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Setting up dict:

rr = range(1,11)
ft =[('sd:jan:'+ str(x), 'News') for x in rr]    
fd = dict(ft)

 fd
    {'sd:jan:1': 'News',
     'sd:jan:10': 'News',
     'sd:jan:2': 'News',
     'sd:jan:3': 'News',
     'sd:jan:4': 'News',
     'sd:jan:5': 'News',
     'sd:jan:6': 'News',
     'sd:jan:7': 'News',
     'sd:jan:8': 'News',
     'sd:jan:9': 'News'}

fd.keys()

['sd:jan:10',
 'sd:jan:2',
 'sd:jan:3',
 'sd:jan:1',
 'sd:jan:6',
 'sd:jan:7',
 'sd:jan:4',
 'sd:jan:5',
 'sd:jan:8',
 'sd:jan:9']

How would add all values of 'jan' in the key?

EDIT: where I am adding the values (1+2+3+4+5+6+...+10) for the partial key of "jan."

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up vote 1 down vote accepted

How about using a generator expression:

sum(int(i.split(':')[-1]) for i in fd.keys())

gives:

55

Splits each entry by :, grabs the last field, converts to int and sums them up.

In case you'd needed to examine the numbers, or wanted them for some reason later you could easily collect them in a list using list comprehension:

[int(i.split(':')[-1]) for i in fd.keys()]
share|improve this answer
    
+1 dict to list then list comp, nice....... another python slam dunk – Merlin Jun 4 '12 at 18:32
    
@Merlin changed to generator expression :-) .. less memory hungry. Love the compact Python syntax – Levon Jun 4 '12 at 18:43
    
I can use %time in ipython to test time @ r of 300,000. Is there a way to check memory??? – Merlin Jun 4 '12 at 18:49
    
@Merlin are you asking if there's a way to know memory consumption? I don't know, but I'd love to know how to find out, it would be useful. – Levon Jun 4 '12 at 18:52

If you can avoid it, you shouldn't convert the numbers to strings to start with if you want to do something with them later as numbers. How about this:

rr = range(1,11)
ft =[(('sd','jan',x), 'News') for x in rr]    
fd = dict(ft)

tot = sum(val
   for (key, subkey, val) in fd
   if subkey == 'jan')

>>>tot
55
share|improve this answer
    
I dont have control over creation of "fd" – Merlin Jun 4 '12 at 18:36
    
Well, then the if you can avoid it is relevant. ;) In your case, you can't. – Gerrat Jun 4 '12 at 18:37
len([i for i in fd if i[3:6] == 'jan'])

Create list comprehension, filter it by the 'jan' substring ([3:6]). Count the resulting list using len.

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for key in fd:
if 'jan' in key:
    total=total+int(key.split(':')[-1])
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