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I have a JSON with an unknown number of keys & values, I need to store the user's selection in a list & then access the selected key's value; (it'll be guaranteed that the keys in the list are always stored in the correct sequence).
Example
I need to access the value_key1-2.
mydict = {
'key1': {
'key1-1': {
'key1-2': 'value_key1-2'
},
},
'key2': 'value_key2'
}
I can see the keys & they're limited so I can manually use:
>>> print(mydict['key1']['key1-1']['key1-2'])
>>> 'value_key1-2'
Now after storing the user's selections in a list, we have the following list:
Uselection = ['key1', 'key1-1', 'key1-2']
How can I convert those list elements into the similar code we used earlier?
How can I automate it using Python?
You have to loop the list of keys and update the "current value" on each step.
val = mydict
try:
for key in Uselection:
val = val[key]
except KeyError:
handle non-existing keys here
Another, more 'posh' way to do the same (not generally recommended):
from functools import reduce
val = reduce(dict.get, Uselection, mydict)
I want to replace items in a list based on another list as reference.
Take this example lists stored inside a dictionary:
dict1 = {
"artist1": ["dance pop","pop","funky pop"],
"artist2": ["chill house","electro house"],
"artist3": ["dark techno","electro techno"]
}
Then, I have this list as reference:
wish_list = ["house","pop","techno"]
My result should look like this:
dict1 = {
"artist1": ["pop"],
"artist2": ["house"],
"artist3": ["techno"]
}
I want to check if any of the list items inside "wishlist" is inside one of the values of the dict1. I tried around with regex, any.
This was an approach with just 1 list instead of a dictionary of multiple lists:
check = any(item in artist for item in wish_list)
if check == True:
artist_genres.clear()
artist_genres.append()
I am just beginning with Python on my own and am playing around with the SpotifyAPI to clean up my favorite songs into playlists. Thank you very much for your help!
The idea is like this,
dict1 = { "artist1" : ["dance pop","pop","funky pop"],
"artist2" : ["house","electro house"],
"artist3" : ["techno","electro techno"] }
wish_list = ["house","pop","techno"]
dict2={}
for key,value in dict1.items():
for i in wish_list:
if i in value:
dict2[key]=i
break
print(dict2)
A regex is not needed, you can get away by simply iterating over the list:
wish_list = ["house","pop","techno"]
dict1 = {
"artist1": ["dance pop","pop","funky pop"],
"artist2": ["chill house","electro house"],
"artist3": ["dark techno","electro techno"]
}
dict1 = {
# The key is reused as-is, no need to change it.
# The new value is the wishlist, filtered based on its presence in the current value
key: [genre for genre in wish_list if any(genre in item for item in value)]
for key, value in dict1.items() # this method returns a tuple (key, value) for each entry in the dictionary
}
This implementation relies a lot on list comprehensions (and also dictionary comprehensions), you might want to check it if it's new to you.
Is there a way to sort all the keys, sub-keys, sub-sub-keys, etc. of a python dictionary at once?
Let's suppose I have the dictionary
dict_1 = {
"key9":"value9",
"key5":"value5",
"key3":{
"key3_1":"value3_1",
"key3_3":"value3_3",
}
"key4":"value4",
"key2":"value2",
"key8":{
"key8_1":"value8_1",
"key8_5":[
"value8_5_3",
"value8_5_1",
]
"key8_2":"value8_2",
}
"key4":"value4",
"key1":"value1",
}
and I want it sorted as
dict_1 = {
"key1":"value1",
"key2":"value2",
"key3":{
"key3_1":"value3_1",
"key3_3":"value3_3",
}
"key4":"value4",
"key5":"value5",
"key8":{
"key8_1":"value8_1",
"key8_2":"value8_2",
"key8_5":[
"value8_5_1",
"value8_5_3",
]
}
"key9":"value9",
}
Is there a method to do it?
Please note:
potentially my dict_1 could have several levels of subkeys (nested
dictionaries) or subvalues (nested lists).
I am using Python 2.7.17, and I cannot update it. But order is not
preserved in dictionaries of Python versions previous to 3.7, so I bet
the sorting has to be done by using the OrderedDict.
First, it is important to know that dictionaries are not ordered. So, if you want to order a dict, you need to go with collections.OrderedDict (which exists since Python 2.7).
And then, this is a use case for a recursive function:
from collections import OrderedDict
def order_dict(d):
ordered_dict = OrderedDict()
for key in sorted(d.keys()):
val = d[key]
if isinstance(val, dict):
val = order_dict(val)
ordered_dict[key] = val
return ordered_dict
Consider a dict like
mydict = {
'Apple': {'American':'16', 'Mexican':10, 'Chinese':5},
'Grapes':{'Arabian':'25','Indian':'20'} }
How do I access for instance a particular element of this dictionary?
for instance, I would like to print the first element after some formatting the first element of Apple which in our case is 'American' only?
