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I have a function like ("stupid minimal example"):

def f(n):
  a = n*n
  b = a+1
  return b

b0 = f(n) # used million times in the code

I want to change def f() : in such a way that this works:

def f(n)
  a = n*n
  b = a+1
  somemagicreturn b,a

b0 = f(n) # gives b0 == n*n+1
b0,a0 = f(n) #gives b0 == n*n+1 and a0==n*n

If possible, without having additional arguments to f and without having two functions f and f2.


In Matlab, this is possible, in the following way:

File f.m:

function [r1,r2]=f(n)
if nargout == 2,
  r1 = n*n+1
  r2 = n*n
else,
  r1 = n*n+1
end,

Or even simpler:

function [r1,r2]=f(n)
r1 = n*n+1
r2 = n*n

Both of the above used as:

b = f(0) 
[b,a] = f(0)

(The first returns b=1 and the second b=1, a=0, as I want.)

share|improve this question
    
Its supposed to be a = n**2 – K DawG Nov 28 '13 at 15:22
    
@KDawG Or probably not... It's a valid operator as well – aIKid Nov 28 '13 at 15:22
    
@KDawG Sorry, I use sage where ^ works. I'll edit, still it's not substantial I think. – yo' Nov 28 '13 at 15:23
2  
I don't believe that you can do this in Python without modifying any of the code that already uses f. If f returns multiple values, then it will be returning a tuple (or a dictionary, or a class, or some other container object). Python won't silently unpack this tuple for calls which are expecting just an int to be returned. – Tim Pierce Nov 28 '13 at 15:26
1  
@tohecz yeah give it a edit with more clarification.... also post a working sage example – K DawG Nov 28 '13 at 15:42
up vote 1 down vote accepted

I'm making a different answer because it's a different approach. All credits goes here, I just adapted it to your case.

Still, probably not a best practice by far IMHO.

import inspect, dis

def expecting():
    """Return how many values the caller is expecting"""
    f = inspect.currentframe()
    f = f.f_back.f_back
    c = f.f_code
    i = f.f_lasti
    bytecode = c.co_code
    instruction = ord(bytecode[i + 3])
    if instruction == dis.opmap['UNPACK_SEQUENCE']:
        howmany = ord(bytecode[i + 4])
        return howmany
    elif instruction == dis.opmap['POP_TOP']:
        return 0
    return 1


def f(n):
    howmany = expecting()
    a = n * n
    b = a + 1
    if howmany == 1:
        return b
    else:
        return b, a

a = f(1)
print a # this prints 2

a, b = f(1)
print a # this prints 2 
print b # this prints 1
share|improve this answer
    
+1 and accept, this works and from all the non-pythonian solutions here looks the clearest. The best would be if python implemented nargout, for example as a part of inspect (which seems to be capable of dirty tricks anyways). – yo' Nov 28 '13 at 18:05
    
Doesn't work correctly with "a, *b = f(1)" (expected() returns 1), though mine does. ("a, *b = f(1)" uses starred tuple unpacking (starred tuple unpacking is only available in Python 3). To make it work on Python 3, one has to remove the two ord() function calls (ord(bytecode[i + 4]) should be bytecode[i + 4]). – Ramchandra Apte Nov 29 '13 at 3:16

Sorry, I have no permission to add comment currently.

Can I modify function f ?

If yes, you can add a keyword option with a default value:

def f(n, nopt=2):
  a = n^2
  b = b+1
  if nopt == 2 :
    return b,a
  else :
    return b
share|improve this answer
    
Congrats on your first python answer! +1 for that :) – aIKid Nov 28 '13 at 15:37
    
Very elegant solution! – Tim Pierce Nov 28 '13 at 15:38
    
Nice, however, is the same as implementing f2 that just returns two things. Please guys, maybe my question isn't perfect, but I know all these basic things I can do :) – yo' Nov 28 '13 at 15:39
    
In your solution, I need to run b0,a0=f(0,2) for something that I want to be b0,a0=f(0). This is quite frowned upon for me (and I thought it is clear that this is not a good solution). – yo' Nov 28 '13 at 15:43
    
