149

How can I get a random pair from a dict? I'm making a game where you need to guess a capital of a country and I need questions to appear randomly.

The dict looks like {'VENEZUELA':'CARACAS'}

How can I do this?

14 Answers 14

262

One way would be:

import random
d = {'VENEZUELA':'CARACAS', 'CANADA':'OTTAWA'}
random.choice(list(d.values()))

EDIT: The question was changed a couple years after the original post, and now asks for a pair, rather than a single item. The final line should now be:

country, capital = random.choice(list(d.items()))
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  • 141
    That will work in Python 2.x where d.keys() is a list, but it won't work in Python 3.x where d.keys() is an iterator. You should do random.choice(list(d.keys())) instead. – Duncan Feb 1 '11 at 9:42
  • 21
    @Duncan: I can't wait till all the 3rd party libraries are Python 3.x compatible, so the Python questions don't need 2 answers for every question. – Gerrat Feb 1 '11 at 13:54
  • 9
    Err how about: d = {'VENEZUELA':'CARACAS', 'CANADA':'OTTAWA'} Hehe, +1 for the very subtle brainwash ... – gentimouton Apr 23 '14 at 19:19
  • 4
    @gentimouton...interesting, but maybe I was just going for the most populous city in each country - not the capitals :) – Gerrat Apr 24 '14 at 19:46
  • 12
    Is this efficient? Does this scale if dict gets really large? – Spectral Jul 25 '15 at 19:11
26

I wrote this trying to solve the same problem:

https://github.com/robtandy/randomdict

It has O(1) random access to keys, values, and items.

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  • 19
    it's not O(1) to find your actual answer – Berry Tsakala Dec 19 '18 at 17:34
14

Try this:

import random
a = dict(....) # a is some dictionary
random_key = random.sample(a, 1)[0]

This definitely works.

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12

If you don't want to use the random module, you can also try popitem():

>> d = {'a': 1, 'b': 5, 'c': 7}
>>> d.popitem()
('a', 1)
>>> d
{'c': 7, 'b': 5}
>>> d.popitem()
('c', 7)

Since the dict doesn't preserve order, by using popitem you get items in an arbitrary (but not strictly random) order from it.

Also keep in mind that popitem removes the key-value pair from dictionary, as stated in the docs.

popitem() is useful to destructively iterate over a dictionary

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  • 29
    This is kind of bad, because if you load the dictionary in the same order on the same version of python you'll almost certainly get the same item. – Alex May 22 '14 at 17:43
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    python 3.6 dict is actually ORDERED! This is super important – Or Duan Jan 30 '17 at 16:01
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    This answer is just wrong. Even before 3.6 this will not give you a random value, but a value depending on the hash value ot the item. – OBu Jun 25 '18 at 20:27
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    Ignoring the incongruity with the OP's request, this way is a good way to get over the fact that next does not work with a dictionary as it is a mapping. (I came here for inspiration and this was it). – Matteo Ferla Nov 13 '18 at 10:19
10
>>> import random
>>> d = dict(Venezuela = 1, Spain = 2, USA = 3, Italy = 4)
>>> random.choice(d.keys())
'Venezuela'
>>> random.choice(d.keys())
'USA'

By calling random.choice on the keys of the dictionary (the countries).

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  • 2
    Hi, I try to use your method to randomly pick one key from a given dictionary, but it does not work. My dictionary looks like a = {'walk': 20, 'run': 80} and when I use random.choice(a.keys()), there is an error like "dict_keys' object does not support indexing". Do you know what's wrong? Thanks a lot!!! – beepretty May 11 '16 at 4:50
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    @beepretty dict.keys() returns an iterable object, not a list-like object. To resolve the error, use random.choice(list(d.keys())). – Greenstick Mar 23 '17 at 4:51
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    Use random.sample instead, which is cheaper than copying the keys to a list. – steveayre Aug 9 '18 at 13:35
7

This works in Python 2 and Python 3:

A random key:

random.choice(list(d.keys()))

A random value

random.choice(list(d.values()))

A random key and value

random.choice(list(d.items()))
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4

If you don't want to use random.choice() you can try this way:

