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I'm struggling to get to a nested dictionary in a list.

L = [{'color':'yellow','fruit':'banana'},{'firstname':'Jack','lastname':'Black'}]

I can get the individual dictionaries with the following code.

for a in L:
   print (a)

{'color': 'yellow', 'fruit': 'banana'}
{'lastname': 'Black', 'firstname': 'Jack'}

But now I only want the dictionary with lastname/firstname.

After the tips posted to my question, I came up with the following code.

def getPhotosFromAlbum(albumName):
    availablePhotos = []
    availableAlbums = getAlbumList()
    print("Looking in album %s" %albumName)
    for album in availableAlbums:
        if albumName == album['AlbumName']:
            #print ("found photos for album: ", albumName['KeyList'])
            for photoRefKey in album['KeyList']:
                print(getPhotoPath(photoRefKey))
                availablePhotos.append(getPhotoPath(photoRefKey))
    return availablePhotos 

The idea behind this function is that I can parse the list in a HTML template file to display the photos. So my follow up question is: is this code ok or is there a more Python like approach to achieve the same result.

Darrell.

share|improve this question

2 Answers 2

up vote 1 down vote accepted

Use a list comprehension:

only_last_and_first = [d for d in L if 'firstname' in d and 'lastname' in d]

Now you have a list of dictionaries that have those two keys.

Demo:

>>> L = [{'color':'yellow','fruit':'banana'},{'firstname':'Jack','lastname':'Black'}]
>>> [d for d in L if 'firstname' in d and 'lastname' in d]
[{'lastname': 'Black', 'firstname': 'Jack'}]

If you only wanted the first such a dictionary, use next() and a generator expression:

first = next((d for d in L if 'firstname' in d and 'lastname' in d), None)

Here first will be set to either the first dictionary with the two keys, or None if there is no such dictionary.

If such syntax is a little daunting, here is a version with a for loop instead:

first = None
for d in L:
    if 'firstname' in d and 'lastname' in d:
        first = d
        break
share|improve this answer
    
But how do I get the information out? L = [{'color':'yellow','fruit':'banana'}, {'firstname':'Jack','lastname':'Black'}] only_last_and_first = [d for d in L if 'firstname' in d and 'lastname' in d] for i in only_last_and_first: for key, value in i.items(): print(value['firstname']) –  DeChinees Aug 14 '13 at 12:37
    
@DeChinees: You are looking too much. i is a dictionary, you do not need to loop over i.items(). Just print(i['firstname']) is enough. –  Martijn Pieters Aug 14 '13 at 12:40
    
@DeChinees: If you wanted to loop over all items in i, then print those items directly: for key, value in i.items(): print(key, value) –  Martijn Pieters Aug 14 '13 at 12:41

I build on Martijn's answer to propose a solution:

  • returning a print of items, just like in your example (and not a list)
  • checking that keys are exactly 'lastname' and 'firstname' (not just contain)

script uses an helper to check very simply if one list is sublist of another

L = [{'color':'yellow','fruit':'banana'},{'firstname':'Jack','lastname':'Black'}]

def contains_sublist(lst, sublst):
    for k in sublst:
        if k not in lst:
            return False
    return True

for di in L:
    if len(di.keys()) == 2 and contains_sublist(di.keys(),
                                                       ['firstname','lastname']):
        print di

returns

>>> 
{'lastname': 'Black', 'firstname': 'Jack'}

////////// EDIT -- thanks Martijn

You can use .viewkeys() for increased efficiency

L = [{'color':'yellow','fruit':'banana'},{'firstname':'Jack','lastname':'Black'}]

for di in L:
    if len(di) == 2 and di.viewkeys() & {'firstname','lastname'}:
        print di

this one checks if intersection between both sets is non empty di.viewkeys() & {'firstname','lastname'}

share|improve this answer
    
Take a look at dictionary view objects‌​; you can do this much more efficiently using set operations. –  Martijn Pieters Aug 14 '13 at 12:39
    
thanks i updated accordingly –  octoback Aug 14 '13 at 12:53
    
len(di) is more efficient; no need to create a whole list of keys when all you need to do is ask the dictionary for the length. –  Martijn Pieters Aug 14 '13 at 12:55
    
thanks i updated accordingly –  octoback Aug 14 '13 at 13:21

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