Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I want to slice word from the end.Suppose, I have some line with case sensitives(Upper/lower case)

Abc Defg Hijk Lmn
Xyz Lmn jkf gkjhg

I want to slice them as like below :

Abc Defg Hijk
Abc Defg
Abc 

Then I need to take each sliced line in variables so that I can use them to search in some text file & return the whole text:

Suppose I have text :

 Akggf Abc Defg Hijk fgff jfkjgk djkfkgf     
 Akgff Abc fgff jfkjgk djkfkgf     
 Akggef Abc Defg  fgff jfkjgk djkfkgf
 gjshgs gskk Xyz Lmn jkf
 fgsgdf fkgksk Xyz Lmn

Any suggestions please.Thanks!

share|improve this question
    
so those selections are the first 3, 2, and 1, words of the line? – Dan D. Jul 8 '11 at 11:45
    
@Dan D.:Yes, it is. But I need to do this process globally & take each sliced line in varriables. – Big.Bang Jul 8 '11 at 11:48
up vote 1 down vote accepted

You can also use the following code:

dataStr = 'Abc Defg Hijk Lmn'
for word in reversed(dataStr.split()):
    # do something with word

OR:

dataStr = 'Abc Defg Hijk Lmn'
removeLastWord = lambda line: ' '.join([word for word in line.split()[:-1]])
dataStr = removeLastWord(dataStr)
>>> 'Abc Defg Hijk'
dataStr = removeLastWord(dataStr)
>>> 'Abc Defg'
dataStr = removeLastWord(dataStr)
>>> 'Abc'

I have read your update and think that Roman's solution feats your needs. You can update your code the following way:

searchTxt = """Abc Defg Hijk Lmn
Xyz Lmn jkf gkjhg"""

data = """kggf **Abc Defg Hijk** fgff jfkjgk djkfkgf
 Akggf **Abc ** fgff jfkjgk djkfkgf
 Akggf **Abc Defg  fgff jfkjgk djkfkgf
 gjshgs gskk **Xyz Lmn jkf**
 fgsgdf fkgksk **Xyz Lmn**"""

searchWords = []
for line in (line for line in searchTxt.split('\n') if line.strip()):
    words = line.split()
    searchWords.extend([' '.join(words[:i]) for i in xrange(len(words), 0, -1)])

searchWords = sorted(searchWords, key=len, reverse=True)# to look first for the longest string match

res = set([line for sword in searchWords for line in data.split('\n') if sword in line])

# OR

res = []
for line in data.split('\n'):
    for sword in searchWords:
        if sword in line:
            res.append(line)
            break

And if you need to get a full text:

resultText = '\n'.join(res)
share|improve this answer
    
Thank you so much! – Big.Bang Jul 8 '11 at 11:51
1  
You welcome)) If you like my solution - vote up))) – Artsiom Rudzenka Jul 8 '11 at 11:51
    
@ Artsiom Rudzenka : Could you please a bit elaborate.I mean how to get the desired sliced line for many dataStr.Thanks! – Big.Bang Jul 8 '11 at 12:02
    
Give me an example so i will be able to help you. – Artsiom Rudzenka Jul 8 '11 at 12:05
    
@ Artsiom Rudzenka : I have updated the question.Could you please have a look! – Big.Bang Jul 8 '11 at 12:17

Use rsplit function:

>>> s = 'Abc Defg Hijk Lmn'
>>> s.rsplit(' ', 1)[0]
'Abc Defg Hijk'
>>> s = s.rsplit(' ', 1)[0]
>>> s.rsplit(' ', 1)[0]
'Abc Defg'

and so on...

Another variant:

>>> words = s.split()
>>> [' '.join(words[:i]) for i in range(len(words), 0, -1)]
['Abc Defg Hijk Lmn', 'Abc Defg Hijk', 'Abc Defg', 'Abc']
share|improve this answer
    
Thanks man!........ – Big.Bang Jul 8 '11 at 11:46
    
For looping an idea please! – Big.Bang Jul 8 '11 at 11:49
    
[' '.join(words[:i]) for i in range(len(words), 0, -1)] Like it! Many thanks. – Big.Bang Jul 8 '11 at 11:56

To create a list from string:

a="Abc Defg Hijk Lmn".split()

look at it:

['Abc', 'Defg', 'Hijk', 'Lmn']

slice it, to remove last entry:

a[:-1]

This gives:

['Abc', 'Defg', 'Hijk']

To join it into a string again:

" ".join(a[:-1])

gives:

'Abc Defg Hijk'

Now, repeat that in a loop...

share|improve this answer
    
Note that s != " ".join(s.split()) while s == " ".join(s.split(" ")) when s = "Two spaces" – phant0m Jul 8 '11 at 11:51

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.