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f = open("sonad.txt",encoding="utf-8")
c = f.readlines()
blokk = [[]] * 15
for read in c:
    length = len(read.strip())
    blokk[length].append(read.strip())

sonad.txt has just some random words and I would like to put them in an order like so:

All the words, that are 1 letter long go to blokk[1] 2 letters long go to blokk[2] And so on...

But what my current code does is that it adds an element to allL block[x] so that blokk[1] blokk[2] blokk[3] ..... are all the same.

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2 Answers 2

up vote 7 down vote accepted

The line blokk = [[]] * 15 creates a list that has the same empty list in it 15 times.

You want to use a list comprehension instead:

blokk = [[] for _ in range(15)]

Try it out for yourself:

>>> blokk = [[]]*15
>>> blokk
[[], [], [], [], [], [], [], [], [], [], [], [], [], [], []]
>>> blokk[0].append(1)
>>> blokk
[[1], [1], [1], [1], [1], [1], [1], [1], [1], [1], [1], [1], [1], [1], [1]]
>>> blokk = [[] for _ in range(15)]
>>> blokk
[[], [], [], [], [], [], [], [], [], [], [], [], [], [], []]
>>> blokk[0].append(1)
>>> blokk
[[1], [], [], [], [], [], [], [], [], [], [], [], [], [], []]
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That is perfect! :) I didn't hope to get an answer within 3 minutes. Wow, thanks. –  Faz3r Oct 9 '12 at 12:51
 blokk = [[]]*15

creates 15 references to the same list. So, if you append to blokk[0] or block[1], those changes will be reflected in either list since they're the same list.

Perhaps a better data structure here is a defaultdict:

from collections import defaultdict
d = defaultdict(list)
with open('sonad.txt', encoding='utf-8') as fin:
    for line in fin:
        stripped = line.strip()
        d[len(stripped)].append(stripped)

print(sorted(d.items()))
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@lazyr -- Thanks for the cleanup. Apparently I was trying to be too hasty (but I had to be to beat Martijn ;). –  mgilson Oct 9 '12 at 13:37

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