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I am a python newbie and I am trying to learn how to "zip" lists. To this end, I have a program, where at a particular point, I do the following:

x1,x2,x2=stuff.calculations(withdataa)

This gives me three lists, x1,x2,x3 of size say 20 each.

Now, I do:

zipall=zip(x1,x2,x3)

However, when I do:

print "len of zipall %s" % len(zipall)

I get: 20 - which is not what I expected - I expected three. I think I am doing something fundamentally wrong - not sure what it is though.

I'd appreciate any help on this. Thanks.

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1  
What exactly are you expecting zip to do? Why should you have three lists - what would they look like? –  Daniel Roseman Dec 4 '12 at 14:14

4 Answers 4

up vote 18 down vote accepted

When you zip() together three lists containing 20 elements each, the result has twenty elements. Each element is a three-tuple.

See for yourself:

In [1]: a = b = c = range(20)

In [2]: zip(a, b, c)
Out[2]: 
[(0, 0, 0),
 (1, 1, 1),
 ...
 (17, 17, 17),
 (18, 18, 18),
 (19, 19, 19)]

To find out how many elements each tuple contains, you could examine the length of the first element:

In [3]: result = zip(a, b, c)

In [4]: len(result[0])
Out[4]: 3

Of course, this won't work if the lists were empty to start with.

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1  
Sorry, it was a moment of my madness. All I was looking for was doing bigX=[x1,x2,x3]. Not sure why I looked into zip! Sorry again! –  AJW Dec 4 '12 at 14:22
1  
@JamesW Then why unpack? Just do bigX = stuff.calculations(withdataa) –  Jon Clements Dec 4 '12 at 14:24
1  
@JonClements: Thanks for that tip. I will try this. It was just that the function was returning too many (approx 10) lists, so I decided to unpack to get some clarity around the code –  AJW Dec 4 '12 at 14:32
1  
@JamesW really? In that case unpacking would have thrown an exception a, b = (1, 2, 3) won't work for instance. Or just slice the return of the function, such as stuff.calculations(withdataa)[:3] (in Python 3.x you can use a, b, *c = [1, 2, 3, 4, 5, 6] which'll give you a=1, b=2, c=[3,4,5,6] - so plenty of options for ya ;) –  Jon Clements Dec 4 '12 at 14:38
    
@JonClements: Maybe I was not clear. So, when I do: stuff.calculations(withdataa), it returns me 10 seperate lists - e.g (1,2,3) (4,5,6) ..etc.. So, I use x1,x2..x10=stuff.calculations(withdataa) an it does not seem to raise any exceptions.. Is this what you meant? –  AJW Dec 4 '12 at 14:53

zip creates a new list, filled with tuples containing elements from the iterable arguments:

>>> zip ([1,2],[3,4])
[(1,3), (2,4)]

I expect what you try to so is create a tuple where each element is a list.

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zip takes a bunch of lists likes

a: a1 a2 a3 a4 a5 a6 a7...
b: b1 b2 b3 b4 b5 b6 b7...
c: c1 c2 c3 c4 c5 c6 c7...

and "zips" them into one list whose entries are 3-tuples (ai, bi, ci). Imagine drawing a zipper horizontally from left to right.

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Basically zip function works on lists, tuples and dictonary in python. if you are using ipython then just type zip? and check what zip() is about. if you are not using ipython then just install it "pip install ipython"

for lists

a=['a','b','c']
b=['p','q','r']
zip(a,b)

output is [('a', 'p'), ('b', 'q'), ('c', 'r')

for dictionary

c={'gaurav':'waghs','nilesh':'kashid','ramesh':'sawant','anu':'raje'}
d={'amit':'wagh','swapnil':'dalavi','anish':'mane','raghu':'rokda'}
zip(c,d)

output is

[('nilesh', 'amit'),
 ('ramesh', 'raghu'),
 ('gaurav', 'anish'),
 ('anu', 'swapnil')]
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