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My function expects a list or a tuple as a parameter. It doesn't really care which it is, all it does is pass it to another function that accepts either a list or tuple:

def func(arg): # arg is tuple or list
  another_func(x)
  # do other stuff here

Now I need to modify the function slightly, to process an additional element:

def func(arg): #arg is tuple or list
  another_func(x + ['a'])
  # etc

Unfortunately this is not going to work: if arg is tuple, I must say x + ('a',).

Obviously, I can make it work by coercing arg to list. But it isn't neat.

Is there a better way of doing that? I can't force callers to always pass a tuple, of course, since it simply shifts to work to them.

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If the other function accepts either than I would send it a tuple as it will be faster for you to work with. Then what's not neat about tuple(x) + ('a',)? –  aaronasterling Nov 17 '10 at 20:08
    
Are tuples faster in the implementation? –  max Nov 17 '10 at 20:40
1  
constructing a tuple from string and numeric literals is faster than constructing a list. More importantly, tuple(x) just returns x if it's already a tuple whereas list(x) copies x even if it's already a list. So by using a tuple, you cut most of the work out for half of your input cases. –  aaronasterling Nov 17 '10 at 20:49
    
+1: good point about tuple vs list. –  max Nov 17 '10 at 21:44
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9 Answers

up vote 6 down vote accepted

If another_func just wants a iterable you can pass itertools.chain(x,'a') to it.

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+1 I like this but is it fast? –  max Nov 17 '10 at 20:45
    
@max No copy is made, so it is very fast. It's probably the most efficient Python solution. –  Steven Rumbalski Nov 17 '10 at 21:14
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What about changing the other function to accept a list of params instead ?

def func(arg): # arg is tuple or list
  another_func('a', *x)
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1  
What about when another_func needs several list arguments that are affected by the same issue, or if it already has an (unrelated) *x parameter? –  max Nov 17 '10 at 21:41
    
+0: good but unsure if other func can be changed –  Claudiu Nov 17 '10 at 21:43
    
@max: The answer's the same. Fix the other function. –  S.Lott Nov 17 '10 at 21:57
    
something must be changed in the function's interface –  fabrizioM Nov 17 '10 at 22:06
1  
@max: A tuple with an indefinite number of elements is a design error. Tuples are usually used for a definite number of elements; the number of elements is usually fixed by the problem domain (x,y) coordinates, (r,g,b) colors, etc. A "variable-sized" tuple is simply inappropriate. It should be a list. Fix the function to work with a list. Fix the functions. "variable length" or "indefinite length" tuples are an error. Don't support them. Fix them. –  S.Lott Nov 18 '10 at 0:42
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def f(*args):
    print args

def a(*args):
    k = list(args)
    k.append('a')
    f(*k)

a(1, 2, 3)

Output:

(1, 2, 3, 'a')
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hmm f(*(tuple(args)+('a',)) is better –  Claudiu Nov 17 '10 at 21:44
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how about:

l = ['a']
l.extend(x)
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extend returns None, as it mutates the list. –  delnan Nov 17 '10 at 20:05
    
+1, simple and clean –  uʍop ǝpısdn Nov 17 '10 at 20:06
    
@delnan: what do you mean? –  max Nov 17 '10 at 21:42
    
@max I originally had "['a'].extend(x)" which is a largely useless statement, because extend returns None, as delnan pointed out –  Sean Nov 17 '10 at 21:45
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My suggestion:

def foo(t):
    bar(list(t) + [other])

This is not very efficient though, you'd be better off passing around mutable things if you're going to be, well, mutating them.

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Could you clarify please? Why is this not efficient? –  max Nov 17 '10 at 20:44
    
@max It's not as efficient because it copies an entire list just to add a single item. –  Steven Rumbalski Nov 17 '10 at 21:16
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You can use the type of the iterable passed to the first function to construct what you pass to the second:

from itertools import chain

def func(iterable):
    it = iter(iterable)
    another_func(type(iterable)(chain(it, ('a',))))

def another_func(arg):
    print arg

func((1,2))
# (1, 2, 'a')
func([1,2])
# [1, 2, 'a']
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I think you have to clarify exactly which are the requirements of the two functions. Must arg be a sequence, or an iterable is enough?

If an iterable is enough you can use itertools.chain, but be aware that if function A(the first one called), also iterates over the iterable after calling B, then you might have problems since iterables cannot be rewinded. In this case you should opt for a sequence or use iterable.tee to make a copy of the iterable:

>>> import itertools as it
>>> def A(iterable):
...     iterable, backup = it.tee(iterable)
...     res = B(it.chain(iterable, ('a',)))
...     #do something with res
...     for elem in backup:
...             #do something with elem
... 
>>> def B(iterable):
...     for elem in iterable:
...             #do something with elem
... 
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+1 for the clarification about rewinding of iterators. In my case, iterable is enough; I guess for the sequence case I'll just coerce to tuple as suggested by @aaronasterling –  max Nov 17 '10 at 21:43
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Have your function accept any iterable. Then use itertools.chain to add whatever sequence you want to the iterable.

from itertools import chain

def func(iterable):
    another_func(chain(iterable, ('a',)))
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I'd say Santiago Lezica's answer of doing

def foo(t):
    bar(list(t) + [other])

is the best because it is the simplest. (no need to import itertools stuff and use much less readable chain calls). But only use it if you expect t to be small. If t can be large you should use one of the other solutions.

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