Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have few text(SMS) messages and I want to segment them using period('.') as a delimiter. I am unable to handle following types of messages. How can I segment these messages using Regex in Python.

Before segmentation:

'hyper count 16.8mmol/l.plz review b4 5pm.just to inform u.thank u'
'no of beds 8.please inform person in-charge.tq'

After segmentation:

'hyper count 16.8mmol/l' 'plz review b4 5pm' 'just to inform u' 'thank u'
'no of beds 8' 'please inform person in-charge' 'tq'

Each line is a separate message

Updated:

I am doing natural language processing and I feel its okay to treat '16.8mmmol/l' and 'no of beds 8.2 cups of tea.' as same. 80% accuracy is enough for me but I want to reduce False Positive as much as possible.

share|improve this question
    
I think your sentences are irregular, so regex isn't appropriate solution, unless you provide all the splitting rules. –  Kirill Polishchuk Jul 19 '11 at 10:21
    
How do you make a difference between units (16.8) and sentences that happen to end and begin with numbers (no of beds 8.2 cups of tea)? –  Ikke Jul 19 '11 at 10:21
    
I am doing natural language processing and I feel its okay to treat 16.8mmmol/l and no of beds 8.2 cups of tea. as same. 80% accuracy is enough for me but I want to reduce false positive as much as possible. –  Mahin Jul 19 '11 at 10:32
1  
I suppose it is not possible to tell your test subjects how to write properly? Just a few spaces would go a long way... –  carlpett Jul 19 '11 at 10:36
    
@polishchuk But numbers are regular and it is possible to use a regex to avoid splitting occuring because of dots in numbers, see my answer –  eyquem Jul 20 '11 at 0:29

5 Answers 5

up vote 1 down vote accepted

What about

re.split('(?<!\d)\.|\.(?!\d)', 'hyper count 16.8mmol/l.plz review b4 5pm.just to inform u.thank u')

The lookarounds ensure that either on one or the other side is not a digit. So this covers also the 16.8 case. This expression will not split if there are on both sides digits.

share|improve this answer
    
'(?<!\d)\.|\.(?!\d)' splits according dots in beds 8.please and number .977 is . Is it what you really want ? If not, the regex pattern must be '(?<!\d)\.(?!\d)' –  eyquem Jul 20 '11 at 7:44
    
@eyquem yes thats what I wanted and what I wrote in my explanation. The question is what the OP wants. –  stema Jul 20 '11 at 7:50
    
Doesn't the phrase either on one or the other side is not a digit mean : there must be no digit on left side of a dot, AND there must be no digit on the right side of a dot ? I am not anglophone and I sometimes don't understand english correctly. –  eyquem Jul 20 '11 at 7:56
    
@eyquem no it means OR. I accept a digit on one side of a dot but not on both. –  stema Jul 20 '11 at 8:00
    
You are right. I don't know why I understand AND where you wrote OR .... ! I should have written: there must be no digits on left AND right side TOGETHER around a dot as meaning of either on one or the other side is not a digit. But I think it would be clearer and more exact if you had written: either on one or the other side is a non-digit –  eyquem Jul 20 '11 at 8:26

Some weeks ago, I searched for a regex that would catch every string representing a number in a string, whatever the form in which the number is written, even the ones in scientific notation, even the indian numbers having commas: see this thread

I use this regex in the following code to give a solution to your problem.

Contrary to the other answers, in my solution a dot in '8.' isn't considered as a dot on which a split must be done, because it can be read as a float having no digit after the dot.

import re

regx = re.compile('(?<![\d.])(?!\.\.)'
                  '(?<![\d.][eE][+-])(?<![\d.][eE])(?<!\d[.,])'
                  '' #---------------------------------
                  '([+-]?)'
                  '(?![\d,]*?\.[\d,]*?\.[\d,]*?)'
                  '(?:0|,(?=0)|(?<!\d),)*'
                  '(?:'
                  '((?:\d(?!\.[1-9])|,(?=\d))+)[.,]?'
                  '|\.(0)'
                  '|((?<!\.)\.\d+?)'
                  '|([\d,]+\.\d+?))'
                  '0*'
                  '' #---------------------------------
                  '(?:'
                  '([eE][+-]?)(?:0|,(?=0))*'
                  '(?:'
                  '(?!0+(?=\D|\Z))((?:\d(?!\.[1-9])|,(?=\d))+)[.,]?'
                  '|((?<!\.)\.(?!0+(?=\D|\Z))\d+?)'
                  '|([\d,]+\.(?!0+(?=\D|\Z))\d+?))'
                  '0*'
                  ')?'
                  '' #---------------------------------
                  '(?![.,]?\d)')



simpler_regex = re.compile('(?<![\d.])0*(?:'
                           '(\d+)\.?|\.(0)'
                           '|(\.\d+?)|(\d+\.\d+?)'
                           ')0*(?![\d.])')