@tohecz Yes, my answer is wrong for your question. stackoverflow.com/questions/16481156 this may help. – qiangwang Nov 28 '13 at 16:02

An alternative s̶o̶l̶u̶t̶i̶o̶n̶ ugly hack which parses the code calling it and requires absolutely no modification of code calling f(). It uses the inspect and ast module, so add the imports for them.

inspect.stack()[2 if called_from_function else 1][4][0] gets the code where f() is being called.

import inspect
import ast

def num_assigns():
    calling_code = inspect.stack()[2][4][0]
    calling_code = calling_code.lstrip() # Strip the identation
    first = ast.parse(calling_code).body[0]
    blocks = (ast.FunctionDef, ast.ClassDef, ast.For, ast.While, ast.If, ast.While, ast.TryExcept, ast.TryFinally)
    # Handle the case of the assignment being in a block
    if isinstance(first, blocks):
        first = first.body[0]
    if not isinstance(first, ast.Assign): return 0
    targets = first.targets
    if isinstance(targets[0], ast.Tuple):
      return len(targets[0].elts)
    if isinstance(targets, list):
      return len(targets)

    assert False, "This part should never be reached"

def fruits():
  print(num_assigns())
  return "apple", "orange"

if True:
  apple, orange = fruits()

Just call num_assigns() from f() to find out the number of values the return value is being assigned to. Note that it will not work in the Python interactive console as num_assigns() reads the code from the file. Also, num_assigns() assumes it is being called from a function, if not then set the called_from_function argument to False.

share|improve this answer
    
This looks like a promising approach. I gotta go, I'll be back later! Thanks for the effort! – yo' Nov 28 '13 at 15:59
2  
You just won the UglyHackFTW Award, Sir !-) – bruno desthuilliers Nov 28 '13 at 16:00
    
It's a pity that someone down-voted this since UglyHackFTW is obviously the only way to go to achieve the goal in Python and this seems to work. Thank you! – yo' Nov 28 '13 at 18:07

Just pass the number of the return values expected to the function:

def f(returns=1, n):
    a = n**2
    b = a+1
    return (a, b)[:returns]

With returns as the amount of values to be returned.

share|improve this answer
    
I undeleted this, in case modifying the function is what you wanted. – aIKid Nov 28 '13 at 15:35
1  
So all calls of f I've implemented so far in my code have to be modified, right? – yo' Nov 28 '13 at 15:37
    
No need if you specify a default argument n=1 – Rudy Bunel Nov 28 '13 at 15:37
1  
@tohecz After coding python for some time, i believe that there is no direct solution for your question. Sorry, but that's all i can help. – aIKid Nov 28 '13 at 15:46
1  
@aIKid agree the OP must understand this is python not matlab – K DawG Nov 28 '13 at 15:50

I don't think it's possible to return two values and make it only receive the first value but you could add:

global a0
the code for computing a
a0 = a

and then after the function is called a0 would be set to a.

share|improve this answer
    
@tohecz I saw that, but how does my code require modification of existing code? It does assume that a0 is used for the second value. – Ramchandra Apte Nov 28 '13 at 15:29
    
Oh yeah, I get what you've done here. No, sorry, that's not really a thing one wants to do. It's not stable under recursion, etc. Certainly not a good coding practice. Still I apologize, my comment was irrelevant. – yo' Nov 28 '13 at 15:31

Could you perhaps do something like this:

def g(n):
  a = n*n
  b = a+1
  return b,a

def f(n):
    b,_ = g(n)
    return b

That way you can use g when you want all the answers and keep on using f for your existing code. It depends on what you want to do.

share|improve this answer
    
Yes, I can do this, quite certainly. The question is whether I can do it in such a way that both b0=f(n) and b0,a0=f(n) work as expected. Not b0=f(n) and b0,a0=g(n). That's something I do now, and I hate it. – yo' Nov 28 '13 at 15:40

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