Additional information
The above data structure was created by parsing an input file in a python function. Once created however it remains the same for that run.
I am using this data structure in my function.
So if the file changes, the next time this application is run the contents of the file are different and hence the contents of this data structure will be different but the format would be the same.
So you see I in my function I don't know that the first element in Apple is 'American' or anything else so I can't directly use 'American' as a key.
Given that it is a dictionary you access it by using the keys. Getting the dictionary stored under "Apple", do the following:
>>> mydict["Apple"]
{'American': '16', 'Mexican': 10, 'Chinese': 5}
And getting how many of them are American (16), do like this:
>>> mydict["Apple"]["American"]
'16'
If the questions is, if I know that I have a dict of dicts that contains 'Apple' as a fruit and 'American' as a type of apple, I would use:
myDict = {'Apple': {'American':'16', 'Mexican':10, 'Chinese':5},
'Grapes':{'Arabian':'25','Indian':'20'} }
print myDict['Apple']['American']
as others suggested. If instead the questions is, you don't know whether 'Apple' as a fruit and 'American' as a type of 'Apple' exist when you read an arbitrary file into your dict of dict data structure, you could do something like:
print [ftype['American'] for f,ftype in myDict.iteritems() if f == 'Apple' and 'American' in ftype]
or better yet so you don't unnecessarily iterate over the entire dict of dicts if you know that only Apple has the type American:
if 'Apple' in myDict:
if 'American' in myDict['Apple']:
print myDict['Apple']['American']
In all of these cases it doesn't matter what order the dictionaries actually store the entries. If you are really concerned about the order, then you might consider using an OrderedDict:
http://docs.python.org/dev/library/collections.html#collections.OrderedDict
As I noticed your description, you just know that your parser will give you a dictionary that its values are dictionary too like this:
sampleDict = {
"key1": {"key10": "value10", "key11": "value11"},
"key2": {"key20": "value20", "key21": "value21"}
}
So you have to iterate over your parent dictionary. If you want to print out or access all first dictionary keys in sampleDict.values() list, you may use something like this:
for key, value in sampleDict.items():
print value.keys()[0]
If you want to just access first key of the first item in sampleDict.values(), this may be useful:
print sampleDict.values()[0].keys()[0]
If you use the example you gave in the question, I mean:
sampleDict = {
'Apple': {'American':'16', 'Mexican':10, 'Chinese':5},
'Grapes':{'Arabian':'25','Indian':'20'}
}
The output for the first code is:
American
Indian
And the output for the second code is:
American
EDIT 1:
Above code examples does not work for version 3 and above of python; since from version 3, python changed the type of output of methods keys and values from list to dict_values. Type dict_values is not accepting indexing, but it is iterable. So you need to change above codes as below:
First One:
for key, value in sampleDict.items():
print(list(value.keys())[0])
Second One:
print(list(list(sampleDict.values())[0].keys())[0])
I know this is 8 years old, but no one seems to have actually read and answered the question.
You can call .values() on a dict to get a list of the inner dicts and thus access them by index.
>>> mydict = {
... 'Apple': {'American':'16', 'Mexican':10, 'Chinese':5},
... 'Grapes':{'Arabian':'25','Indian':'20'} }
>>>mylist = list(mydict.values())
>>>mylist[0]
{'American':'16', 'Mexican':10, 'Chinese':5},
>>>mylist[1]
{'Arabian':'25','Indian':'20'}
>>>myInnerList1 = list(mylist[0].values())
>>>myInnerList1
['16', 10, 5]
>>>myInnerList2 = list(mylist[1].values())
>>>myInnerList2
['25', '20']
As a bonus, I'd like to offer kind of a different solution to your issue. You seem to be dealing with nested dictionaries, which is usually tedious, especially when you have to check for existence of an inner key.
There are some interesting libraries regarding this on pypi, here is a quick search for you.
In your specific case, dict_digger seems suited.
>>> import dict_digger
>>> d = {
'Apple': {'American':'16', 'Mexican':10, 'Chinese':5},
'Grapes':{'Arabian':'25','Indian':'20'}
}
>>> print(dict_digger.dig(d, 'Apple','American'))
16
>>> print(dict_digger.dig(d, 'Grapes','American'))
None
You can use mydict['Apple'].keys()[0] in order to get the first key in the Apple dictionary, but there's no guarantee that it will be American. The order of keys in a dictionary can change depending on the contents of the dictionary and the order the keys were added.
