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I have a dict, that looks like:

channels = {
'24': {'type': 'plain', 'table_name': 'channel.items.AuctionChannel'}, 
'26': {'type': 'plain', 'table_name': 'channel.gm.DeleteAvatarChannel'}, 
'27': {'type': 'plain', 'table_name': 'channel.gm.AvatarMoneyChannel'}, 
'20': {'type': 'plain', 'table_name': 'channel.gm.AvatarMoneyAssertChannel'}, 
'21': {'type': 'plain', 'table_name': 'channel.gm.AvatarKillMobComplexChannel'}, 
'22': {'type': 'plain', 'table_name': 'channel.gm.DistributionMarkChannel'}, 
'23': {'type': 'plain', 'table_name': 'channel.gm.MailChannel'}
}

i want to sort it by keys('24','26','27', etc...), it should be like:

channels = {
'20': {'type': 'plain', 'table_name': 'channel.gm.AvatarMoneyAssertChannel'}, 
'21': {'type': 'merged', 'table_name': 'channel.gm.AvatarKillMobComplexChannel'}, 
'22': {'type': 'plain', 'table_name': 'channel.gm.DistributionMarkChannel'}, 
'23': {'type': 'plain', 'table_name': 'channel.gm.MailChannel'}
'24': {'type': 'merged', 'table_name': 'channel.items.AuctionChannel'}, 
'26': {'type': 'plain', 'table_name': 'channel.gm.DeleteAvatarChannel'}, 
'27': {'type': 'plain', 'table_name': 'channel.gm.AvatarMoneyChannel'}, 
}

I have read articles, but i don't understand how to sort by keys of main dict.

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1  
A dict cannot be sorted. Its items are stored in "random" order (depends on implementation of dict). So, you have to use collections.OrderedDict –  Oleh Prypin Aug 30 '11 at 7:27

7 Answers 7

up vote 2 down vote accepted

a dict is a mapping, keys are not ordered. this is due to the way the dict() type is implemented: keys are hashed (using the hash() builtin function) and the order you observe derives from this hash.

you will need an ordered dict for the dictionary to keep its ordering and to allow you to sort the keys. the collections.OrderedDict type is the builtin ordered dict for python 3.x.

here is an example of sorting your data:

import collections

channels = {
'24': {'type': 'plain', 'table_name': 'channel.items.AuctionChannel'}, 
'26': {'type': 'plain', 'table_name': 'channel.gm.DeleteAvatarChannel'}, 
'27': {'type': 'plain', 'table_name': 'channel.gm.AvatarMoneyChannel'}, 
'20': {'type': 'plain', 'table_name': 'channel.gm.AvatarMoneyAssertChannel'}, 
'21': {'type': 'plain', 'table_name': 'channel.gm.AvatarKillMobComplexChannel'}, 
'22': {'type': 'plain', 'table_name': 'channel.gm.DistributionMarkChannel'}, 
'23': {'type': 'plain', 'table_name': 'channel.gm.MailChannel'}
}

channels = collection.OrderedDict(sorted(channels.items(), key=lambda item: item[0]))
for key,value in channels.items():
    print(key, ':', value)
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this is a really good way ! –  alterpub Aug 30 '11 at 7:57

Dicts are not sorted/ordered. If you are using python 2.7 you can use an OrderedDict though.

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Standard dict is not sorted. You can however iterate over its keys and values in a sorted order:

for channelName, channelValue in sorted(channels.items()):
    ...
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A dict is unsorted. But if you want to iterate in the described manner, you can do it as follows:

for key in sorted(channels):
    print key

Results in:

20
21
22
23
24
26
27

Or use collections.OrderedDict.

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this is only keys, but i want to have sorted keys and values –  alterpub Aug 30 '11 at 7:54
    
my idea was that you can access the values in channels simply with 'channels[key]' –  naeg Aug 30 '11 at 8:35

A dict doesn't have its keys in a order, the order is not guaranteed. If you want to create a list of dictionaries you'll lose the key info.

If you need sorted iterations you can use

for key in sorted(dict):
    ....
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result=collections.OrderedDict(sorted(your_dict.items()))
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Instead of lambda x:x[0] you could use operator.itemgetter(0) –  ThiefMaster Aug 30 '11 at 7:30
1  
@ThiefMaster: Why would I use more imports? How is this good? In any case, the lambda thing wasn't required, so I removed it. –  Oleh Prypin Aug 30 '11 at 7:33
1  
The itemgetter version is faster. And why would you not want more imports? –  agf Aug 30 '11 at 7:38
    
I don't have against before imports, i want to see different variants. –  alterpub Aug 30 '11 at 7:54

try with something like:

print [ {i: channels[i] } for  i in sorted(channels)]
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