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I have a text file running into 20,000 lines. A block of meaningful data for me would consist of name, address, city, state,zip, phone. My file has each of these on a new line, so a file would go like:

StoreName1
, Address
, City
,State
,Zip
, Phone

StoreName2
, Address
, City
,State
,Zip
, Phone

I need to create a CSV file and will need the above information for each store in 1 single line :

StoreName1, Address, City,State,Zip, Phone
StoreName2, Address, City,State,Zip, Phone

So essentially, I am trying to remove \r\n only at the appropriate points. How do I do this with python re. Examples would be very helpful, am a newbie at this.

Thanks.

share|improve this question
    
Does it have to be done with regex, and if so, is it homework? –  g.d.d.c May 12 '11 at 22:04
    
Additionally - is the data "normal"? Does every Store occupy 6 lines with a blank line separating, or is there expected variation (multiple address lines, phone numbers, etc)? –  g.d.d.c May 12 '11 at 22:06
    
perl -00 -i.bak -pe 's/\n,/,/g' whatever.txt but feel free to call that using python -c if you really want to. 😈 And you don’t have to worry about the carriage returns: \n will get a CRLF on a POB system. See how easy that is? Use the right tool for the right task. If your only tool is a hammer, then everything looks like a nail. But it isn’t. –  tchrist May 12 '11 at 23:45
    
Actually, you're not "removing line breaks". You're simply reformatting the file. If you don't think of the line breaks specifically, but think of comma-separated fields that have newlines inside the fields. –  S.Lott May 13 '11 at 0:15

5 Answers 5

s/[\r\n]+,/,/g

Globally substitute 'linebreak(s),' with ','

Edit:
If you want to reduce it further with a single linebreak between records:

s/[\r\n]+(,|[\r\n])/$1/g

Globally substitute 'linebreaks(s) (comma or linebreak) with capture group 1.

Edit:
And, if it really gets out of whack, this might cure it:

s/[\r\n]+\s*(,|[\r\n])\s*/$1/g

share|improve this answer
1  
You'd have to use re.sub(r'[\r\n]+,', ',', mydata) where mydata is the contents of the source file. Also, you still end up with extra line breaks after every 2nd line. –  jathanism May 12 '11 at 22:25
    
@jathanism - fixed. –  sln May 12 '11 at 22:42

This iterator/generator version doesn't require reading the entire file into memory at once

from itertools import groupby
with open("inputfile.txt") as f:
    groups = groupby(f, key=str.isspace)
    for row in ("".join(map(str.strip,x[1])) for x in groups if not x[0]):
        ...
share|improve this answer
    
@gnibbler IMO, I doubt that groups = groupby(f, key=str.isspace) can be executed and groups can be created without the file being read entirely –  eyquem May 13 '11 at 1:04
    
@eyquem, of course the entire file will be read as you iterate over all the rows. But the entire file does not need to be in memory at once. Each iteration of the for loop, just enough of the file is read in to construct the row, and then this memory can be freed at once. –  John La Rooy May 13 '11 at 1:10
    
@gnibbler well, wait a minute, I study your solution . I need to examine groupby() functioning a little more –  eyquem May 13 '11 at 1:20
    
@eyquem, str.isspace() is called on each line. groupby groups consecutive values with the same key together, so the first group is the lines for Store1, the second group is the following blank lines (or line if there is always only one) since "\n".isspace() is True. The third group is the lines for Store2 and so on. You should open a question if you want a more detailed answer –  John La Rooy May 13 '11 at 2:33
    
@gnibbler No, thank you, I don't need to ask more, I've understood. That's an incredibly tricky solution ! I hadn't integrate in my mind the fact that the argument of groupby may be not only a sequence with elements already separated but also any iterator that will be processed as an iterator, that is to say by means of the process of an iteration (waooh!), to obtain the "chunks" produced by this iterator. So your solution is far more astute than the first mind-numbigly ones of mine. Did you see this solution somewhere or is it your own ? It is a solution "à la Martelli". –  eyquem May 13 '11 at 6:03

Assuming the data is "normal" - see my comment - I'd approach the problem this way:

with open('data.txt') as fhi, open('newdata.txt', 'w') as fho:
  # Iterate over the input file.
  for store in fhi:
    # Read in the rest of the pertinent data
    fields = [next(fhi).rstrip() for _ in range(5)]

    # Generate a list of all fields for this store.
    row = [store.rstrip()] + fields

    # Output to the new data file.
    fho.write('%s\n' % ''.join(row))

    # Consume a blank line in the input file.
    next(fhi)
share|improve this answer

First mind-numbigly solution

import re

ch = ('StoreName1\r\n'
      ', Address\r\n'
      ', City\r\n'
      ',State\r\n'
      ',Zip\r\n'
      ', Phone\r\n'
      '\r\n'
      'StoreName2\r\n'
      ', Address\r\n'
      ', City\r\n'
      ',State\r\n'
      ',Zip\r\n'
      ', Phone')

regx = re.compile('(?:(?<=\r\n\r\n)|(?<=\A)|(?<=\A\r\n))'
                  '(.+?)\r\n(,.+?)\r\n(,.+?)\r\n(,.+?)\r\n(,.+?)\r\n(,[^\r\n]+)')

with open('csvoutput.txt','wb') as f:
    f.writelines(''.join(mat.groups())+'\r\n' for mat in regx.finditer(ch))

ch mimics the content of a file on a Windows platform (newlines == \r\n)

