar.

(?=[A-Z]) = The previous tokens only match if the next character is within the range A-Z (capital A to capital Z). Most English language sentences start with a capital letter. None of the previous regexes take this into account.


The replace operation uses:

"$1|"

We used one "capturing group" ([.?!]) and we capture one of those characters, and replace it with $1 (the match) plus |. So if we captured ? then the replacement would be ?|.

Finally, we split the pipes | and get our result.


So, essentially, what we are saying is this:

1) Find punctuation marks (one of . or ? or !) and capture them

2) Punctuation marks can optionally include spaces after them.

3) After a punctuation mark, I expect a capital letter.

Unlike the previous regular expressions provided, this would properly match the English language grammar.

From there:

4) We replace the captured punctuation marks by appending a pipe |

5) We split the pipes to create an array of sentences.

  • This solution fails if a sentence starts with a number. – Tibos Sep 20 '13 at 10:52
  • You can modify it to this: /([.?!])\x20{1,2}(?=[A-Z\d])/. However, this would expect that A) decimal numbers do not have spaces after them, and B) there is either one or two space characters following a punctuation mark. This would conform with English grammar. If you cannot accept condition A, there would be an ambiguity in the grammar you are attempting to parse. – Roger Poon Sep 20 '13 at 10:58
  • More on grammatical ambiguity in computer science: en.wikipedia.org/wiki/Ambiguous_grammar . Essentially, in your situation, numbers with a decimal separator and punctuation marks for new sentences need to be grammatically distinguishable. The revised regex I provided conforms with the English language grammar. – Roger Poon Sep 20 '13 at 11:03
  • I fail to see how ignoring condition A leads to an ambiguous grammar. The dot ambiguity can be solved (imperfectly, but still a very practical solution) with a couple of rules: 1) dot between two digits is a decimal separator; 2) dot between anything except two digits is a punctuation mark - sentence separator. – Tibos Sep 20 '13 at 11:09
  • What about "My daughter is 10. 10 more years from now, she will be 20." ? – Roger Poon Sep 20 '13 at 11:12
str.replace(/(\.+|\:|\!|\?)(\"*|\'*|\)*|}*|]*)(\s|\n|\r|\r\n)/gm, "$1$2|").split("|")

The RegExp (see on Debuggex):

  • (.+|:|!|\?) = The sentence can end not only by ".", "!" or "?", but also by "..." or ":"
  • (\"|\'|)*|}|]) = The sentence can be surrounded by quatation marks or parenthesis
  • (\s|\n|\r|\r\n) = After a sentense have to be a space or end of line
  • g = global
  • m = multiline

Remarks:

  • If you use (?=[A-Z]), the the RegExp will not work correctly in some languages. E.g. "Ü", "Č" or "Á" will not be recognised.

You could exploit that the next sentence begins with an uppercase letter or a number.

.*?(?:\.|!|\?)(?:(?= [A-Z0-9])|$)

Regular expression visualization

Debuggex Demo

It splits this text

This is a long string with some numbers [125.000,55 and 140.000] and an end. This is another sentence. Sencenes beginning with numbers work. 10 people like that.

into the sentences:

This is a long string with some numbers [125.000,55 and 140.000] and an end.
This is another sentence.
Sencenes beginning with numbers work.
10 people like that.

jsfiddle

  • This is great, I just noticed it doesn't handle bad user input such as"Jim went to the store.Larry slept until 12.But Becky left for the weekend." But, this is beyond the scope of the question. I just mention it for anyone like myself who might be looking for a quick regexp to handle this. – Quinxy von Besiex Oct 3 '16 at 0:00

Use lookahead to avoid replacing dot if not followed by space + word char:

sentences = str.replace(/(?=\s*\w)\./g,'.|').replace(/\?/g,'?|').replace(/\!/g,'!|').split("|");

OUTPUT:

["This is a long string with some numbers [125.000,55 and 140.000] and an end. This is another sentence."]

You're safer using lookahead to make sure what follows after the dot is not a digit.

var str ="This is a long string with some numbers [125.000,55 and 140.000] and an end. This is another sentence."

var sentences = str.replace(/\.(?!\d)/g,'.|');
console.log(sentences);

If you want to be even safer you could check if what is behind is a digit as well, but since JS doesn't support lookbehind, you need to capture the previous character and use it in the replace string.

var str ="This is another sentence.1 is a good number"

var sentences = str.replace(/\.(?!\d)|([^\d])\.(?=\d)/g,'$1.|');
console.log(sentences);

An even simpler solution is to escape the dots inside numbers (replace them with $$$$ for example), do the split and afterwards unescape the dots.

  • This is the only one that worked perfectly for me. ( the first version ) – Milad.Nozari Nov 12 '15 at 8:52

you forgot to put '\s' in your regexp.

try this one

var str = "This is a long string with some numbers [125.000,55 and 140.000] and an end. This is another sentence.";
var sentences = str.replace(/\.\s+/g,'.|').replace(/\?\s/g,'?|').replace(/\!\s/g,'!|').split("|");
console.log(sentences[0]);
console.log(sentences[1]);

http://jsfiddle.net/hrRrW/

I would just change the strings and put something between each sentence. You told me you have the right to change them so it will be easier to do it this way.

\r\n

By doing this you have a string to search for and you won't need to use these complex regex.

If you want to do it the harder way I would use a regex to look for "." "?" "!" folowed by a capital letter. Like Tessi showed you.

My solution is similar to the accepted answer, except I check for common English titles with negative look behinds.

Example:

Mr. Green

I also cover sentences that start with a digit

Example:

The answer was not 8. 7 was the answer.

The regex:

((?<! [Mm][Rr]| [Mm][Ss]| [Mm][Rr][Ss]| [Mm][Xx]| [Dd][Rr]| [Ff][Rr]| [Pp][Rr]| [Bb][Rr]| [Ss][Rr]| [Pp][Rr][Oo][Ff])[.?!](?!\d))\s+(?=[A-Z0-9])

The js:

str.replace(/((?<! [Mm][Rr]| [Mm][Ss]| [Mm][Rr][Ss]| [Mm][Xx]| [Dd][Rr]| [Ff][Rr]| [Pp][Rr]| [Bb][Rr]| [Ss][Rr]| [Pp][Rr][Oo][Ff])[.?!](?!\d))\s+(?=[A-Z0-9])/g, "$1|").split("|")

Regex 101 link

var str = `The big Black, brown, etc. cat ran through MR. and Mrs. Greens yard at 5.6 miles per hour. 10 other cats did the same. The answer was 8. 7 Was not the answer. A question? Wow! Not wow. The F.B.I. is here! Hello world.`;
var result = str.replace(/((?<! [Mm][Rr]| [Mm][Ss]| [Mm][Rr][Ss]| [Mm][Xx]| [Dd][Rr]| [Ff][Rr]| [Pp][Rr]| [Bb][Rr]| [Ss][Rr]| [Pp][Rr][Oo][Ff])[.?!](?!\d))\s+(?=[A-Z0-9])/g, "$1|").split("|");
console.log(result);

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