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I thought i found away to sort a dictionary by clearing it then reassemble it in the order i wanted but for some reason it reorders itself the way it started out.

Here is the code if somebody can help me out

from operator import itemgetter

n = {}
d = {
 'a': ['2', 'ova', 'no'], 
 'b': ['23', 'movie', 'yes'], 
 'c': ['5', 'show', 'yes'], 
 'd': ['17', 'ova', 'yes'], 
 'e': ['1', 'movie', 'no']
}

for i in d:
    print i, d[i]

print '\n'

l = d.items()
l.sort(key=itemgetter(1)) #l is now sorted by the value of the string holding the integers
d.clear()

for i in l:
    print i[0], i[1]
    d[i[0]] = i[1] 

print '\n'

for i in d:
    print i, d[i] #Why does the dictionary come out to be the same it started from
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1  
Note that since strings sort 'alphabetically', '1' < '17' < '2' < '23' < '5', which may or may not be what you want. –  DSM Jul 11 '12 at 0:53
1  
Also, avoid using l as a name see here: python.org/dev/peps/pep-0008/#names-to-avoid –  thikonom Jul 11 '12 at 1:17
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2 Answers

up vote 4 down vote accepted

As Jon points out, dictionaries have no order. You get fast lookups by giving up ordering. You might not need it to keep an order though, since you have a sort order you like:

d = {'a':['2', 'ova', 'no'], 'b':['23', 'movie', 'yes'], 'c':['5', 'show', 'yes'], 'd':['17', 'ova', 'yes'], 'e':['1', 'movie', 'no']}
sorted_items = sorted(d.items(), key=itemgetter(1))
for i,v in sorted_items:
    print i, v
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Dictionaries are inherently un-ordered (as they use hash keys - which are unique but arbitary) [this is a FAQ] - you may want to consider using an OrderedDict (in 2.7+) which retains insertion order or a recipe from PyPi - otherwise, if you require order, you need to keep entries in a list or other sequence.

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