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“Least Astonishment” in Python: The Mutable Default Argument

I'm using the MailSnake in Python, which is a wrapper for the MailChimp API.

Now I'm getting some curious behaviour for a function I've written to pull lists of subscribers we have. This is the code I'm using:

from mailsnake import MailSnake
from mailsnake.exceptions import *

ms = MailSnake('key here')

def return_members (status, list_id, members = [], start = 0, limit = 15000, done = 0):
    temp_list = ms.listMembers(status=status, id=list_id, start=page, limit=limit, since='2000-01-01 01:01:01')
    for item in temp_list['data']:  # Add latest pulled data to our list
        members.append(item)
    done = limit + done
    if done < temp_list['total']:  # Continue if we have yet to 
        start = start + 1
        if limit > (temp_list['total'] - done):  # Restrict how many more results we get out if are on the penultimate page
            limit = temp_list['total'] - done
        print 'Making another API call to get complete list'
        return_members(status, list_id, members, page, limit, done)
    return members

for id in lists:
    unsubs = return_members('subscribed',id)
    for person in unsubs:
        print person['email']

print 'Finished getting information'

So this function runs recursively until we have pulled all members from a given list.

But what I've noticed is that the variable unsubs seems to just get bigger and bigger. In that when the function return_members is called with different list ids, I get an amalgamation of the emails of every list I have called so far (rather than just one particular list).

If I call return_members('subscribed', id, []) which explicitly gives it a fresh array then it's fine. But I don't see why I need to do this, as if I am calling the function with a different list ID, it's not running recursively and since I haven't specificed the members variable, it defaults to []

I think this may be a quirk of python, or I've just missed something!

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Ah, that question again... –  XORcist Dec 29 '12 at 18:29
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marked as duplicate by Martijn Pieters, D.Shawley, Lev Levitsky, Makoto, jwpat7 Dec 29 '12 at 18:54

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2 Answers

up vote 1 down vote accepted

The linked SO infamous question by Martjin would help you understand the underline issue, but to get this sorted out you can write the following loop

for item in temp_list['data']:  # Add latest pulled data to our list
    members.append(item)

to a more pythonic version

members = members + temp_list['data'] # Add latest pulled data to our list

this small change would ensure that you are working with an instance different from the one passed as the parameter to return_members

share|improve this answer
    
Or just members.extend(temp_list['data']). –  Blender Dec 29 '12 at 18:43
    
@Blender: But, wouldn't members still refer the same variable passed as the parameter, which would mean the problem remains unresolved. From the docs ` list.extend(L) Extend the list by appending all the items in the given list; equivalent to a[len(a):] = L` –  Abhijit Dec 29 '12 at 18:47
    
Your original code didn't address that problem either. –  Blender Dec 29 '12 at 18:49
    
@Blender: "Your original code didn't address that problem either", can you please amplify –  Abhijit Dec 29 '12 at 18:51
    
Huh, apparently a = a + [1] is different from a += [1]. Can you explain why your change works? –  Blender Dec 29 '12 at 18:56
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Try replacing:

def return_members (status, list_id, members = [], start = 0, limit = 15000, done = 0):

with:

def return_members (status, list_id, members = None, start = 0, limit = 15000, done = 0):
    if not members: members = []
share|improve this answer
1  
Or members = members or []. –  Blender Dec 29 '12 at 18:40
    
As long as he doesn't initialize the list as default argument before runtime. –  Hyperboreus Dec 29 '12 at 18:41
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