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Hello fellow stack overflow users. I was wondering if there is a way to choose a function randomly?

example :

from random import choice
random_function_selector = [foo(), foobar(), fudge()]

print choice(random_function_selector)

def foo() :
    # some code follows.

I have been thinking for about 20 minutes how this could be done, I have even checked through the python documentation. Actually, since writing this, I seem to have had an epiphany... Instead of using a list which is mutable, maybe I should use a immutable type such as a tuple.

Note : Sorry if this may be a noob question, but i haven't been programming for that long.

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5 Answers

up vote 12 down vote accepted
from random import choice
random_function_selector = [foo, foobar, fudge]

print choice(random_function_selector)()

Python functions are first-class objects: you can refer to them by name without calling them, and then invoke them later.

In your original code, you were invoking all three, then choosing randomly among the results. Here we choose a function randomly, then invoke it.

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1  
Ah yes! I wasn't thinking about calling them, I figured python wouldn't know what I mean't when I was trying to access foo rather than foo(). Thanks for making things seem more clear :). –  S3pHiRoTh Jan 4 '13 at 3:18
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from random import choice

#Step 1: define some functions
def foo(): 
    pass

def bar():
    pass

def baz():
    pass

#Step 2: pack your functions into a list.  
# **DO NOT CALL THEM HERE**, if you call them here, 
#(as you have in your example) you'll be randomly 
#selecting from the *return values* of the functions
funcs = [foo,bar,baz]

#Step 3: choose one at random (and call it)
random_func = choice(funcs)
random_func()  #<-- call your random function

#Step 4: ... The hypothetical function name should be clear enough ;-)
smile(reason=your_task_is_completed)

Just for fun:

Note that if you really want to define the list of function choices before you actually define the functions, you can do that with an additional layer of indirection (although I do NOT recommend it -- there's no advantage to doing it this way as far as I can see...):

def my_picker():
    return choice([foo,bar,baz])

def foo():
    pass

def bar():
    pass

def baz():
    pass

random_function = my_picker()
result_of_random_function = random_function()
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Almost -- try this instead:

from random import choice
random_function_selector = [foo, foobar, fudge]

print(choice(random_function_selector)())

This assigns the functions themselves into the random_function_selector list, rather than the results of calling those functions. You then get a random function with choice, and call it.

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One straightforward way:

# generate a random int between 0 and your number of functions - 1
x = random.choice(range(num_functions))
if (x < 1):
    function1()
elif (x < 2):
    function2()
# etc
elif (x < number of functions):
    function_num_of_functions()
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1  
Although I didn't downvote, it's not hard to see why -- your code is fairly verbose and un-Pythonic, compared to, say, Ned's response. –  Peter Jan 4 '13 at 3:18
    
haha yeah python people (which I am not) are very defensive about "Pythonic", which is totally fair and correct. Figured it couldn't hurt to give a strategy that's easy to understand for somebody coming from a non-python paradigm. Ned's is of course very much the ideal answer. –  mfrankli Jan 4 '13 at 3:22
1  
random.randint(...) is probably easier to understand than random.choice(range(...)) at least ... –  mgilson Jan 4 '13 at 3:26
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  1. Generate a random integer up to how many elements you have
  2. Call a function depending on this number

import random

choice = random.randomint(0,3)
if choice == 0:
  foo()
elif choice == 1:
  foobar()
else:
  fudge()
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