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I'm having some trouble sorting data from a text file by a certain field. Possibly by multiple fields later. The .txt is several thousands of lines of code. I'm brand new to python so my code is probably a bit messy. For example, this is the textfile i would read from:

stuff
123 1200 id-aaaa stuart@test.com
322 1812 id-wwww machine-switch@test.com
839 1750 id-wwww gary2-da@test.com
500 0545 id-aaaa abc123@test.com
525 1322 id-bbbb zyx321@test.com

my code so far is as follows:

filelist = open("info.txt").readlines()
splitlist = list()

class data:
    def __init__(self, eventName, time, identity, domain):
        self.evenName = eventName
        self.time = time
        self.identity = identity
        self.domain = domain

for line in filelist:
    filelist = list.split(', ')
    splitlist.append(filelist)

for column in splitlist:
    if (len(column) > 1): #to skip the first line
        eventName = column[0].strip()
        time = column[1].strip()
        identity = column[2].strip()
        domain = column[3].strip()

I want to sort the .txt file line by line by the identity, then maybe by time. I saw that this could be done by classes in the python tutorial, so i'm trying to go that route. Please advise. Thank you!

share|improve this question
    
Is stuff in the text file, or the name of the text file? –  Hugh Bothwell Jun 10 '12 at 22:50
    
It is in the textfile. –  user1443368 Jun 10 '12 at 22:59
    
Is there only one such non-data line (ie a header), or might they occur anywhere? –  Hugh Bothwell Jun 10 '12 at 23:04
    
There is two to be exact. The first and the last line. –  user1443368 Jun 10 '12 at 23:10
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4 Answers 4

up vote 5 down vote accepted
with open("info.txt") as inf:
    data = []
    for line in inf:
        line = line.split()
        if len(line)==4:
            data.append(line)

data.sort(key=lambda s:(s[2],s[1]))

If you want to get a bit fancier,

from collections import namedtuple
Input = namedtuple('Input', ('name', 'time', 'identity', 'domain'))

with open("info.txt") as inf:
    inf.next()  # skip header
    data = [Input(*(line.split()) for line in inf]

data.sort(key=lambda s:(s['identity'],s['time']))

If you really, really want to use a class, try:

import time

class Data(object):
    def __init__(self, event, time_, identity, domain):
        self.event = event
        self.time = time.strptime(time_, "%H%M")
        self.identity = identity
        self.domain = domain

with open("info.txt") as inf:
    data = []
    for line in inf:
        try:
            data.append(Data(*(line.split()))
        except TypeError:
            # wrong number of arguments (ie header or footer)
            pass

data.sort(key=lambda s:(s.identity,s.time))
share|improve this answer
    
Hi Hugh. I seem to be getting a "*** non-keyword arg after keyword arg" error on line data.sort(... –  user1443368 Jun 10 '12 at 23:08
1  
Sorry - missed a closing-quote on 'time'. –  Hugh Bothwell Jun 10 '12 at 23:12
    
It was actually on the first block of code you have written down. Is there a certain library that i need to include to perform .sort? –  user1443368 Jun 10 '12 at 23:14
    
Nope, sort is built in. I think that either I needed brackets on the s[2],s[1] or it was choking on the footer line. –  Hugh Bothwell Jun 10 '12 at 23:20
    
thanks for all the help hugh!! I referred to this a few times and it helped me understand python syntax and better coding techniques. –  user1443368 Jun 19 '12 at 23:30
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This is a common mistake made, what you have done it opened it without actually reading the file in the proper syntax, here is what I think:

filelist = open("info.txt", "r")
print filelist
filelist.read() # reads the entire file
splitlist = list()

class data:
    def __init__(self, eventName, time, identity, domain):
        self.evenName = eventName
        self.time = time
        self.identity = identity
        self.domain = domain

for line in filelist:
    filelist = list.split(', ')
    splitlist.append(filelist)

for column in splitlist:
    if (len(column) > 1): #to skip the first line
        eventName = column[0].strip()
        time = column[1].strip()
        identity = column[2].strip()
        domain = column[3].strip()

Hope that works! Source: http://docs.python.org/tutorial/inputoutput.html

share|improve this answer
    
filelist.read() brings the entire file line in as a single line of data... not what is wanted. –  Hugh Bothwell Jun 10 '12 at 22:54
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To sort by id then date:

text = ["123 1200 id-aaaa stuart@test.com",
        "322 1812 id-wwww machine-switch@test.com",
        "839 1750 id-wwww gary2-da@test.com",
        "500 0545 id-aaaa abc123@test.com",
        "525 1322 id-bbbb zyx321@test.com"]
text = [i.split() for i in text]
text.sort(key=lambda line: (line[2],line[1]))
text = [' '.join(i) for i in text]
print text
#Output:
['500 0545 id-aaaa abc123@test.com', 
'123 1200 id-aaaa stuart@test.com', 
'525 1322 id-bbbb zyx321@test.com', 
'839 1750 id-wwww gary2-da@test.com', 
'322 1812 id-wwww machine-switch@test.com']
share|improve this answer
    
If you're going to do text = sorted(text), it would use half as much memory to just text.sort(). –  Hugh Bothwell Jun 10 '12 at 22:57
    
@Hugh Bothwell - thankyou, I have amended, but you were way faster on the trigger! –  fraxel Jun 10 '12 at 23:02
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The following Python code should put together the information you want, which is then sorted.

rows = []
for line in open("info.txt"):
    line = line.split()
    if len(line) != 4:
        continue

    eventName, time, identity, domain = line

    # Add them in the order you want to sort by
    rows.append((identity, time, eventName, domain)) 

rows.sort()
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