>>> list(myDictionary)[i]
'VENEZUELA'
>>> myDictionary = {'VENEZUELA':'CARACAS', 'IRAN' : 'TEHRAN'}
>>> import random
>>> i = random.randint(0, len(myDictionary) - 1)
>>> myDictionary[list(myDictionary)[i]]
'TEHRAN'
>>> list(myDictionary)[i]
'IRAN'
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  • Pay attention: you generate a list(…) here multiple times. How about myDictionary_list = list(myDictionary)? – Cadoiz Jul 10 at 23:05
4

Since the original post wanted the pair:

import random
d = {'VENEZUELA':'CARACAS', 'CANADA':'TORONTO'}
country, capital = random.choice(list(d.items()))

(python 3 style)

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3

Since this is homework:

Check out random.sample() which will select and return a random element from an list. You can get a list of dictionary keys with dict.keys() and a list of dictionary values with dict.values().

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  • 5
    random.sample and random.choice can't work with iterators. They need to know the length of the sequence, which can't be determined from an iterator. – AFoglia Feb 1 '11 at 5:50
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    no this is NOT homework i am writing it to help me with spanish. – tekknolagi Feb 1 '11 at 5:56
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    random.sample returns k random elements, random.choice returns a single random element – Anentropic Jan 30 '14 at 13:05
  • Yeah...never cool to assume this is a homework problem. What does saying that do for the community? – jvriesem Mar 28 '17 at 17:35
3

I am assuming that you are making a quiz kind of application. For this kind of application I have written a function which is as follows:

def shuffle(q):
"""
The input of the function will 
be the dictionary of the question
and answers. The output will
be a random question with answer
"""
selected_keys = []
i = 0
while i < len(q):
    current_selection = random.choice(q.keys())
    if current_selection not in selected_keys:
        selected_keys.append(current_selection)
        i = i+1
        print(current_selection+'? '+str(q[current_selection]))

If I will give the input of questions = {'VENEZUELA':'CARACAS', 'CANADA':'TORONTO'} and call the function shuffle(questions) Then the output will be as follows:

VENEZUELA? CARACAS
CANADA? TORONTO

You can extend this further more by shuffling the options also

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  • You should not program drawing without replacement like this. Imagine drawing the 100th of 100 elements - 99% chance to hit an element inside of selected_keys. And you will likely repeat that about 100 times. At least delete the taken keys of q like del(q[current_selection]) - you can overwrite q with the new shuffled selected_keys just like q = selected_keys after everything. Also don't forget about identing! Alternatively look at my np.random.choice(...) approach: stackoverflow.com/a/62843377/4575793 – Cadoiz Jul 10 at 23:01
1

Try this (using random.choice from items)

import random

a={ "str" : "sda" , "number" : 123, 55 : "num"}
random.choice(list(a.items()))
#  ('str', 'sda')
random.choice(list(a.items()))[1] # getting a value
#  'num'
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1

With modern versions of Python(since 3), the objects returned by methods dict.keys(), dict.values() and dict.items() are view objects*. And hey can be iterated, so using directly random.choice is not possible as now they are not a list or set.

One option is to use list comprehension to do the job with random.choice:

import random

colors = {
    'purple': '#7A4198',
    'turquoise':'#9ACBC9',
    'orange': '#EF5C35',
    'blue': '#19457D',
    'green': '#5AF9B5',
    'red': ' #E04160',
    'yellow': '#F9F985'
}

color=random.choice([hex_color for color_value in colors.values()]

print(f'The new color is: {color}')

References:

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0
b = { 'video':0, 'music':23,"picture":12 } 
random.choice(tuple(b.items())) ('music', 23) 
random.choice(tuple(b.items())) ('music', 23) 
random.choice(tuple(b.items())) ('picture', 12) 
random.choice(tuple(b.items())) ('video', 0) 
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  • 2
    Welcome to Stack Overflow! Thank you for this code snippet, which might provide some limited short-term help. A proper explanation would greatly improve its long-term value by showing why this is a good solution to the problem, and would make it more useful to future readers with other, similar questions. Please edit your answer to add some explanation, including the assumptions you've made. – Toby Speight Jan 18 '18 at 11:07
0

I found this post by looking for a rather comparable solution. For picking multiple elements out of a dict, this can be used:

idx_picks = np.random.choice(len(d), num_of_picks, replace=False) #(Don't pick the same element twice)
result = dict ()
c_keys = [d.keys()] #not so efficient - unfortunately .keys() returns a non-indexable object because dicts are unordered
for i in idx_picks:
    result[c_keys[i]] = d[i]
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