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i have a text file, say

1: 0,0,0,122
2: 2,0,3,333
3: 0,0,0,23

and so on. i need to find "0,0,0" pattern in the text file and print all lines except the one containing the given pattern. please can anyone tell me the code for this in python.

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I can help you but I won't solve this for you. What have you tried? –  Austin Henley Sep 26 '12 at 22:07

3 Answers 3

up vote 4 down vote accepted

A robust way would be something like:

import re
pattern = re.compile(r'0\s*,0\s*,0\s*')
with open(filename) as f:
    for line in f:
            if pattern.search(line):
                    print line

In this way if you have a line that has some space it's skipped(e.g. "0, 0,0" instead of "0,0,0").

But if you're sure that the will be no such thing, or if you want to match exactly "0,0,0"[no spaces], than you can avoid using the re module and just use the in operator:

with open(filename) as f:
    for line in f:
            if '0,0,0' not in line:
                    print line
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Use the context manager to open the file. Iterate through the file line by line. If your pattern does not occur in the line, print the line:

filename = 'textfile.txt'
pattern = '0,0,0'

with open(filename) as f:
    for line in f:
        if pattern not in line:
            print line

Untested, but should work.

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for line in textfile.split('\n'):
    if '0,0,0' not in line:
        print line
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This assumes that the whole file is in memory (in textfile). Using the iterator approach for line in file is more efficient and elegant. –  Jan-Philip Gehrcke Aug 31 '12 at 11:20

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