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this is my python code :

a=['aaa','bbb','oooo','qqqq','gggg']
for i in a:
    print i #how to get the next obj in this  place .

i want to get next code when i get the i element ,

thanks

share|improve this question
    
I don't understand what you want. Show what the output should look like. – Karl Knechtel Feb 16 '11 at 8:00
up vote 2 down vote accepted

You could use the zip function to get both the current and next item in the list in the for loop. So the for loop is iterating through the list and the list offset by 1 at the same time:

for this,after in zip(a,a[1:]):
    print this,after

However, zip stops at the end of the shortest list so you won't get to process the last element of your list. If this is a problem use izip_longest from itertools.

import itertools
for this,after in itertools.izip_longest(a,a[1:]):
    print this,after

In this case after will be None for the last item in the list.

izip_longest was introduced in Python 2.6 so if you're running an earlier version you could achieve the same effect by hand by appending None on to the end of the shorter list:

for this,after in zip(a,a[1:] + [None]):
    print this,after

You can use {% for x, y in somelist %} in a Django template but you would need do the zip in your model and store that in a variable passed to the template.

share|improve this answer
    
'module' object has no attribute 'izip_longest' – zjm1126 Feb 16 '11 at 9:25
    
@zjm1126 - izip_longest was introduced in Python 2.6. I guess you're running an earlier version. I've edited the answer to show an alternate method that will work for you. – Dave Webb Feb 16 '11 at 9:36
    
thanks very much . – zjm1126 Feb 16 '11 at 10:56

It's easier just to enumerate the list for this:

a=['aaa','bbb','oooo','qqqq','gggg']

for idx, item in enumerate(a):
    print item
    if idx < len(a)-1:
       print a[idx+1]

(edit: fixed for IndexError)

share|improve this answer
    
This will implode once it hits the last element. – Ignacio Vazquez-Abrams Feb 16 '11 at 6:16
    
can this used to django template . stackoverflow.com/questions/5012973/… – zjm1126 Feb 16 '11 at 6:36
>>> def twobytwo(it, last_single=False):
...     guard = object()
...     oe = guard
...     for e in it:
...         if oe != guard:
...             yield oe, e
...         oe = e
...     if oe != guard and last_single:
...         yield oe, None
... 
>>> for a, b in twobytwo(['aaa','bbb','oooo','qqqq','gggg']):
...     print a, b
... 
aaa bbb
bbb oooo
oooo qqqq
qqqq gggg
>>> for a, b in twobytwo(['aaa','bbb','oooo','qqqq','gggg'], last_single=True):
...     print a, b
... 
aaa bbb
bbb oooo
oooo qqqq
qqqq gggg
gggg None
>>> 
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