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I have a list of tuples, like this:

[(time1, hashusi, servername, uri, referrer, useragent),
 (time2, hashusi, servername, uri, referrer, useragent),
 (time3, srcip, code, mime),
 (time4, hashusi, servername, uri, referrer, useragent),
 (time5, srcip, code, mime) ...]

If the length of the item is 6, it means it is a request, otherwise it's a response, now I need to pair all the requests and responses in this list, they are already sorted by time, as you can see in this example, the first two items are both request.

I want to go through the items one by one, if a request is followed by a response, then they are a pair, I will assign a number for them. If a request is followed by a request, then the first request should be discard and to check if the second one is followed by a response, etc

for item in mergelistsorted:
    if len(item) == 6 and flag == None: #The first item is a request
       ##need to check the next item##
       if len(next item) == 6:
          continue
       else:
          requestlist.append((item[0],item[1],item[2],item[3])) 

I don't know how to refer to the "next item"

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There are times when the for x in seq metaphor doesn't work. This is one of them. You'll need to play with seq[i] and seq[i+1] etc. –  msw Jun 10 '12 at 14:41
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3 Answers

up vote 4 down vote accepted

Define this method (source):

def pairwise(iterable):
    "s -> (s0,s1), (s1,s2), (s2, s3), ..."
    a, b = itertools.tee(iterable)
    next(b, None)
    return itertools.izip(a, b)

Then use this loop:

for curr, next in pairwise(list):

The caveat of this is that you won't get the last item in the curr--the last iteration will be (next_to_last, last). If you want to get (last, None) in your final iteration you need to change izip to izip_longest in the pairwise definition.

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You can iterate through pairs with a loop like this:

for prv, nxt in zip(ls[:-1], ls[1:]):
   ...     

For example:

ls = [
    'request1',
    'request2',
    'request3',
    'response3',
    'request4',
    'response4',
]

for prv, nxt in zip(ls[:-1], ls[1:]):
    if 'request' in prv and 'response' in nxt:
        print prv, nxt
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+1 Thats one really amazing method! –  Thrustmaster Jun 10 '12 at 14:42
    
zipped sequences are indeed nice, but it doesn't address the "check if the second one is followed by a response" bit in the original question –  msw Jun 10 '12 at 14:45
    
@msw: unless I misunderstood the question, it seems it does. –  gdbdmdb Jun 10 '12 at 15:11
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Instead of using for item in list, use for index in range(len(list)).

Then you can refer to item as list[index], and next item will be list[index+1].

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1  
for index, item in enumerate(list) is more pythonic –  mfussenegger Jun 10 '12 at 14:40
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