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Say I have a Python function that returns multiple values in a tuple:

def func():
    return 1, 2

Is there a nice way to ignore one of the results rather than just assigning to a temporary variable? Say if I was only interested in the first value, is there a better way than this:

x, temp = func()
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7 Answers 7

up vote 51 down vote accepted

One common convention is to use a "_" as a variable name for the elements of the tuple you wish to ignore. For instance:

def f():
    return 1, 2, 3

_, _, x = f()
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23  
-1: this "convention" sucks when you add gettext functionality to someone else's code (that defines a function called '_') so it should be banned –  nosklo Jan 11 '09 at 13:32
2  
This convention is also common in Haskell. Anyone know where it originated? –  Kiv Jan 11 '09 at 19:07
4  
-1: _ means "last output" in IPython. I would never assign something to it. –  endolith Jan 24 '10 at 17:27
5  
Ok, I didn't notice the "I" - thanks for the reference. IMHO you can't expect others not to use a variable just because one Python app defines its own magical use for it. –  Draemon Jun 13 '10 at 23:38
3  
some IDEs such as PyDev will give you a warning on this, because you have unused variables. –  teeks99 Aug 17 '11 at 20:58

You can use x = func()[0] to return the first value, x = func()[1] to return the second, and so on.

If you want to get multiple values at a time, use something like x, y = func()[2:4].

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18  
This should be the accepted answer. You can also use things like func()[2:4] if you only want some of the return values. –  endolith Aug 4 '11 at 2:03
4  
It doesn't call the function multiple times: >>> def test(): ... print "here" ... return 1,2,3 ... >>> a,b = test()[:2] here [edit: sorry that code didn't come through, aparently you only get one line in comments. For those not familiar >>> and ... are the start of a new line in the python shell] –  teeks99 Aug 17 '11 at 20:56
1  
+1, but only because of @endolith's comment. –  rubenvb Mar 26 '13 at 10:47
1  
@TylerLong: I think _, _, _, _, _, _, _, _, _, _, _, _, _, a, _, _, _, _, _, _, _, _, _, _, _, b, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, c, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, _, d, _, _, _, _, _, _, _, _, e, _ = func() is less clear than calling the function multiple times, but that's just my opinion. If your function returns that many items, I think using numpy would be preferable: a, b, c, d, e = func()[[13, 25, 58, 89, 98]] –  endolith Mar 26 '13 at 15:41
2  
@endolith I think this is better and does not need numpy and does not need to call func() multiple times: result = func() a = result[13] b = result[25] ... –  Tyler Long Mar 27 '13 at 3:04

If you're using Python 3, you can you use the star before a variable (on the left side of an assignment) to have it be a list in unpacking.

# Example 1: a is 1 and b is [2, 3]

a, *b = [1, 2, 3]

# Example 2: a is 1, b is [2, 3], and c is 4

a, *b, c = [1, 2, 3, 4]

# Example 3: b is [1, 2] and c is 3

*b, c = [1, 2, 3]       

# Example 4: a is 1 and b is []

a, *b = [1]
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Any workaround for Python2? –  yegle Mar 17 at 0:27

Three simple choices.

Obvious

x, _ = func()

x, junk = func()

Hideous

x = func()[0]

And there are ways to do this with a decorator.

def val0( aFunc ):
    def pick0( *args, **kw ):
        return aFunc(*args,**kw)[0]
    return pick0

func0= val0(func)
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2  
I really prefer the _ variable. It's very obvious that you're ignoring a value –  Claudiu Nov 23 '09 at 18:22
5  
Your examples are backwards. x, _ = func() is hideous, and x = func()[0] is obvious. Assigning to a variable and then not using it? The function is returning a tuple; index it like a tuple. –  endolith Mar 26 '13 at 14:41
2  
In pattern matching languages, from which Python derived this pattern, the 'obvious' method is indeed obvious, not hideous, and canonical. Although, in such languages the wildcard is a supported language feature whereas in Python it's a real variable and gets bound, which is a little unpalatable. –  Joe Nov 29 '13 at 14:21

Remember, when you return more than one item, you're really returning a tuple. So you can do things like this:

def func():
    return 1, 2

print func()[0] # prints 1
print func()[1] # prints 2
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6  
"list-like object" -> "tuple" –  Grant Paul Jan 6 '10 at 4:23

This seems like the best choice to me:

val1, val2, ignored1, ignored2 = some_function()

It's not cryptic or ugly (like the func()[index] method), and clearly states your purpose.

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This is not a direct answer to the question. Rather it answers this question: "How do I choose a specific function output from many possible options?".

If you are able to write the function (ie, it is not in a library you cannot modify), then add an input argument that indicates what you want out of the function. Make it a named argument with a default value so in the "common case" you don't even have to specify it.

    def fancy_function( arg1, arg2, return_type=1 ):
        ret_val = None
        if( 1 == return_type ):
            ret_val = arg1 + arg2
        elif( 2 == return_type ):
            ret_val = [ arg1, arg2, arg1 * arg2 ]
        else:
            ret_val = ( arg1, arg2, arg1 + arg2, arg1 * arg2 ) 
        return( ret_val )

This method gives the function "advanced warning" regarding the desired output. Consequently it can skip unneeded processing and only do the work necessary to get your desired output. Also because Python does dynamic typing, the return type can change. Notice how the example returns a scalar, a list or a tuple... whatever you like!

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