Second mind-numbigly solution

regx = re.compile('(?:(?<=\r\n\r\n)|(?<=\A)|(?<=\A\r\n))'
                  '.+?\r\n,.+?\r\n,.+?\r\n,.+?\r\n,.+?\r\n,[^\r\n]+')

with open('csvoutput.txt','wb') as f:
    f.writelines(mat.group().replace('\r\n','')+'\r\n' for mat in regx.finditer(ch))

Third mind-numbigly solution, if you want to create a CSV file with other delimiters than commas:

regx = re.compile('(?:(?<=\r\n\r\n)|(?<=\A)|(?<=\A\r\n))'
                  '(.+?)\r\n,(.+?)\r\n,(.+?)\r\n,(.+?)\r\n,(.+?)\r\n,([^\r\n]+)')
import csv

with open('csvtry3.txt','wb') as f:
    csvw = csv.writer(f,delimiter='#')
    for mat in regx.finditer(ch):
        csvw.writerow(mat.groups()) 

.

EDIT 1

You are right , tchrist, the following solution is far simpler:

regx = re.compile('(?<!\r\n)\r\n')    
with open('csvtry.txt','wb') as f:
    f.write(regx.sub('',ch))

.

EDIT 2

A regex isn't required:

with open('csvtry.txt','wb') as f:
    f.writelines(x.replace('\r\n','')+'\r\n' for x in ch.split('\r\n\r\n'))

.

EDIT 3

Treating a file, no more ch:

'à la gnibbler" solution, in cases when the file can't be read all at once in memory because it is too big:

from itertools import groupby
with open('csvinput.txt','r') as f,open('csvoutput.txt','w') as g:
    groups = groupby(f,key= lambda v: not str.isspace(v))
    g.writelines(''.join(x).replace('\n','')+'\n' for k,x in groups if k)

I have another solution with regex:

import re
regx = re.compile('^((?:.+?\n)+?)(?=\n|\Z)',re.MULTILINE)
with open('input.txt','r') as f,open('csvoutput.txt','w') as g:
    g.writelines(mat.group().replace('\n','')+'\n' for mat in regx.finditer(f.read()))

I find it similar to the gnibbler-like solution

share|improve this answer
    
Holy Toledo!! That is like mind-numbingly complex compared with perl -00 -pe 's/\n,/,/g'! Why are you making it so hard? –  tchrist May 12 '11 at 23:52
    
@tchrist Hello. Because your perl expression is cabalistic for me: I don't know perl. I searched mind-numbigly in freedictionary.com', but it doesn't have this entry. What does it mean , please ? –  eyquem May 13 '11 at 0:08
    
@tchrist Can you explain the meaning of your perl expression ? Maybe, I don't see a simple principle of treatment that complexifies my solutions . –  eyquem May 13 '11 at 0:10
    
@eyquem Sure thing. -00 sets the input record separator to 2+ adjacent linebreaks. -p means to loop around the input, reading a record at a time, and output whatever’s left of the record when the argument to -e has had its way with it. Looks like I should add a -e '; s/\n{2,}$/\n/' to avoid extra linebreaks. You can get perl to uncompile that for you so you can see the real code by running perl -MO=Deparse -00 -i.bak -pe 's/\n,/,/g; s/\n{2,}$//'. That should remove a lot of the mystery. –  tchrist May 13 '11 at 0:21
    
@eyquem: If you’re on a Prisoner of Bill system, then text files are by default processed in a way that maps CRLF to \n and back again, so you never have to worry about portability. This is an example of Perl masquerading as a special-purpose language instead of general-purpose one. It works like sed does in this regard, except you can’t do general programming in sed. :) –  tchrist May 13 '11 at 0:28
f = open(infilepath, 'r')
s = ''.join([line for line in f])
s = s.replace('\n\n', '\\n')
s = s.replace('\n', '')
s = s.replace("\\n", "\n")
f.close()

f = open(infilepath, 'r')
f.write(s)
f.close()

That should do it. It will replace your input file with the new format

share|improve this answer
    
+1 Even though he has tagged it regex. –  Dhaivat Pandya May 12 '11 at 22:09
2  
this won't work. Do you think "Phone" will "Phone" in every line????? It will be some value for phone! –  manojlds May 12 '11 at 22:10
    
@manojlds: Good point (+1)! I never considered that –  inspectorG4dget May 12 '11 at 22:13
    
My edit should fix that problem. –  inspectorG4dget May 12 '11 at 22:15
    
-1 (1) Using line.strip() in the 2nd line of code will blow away all the \n characters in the file. Replace the 2nd line by s = f.read(). Or if you believe that the row-separator line may contain more whitespace than the terminating newline, change the 2nd code line to use '\n'.join(....). (2) In any case, this "solution" will blow up if there's an instance of \n already in the data ... quite possible, careless data enterer hits ` key instead of Backspace` key. –  John Machin May 13 '11 at 7:30

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