You can't rely on order of dictionaries, but you may try this:
mydict['Apple'].items()[0][0]
If you want the order to be preserved you may want to use this:
http://www.python.org/dev/peps/pep-0372/#ordered-dict-api
Simple Example to understand how to access elements in the dictionary:-
Create a Dictionary
d = {'dog' : 'bark', 'cat' : 'meow' }
print(d.get('cat'))
print(d.get('lion'))
print(d.get('lion', 'Not in the dictionary'))
print(d.get('lion', 'NA'))
print(d.get('dog', 'NA'))
Explore more about Python Dictionaries and learn interactively here...
Few people appear, despite the many answers to this question, to have pointed out that dictionaries are un-ordered mappings, and so (until the blessing of insertion order with Python 3.7) the idea of the "first" entry in a dictionary literally made no sense. And even an OrderedDict can only be accessed by numerical index using such uglinesses as mydict[mydict.keys()[0]] (Python 2 only, since in Python 3 keys() is a non-subscriptable iterator.)
From 3.7 onwards and in practice in 3,6 as well - the new behaviour was introduced then, but not included as part of the language specification until 3.7 - iteration over the keys, values or items of a dict (and, I believe, a set also) will yield the least-recently inserted objects first. There is still no simple way to access them by numerical index of insertion.
As to the question of selecting and "formatting" items, if you know the key you want to retrieve in the dictionary you would normally use the key as a subscript to retrieve it (my_var = mydict['Apple']).
If you really do want to be able to index the items by entry number (ignoring the fact that a particular entry's number will change as insertions are made) then the appropriate structure would probably be a list of two-element tuples. Instead of
mydict = {
'Apple': {'American':'16', 'Mexican':10, 'Chinese':5},
'Grapes':{'Arabian':'25','Indian':'20'} }
you might use:
mylist = [
('Apple', {'American':'16', 'Mexican':10, 'Chinese':5}),
('Grapes', {'Arabian': '25', 'Indian': '20'}
]
Under this regime the first entry is mylist[0] in classic list-endexed form, and its value is ('Apple', {'American':'16', 'Mexican':10, 'Chinese':5}). You could iterate over the whole list as follows:
for (key, value) in mylist: # unpacks to avoid tuple indexing
if key == 'Apple':
if 'American' in value:
print(value['American'])
but if you know you are looking for the key "Apple", why wouldn't you just use a dict instead?
You could introduce an additional level of indirection by cacheing the list of keys, but the complexities of keeping two data structures in synchronisation would inevitably add to the complexity of your code.
With the following small function, digging into a tree-shaped dictionary becomes quite easy:
def dig(tree, path):
for key in path.split("."):
if isinstance(tree, dict) and tree.get(key):
tree = tree[key]
else:
return None
return tree
Now, dig(mydict, "Apple.Mexican") returns 10, while dig(mydict, "Grape") yields the subtree {'Arabian':'25','Indian':'20'}. If a key is not contained in the dictionary, dig returns None.
Note that you can easily change (or even parameterize) the separator char from '.' to '/', '|' etc.
mydict = {
'Apple': {'American':'16', 'Mexican':10, 'Chinese':5},
'Grapes':{'Arabian':'25','Indian':'20'} }
for n in mydict:
print(mydict[n])
I am trying to create a new dict using a list of values of an existing dict as individual keys.
So for example:
dict1 = dict({'a':[1,2,3], 'b':[1,2,3,4], 'c':[1,2]})
and I would like to obtain:
dict2 = dict({1:['a','b','c'], 2:['a','b','c'], 3:['a','b'], 4:['b']})
So far, I've not been able to do this in a very clean way. Any suggestions?
If you are using Python 2.5 or above, use the defaultdict class from the collections module; a defaultdict automatically creates values on the first access to a missing key, so you can use that here to create the lists for dict2, like this:
from collections import defaultdict
dict1 = dict({'a':[1,2,3], 'b':[1,2,3,4], 'c':[1,2]})
dict2 = defaultdict(list)
for key, values in dict1.items():
for value in values:
# The list for dict2[value] is created automatically
dict2[value].append(key)
Note that the lists in dict2 will not be in any particular order, as a dictionaries do not order their key-value pairs.
If you want an ordinary dict out at the end that will raise a KeyError for missing keys, just use dict2 = dict(dict2) after the above.
Notice that you don't need the dict in your examples: the {} syntax gives you a dict:
dict1 = {'a':[1,2,3], 'b':[1,2,3,4], 'c':[1,2]}
Other way:
dict2={}
[[ (dict2.setdefault(i,[]) or 1) and (dict2[i].append(x)) for i in y ] for (x,y) in dict1.items()]