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a = [{43:123}, {3:103}, {36:103}, {2:102}, {23:100}]

How can I extract id from it when each of the keys is id and value means a number of points. I tried use this:

for b in a: 
     print a[i].keys()
     i+=1

Python result is a list, but I need integer type. eg print a[2].keys() result [36] and I need 36 which is int. Thx

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1  
I think you mean for item in a: print item.keys[0] –  Joel Cornett Jun 6 '12 at 14:46
3  
i+=1 -> its not c++.. no need for that –  WeaselFox Jun 6 '12 at 14:47
    
@JoelCornett No, he wants keys. Also, a is not a dict, and has no .items() method –  HodofHod Jun 6 '12 at 14:49
1  
@HodofHod phone keyboard :p I give up! –  Joel Cornett Jun 6 '12 at 14:53
1  
@Joel, Forgiven! :D –  HodofHod Jun 6 '12 at 14:54

6 Answers 6

up vote 3 down vote accepted

Access the first element from such list:

a[2].keys()[0]

or

next(a[2].iterkeys())

both returning the int 36.

To get a list of all keys:

[next(d.iterkeys()) for d in a]

returning [43, 3, 36, 2, 23]

Maybe you should convert your list of dicts into a simple dict:

d = {}
for x in a:
    d.update(x) 

obtaining {2: 102, 3: 103, 23: 100, 36: 103, 43: 123}, where you can get all keys with simple d.keys() and obtaining [3, 2, 43, 36, 23], although the order is not conserved.

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>>> [next(iter(d)) for d in a]
[43, 3, 36, 2, 23]
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+1, I was about to say this as well. This is a very clean approach. –  senderle Jun 6 '12 at 15:02

You've got a list of dicts, so the keys method will give you the keys of the dict, and since they all have only one entry, use [0] to reference it:

>>> [d.keys()[0] for d in a]
[43, 3, 36, 2, 23]
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As I responded in the comment to your other question, this is what you want:

Try:

for b in a: 
    print b.keys()[0]   

that will extract the keys, so you will end up printing out: 43, 3, 36, 2, 23. If you want values instead (like 123,103,36,102,100), use b.values()[0].

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If you have [36] in a resulting list and you want to get to the item, simply subscript to element 0.

I.e., simply append [0] to your expression that got you [36] to get to the first (and only) item in your list.

So, in your case:

print a[2].keys()[0]
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Try this:

def getKeyAtIndex(a, idx):
    return a[idx].keys()[0]

And call it like this:

print getKeyAtIndex(a, 2)
> 36

As a side note - this is the second question you've posted with the same data structure - a list of dictionaries, where each dictionary holds a single key with a single value. That doesn't make much sense, you're gaining nothing by using a dictionary in this case. Maybe a single dictionary would be a better idea? like this:

{43:123, 3:103, 36:103, 2:102, 23:100}

Or perhaps a list of tuples? like this:

[(43, 123), (3, 103), (36, 103), (2, 102), (23, 100)]
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