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I have a function, and when it is called, I'd like to know what the return value is going to be assigned to - specifically when it is unpacked as a tuple. So:

a = func()         # n = 1

vs.

a, b, c = func()   # n = 3

I want to use the value of n in func. There must be some magic with inspect or _getframe that lets me do this. Any ideas?


Disclaimer (because this seems to be neccessary nowadays): I know this is funky, and bad practice, and shouldn't be used in production code. It actually looks like something I'd expect in Perl. I'm not looking for a different way to solve my supposed "actual" problem, but I'm curious how to achive what I asked for above. One cool usage of this trick would be:

ONE, TWO, THREE = count()
ONE, TWO, THREE, FOUR = count()

with

def count():
    n = get_return_count()
    if not n:
        return
    return range(n)
share|improve this question
    
You can check the length of returned value and do assignments based on that length. –  Ashwini Chaudhary May 10 '13 at 11:28
    
What is the purpose of this? You can know from the function itself how many items will returned, or you can simply len(foo()) in the caller. I have a feeling this is a case of a solution looking for a problem. –  Burhan Khalid May 10 '13 at 11:28
    
@AshwiniChaudhary: No, I'm still in the function func and haven't returned anything yet, so I can't call len. If the caller does a,b = func(), I'll return 2 elements. If the caller does a,b,c = func(), I'll return 3. I want to know in func what the caller will do with the return value. –  jdm May 10 '13 at 11:31
    
Why? What is the point of this? Typically such thing are written in the documentation of the function. –  Burhan Khalid May 10 '13 at 11:33
    
@BurhanKhalid: I want to know how many items I can return (inside func). The main technical reason is to avoid the "Too many values to unpack" error. I don't need this, there is no problem. I'm just curious - see it as a coding challenge. –  jdm May 10 '13 at 11:33

3 Answers 3

Adapted from http://code.activestate.com/recipes/284742-finding-out-the-number-of-values-the-caller-is-exp/:

import inspect
import dis

def expecting(offset=0):
    """Return how many values the caller is expecting"""
    f = inspect.currentframe().f_back.f_back
    i = f.f_lasti + offset
    bytecode = f.f_code.co_code
    instruction = ord(bytecode[i])
    if instruction == dis.opmap['UNPACK_SEQUENCE']:
        return ord(bytecode[i + 1])
    elif instruction == dis.opmap['POP_TOP']:
        return 0
    else:
        return 1

def count():
    # offset = 3 bytecodes from the call op to the unpack op
    return range(expecting(offset=3))

Or as an object that can detect when it is unpacked:

class count(object):
    def __iter__(self):
        # offset = 0 because we are at the unpack op
        return iter(range(expecting(offset=0)))
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+1: this is a better hack than mine because it's going to get at the right assignment. –  DSM May 10 '13 at 13:15

There is little magic about how Python does this.

Simply put, if you use more than one target name on the left-hand side, the right-hand expression must return a sequence of matching length.

Functions that return more than one value really just return one tuple. That is a standard Python structure, a sequence of a certain length. You can measure that length:

retval = func()

print len(retval)

Assignment unpacking is determined at compile time, you cannot dynamically add more arguments on the left-hand side to suit the function you are calling.

Python 3 lets you use a splat syntax, a wildcard, for capturing the remainder of a unpacked assignment:

a, b, *c = func()

c will now be a list with any remaining values beyond the first 2:

>>> def func(*a): return a
... 
>>> a, b, *c = func(1, 2)
>>> a, b, c
(1, 2, [])
>>> a, b, *c = func(1, 2, 3)
>>> a, b, c
(1, 2, [3])
>>> a, b, *c = func(1)
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
ValueError: need more than 1 value to unpack
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The wildcard trick is nice, I'll have to remember that. –  jdm May 10 '13 at 11:44

Here is a way that works on Python 2 or 3:

>>> def f(n): return tuple(range(n))
... 
>>> for x in (1,2,3):
...    a,_=f(x),None
...    print a
... 
(0,)
(0, 1)
(0, 1, 2)
share|improve this answer
    
Down voter, may I know what you are thinking? –  dawg May 10 '13 at 21:32

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