def split_outnumb(string, regx=regx, a=0):
    excluded_pos = [x for mat in regx.finditer(string) for x in range(*mat.span()) if string[x]=='.']
    li = []
    for xdot in (x for x,c in enumerate(string) if c=='.' and x not in excluded_pos):
        li.append(string[a:xdot])
        a = xdot + 1
    li.append(string[a:])
    return li





for sentence in ('hyper count 16.8mmol/l.plz review b4 5pm.just to inform u.thank u',
                 'no of beds 8.please inform person in-charge.tq',
                 'no of beds 8.2 cups of tea.tarabada',
                 'this number .977 is a float',
                 'numbers 214.21E+45 , 478945.E-201 and .12478E+02 are in scientific.notation',
                 'an indian number 12,45,782.258 in this.sentence and 45,78,325. is another',
                 'no dot in this sentence',
                 ''):
    print 'sentence         =',sentence
    print 'splitted eyquem  =',split_outnumb(sentence)
    print 'splitted eyqu 2  =',split_outnumb(sentence,regx=simpler_regex)
    print 'splitted gurney  =',re.split(r"\.(?!\d)", sentence)
    print 'splitted stema   =',re.split('(?<!\d)\.|\.(?!\d)',sentence)
    print

result

sentence         = hyper count 16.8mmol/l.plz review b4 5pm.just to inform u.thank u
splitted eyquem  = ['hyper count 16.8mmol/l', 'plz review b4 5pm', 'just to inform u', 'thank u']
splitted eyqu 2  = ['hyper count 16.8mmol/l', 'plz review b4 5pm', 'just to inform u', 'thank u']
splitted gurney  = ['hyper count 16.8mmol/l', 'plz review b4 5pm', 'just to inform u', 'thank u']
splitted stema   = ['hyper count 16.8mmol/l', 'plz review b4 5pm', 'just to inform u', 'thank u']

sentence         = no of beds 8.please inform person in-charge.tq
splitted eyquem  = ['no of beds 8.please inform person in-charge', 'tq']
splitted eyqu 2  = ['no of beds 8.please inform person in-charge', 'tq']
splitted gurney  = ['no of beds 8', 'please inform person in-charge', 'tq']
splitted stema   = ['no of beds 8', 'please inform person in-charge', 'tq']

sentence         = no of beds 8.2 cups of tea.tarabada
splitted eyquem  = ['no of beds 8.2 cups of tea', 'tarabada']
splitted eyqu 2  = ['no of beds 8.2 cups of tea', 'tarabada']
splitted gurney  = ['no of beds 8.2 cups of tea', 'tarabada']
splitted stema   = ['no of beds 8.2 cups of tea', 'tarabada']

sentence         = this number .977 is a float
splitted eyquem  = ['this number .977 is a float']
splitted eyqu 2  = ['this number .977 is a float']
splitted gurney  = ['this number .977 is a float']
splitted stema   = ['this number ', '977 is a float']

sentence         = numbers 214.21E+45 , 478945.E-201 and .12478E+02 are in scientific.notation
splitted eyquem  = ['numbers 214.21E+45 , 478945.E-201 and .12478E+02 are in scientific', 'notation']
splitted eyqu 2  = ['numbers 214.21E+45 , 478945.E-201 and .12478E+02 are in scientific', 'notation']
splitted gurney  = ['numbers 214.21E+45 , 478945', 'E-201 and .12478E+02 are in scientific', 'notation']
splitted stema   = ['numbers 214.21E+45 , 478945', 'E-201 and ', '12478E+02 are in scientific', 'notation']

sentence         = an indian number 12,45,782.258 in this.sentence and 45,78,325. is another
splitted eyquem  = ['an indian number 12,45,782.258 in this', 'sentence and 45,78,325. is another']
splitted eyqu 2  = ['an indian number 12,45,782.258 in this', 'sentence and 45,78,325. is another']
splitted gurney  = ['an indian number 12,45,782.258 in this', 'sentence and 45,78,325', ' is another']
splitted stema   = ['an indian number 12,45,782.258 in this', 'sentence and 45,78,325', ' is another']

sentence         = no dot in this sentence
splitted eyquem  = ['no dot in this sentence']
splitted eyqu 2  = ['no dot in this sentence']
splitted gurney  = ['no dot in this sentence']
splitted stema   = ['no dot in this sentence']

sentence         = 
splitted eyquem  = ['']
splitted eyqu 2  = ['']
splitted gurney  = ['']
splitted stema   = ['']

EDIT 1

I added a simpler_regex detecting numbers, from a post of mine in this thread

I doesn't detect indian numbers and numbers in scientific notation but it gives in fact the same results

share|improve this answer
    
+1 for your comparison of the different solutions. Very nice. –  stema Jul 20 '11 at 5:25

you can use a negative lookahead assertion to match a "." not followed by a digit, and use re.split on this:

>>> import re
>>> splitter = r"\.(?!\d)"
>>> s = 'hyper count 16.8mmol/l.plz review b4 5pm.just to inform u.thank u'
>>> re.split(splitter, s)
['hyper count 16.8mmol/l', 'plz review b4 5pm', 'just to inform u', 'thank u']
>>> s = 'no of beds 8.please inform person in-charge.tq'
>>> re.split(splitter, s)
['no of beds 8', 'please inform person in-charge', 'tq']
share|improve this answer

It depends on your exact sentence, but you could try:

.*?[a-zA-Z0-9]\.(?!\d)

See if that works. This will keep in the quotes, but you can then remove them if needed.

share|improve this answer
"...".split(".")

split is a Python builtin that separates a string at a specific character.

share|improve this answer
2  
That would split the . in 16.8mmol/l too. –  Ikke Jul 19 '11 at 10:22

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.