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def function(varone=None, vartwo=None, varthree=None):
     values = {}
            if var1 is not None:   
                    values['var1'] = varone
            if var2 is not None:
                    values['var2'] = vartwo
            if var3 is not None:
                    values['var3'] = varthree
            if not values:
                    raise Exception("No values provided")

Can someone suggest a more elegant, pythonic way to accomplish taking placing non-null named variables and placing them in a dictionary? I do not want the values to be passed in as a dictionary. The key names of "values" are important and must be as they are. The value of "varone" must go into var1, "vartwo" must go into var2 and so on; Thanks.

share|improve this question
    
You can pass your parameters rather as *kwarg in your function. – Rohit Jain Oct 27 '12 at 6:16
    
By the way, this seems like kind of an odd thing to raise an exception for in Python. – David Z Oct 27 '12 at 6:40
up vote 6 down vote accepted

You could use kwargs:

def function(*args, **kwargs):
    values = {}
    for k in kwargs:
        if kwargs[k] is not None:
            values[k] = kwargs[k]
    if not values:
        raise Exception("No values provided")
    return values

>>> function(varone=None, vartwo="fish", varthree=None)
{'vartwo': 'fish'}

With this syntax, Python removes the need to explicitly specify any argument list, and allows functions to handle any old keyword arguments they want.

If you're specifically looking for keys var1 etc instead of varone you just modify the function call:

>>> function(var1=None, var2="fish", var3=None)
{'var2': 'fish'}

If you want to be REALLY slick, you can use list comprehensions:

def function(**kwargs):
    values = dict([i for i in kwargs.iteritems() if i[1] != None])
    if not values:
        raise Exception("foo")
    return values

Again, you'll have to alter your parameter names to be consistent with your output keys.

share|improve this answer
1  
+1 for the list comprehension (or it could be a dict comprehension in newer versions of Python) – David Z Oct 27 '12 at 6:39

Well, you can pass all those values inside a keyword argument: -

def function(*nkwargs, **kwargs):
    values = {}

    for k in kwargs:
        if kwargs[k] is not None:
            values[k] = kwargs[k]
    if not values:
        raise Exception("No values")
    print values

try:
    function()
except Exception, e:
    print e

function(varOne=123, varTwo=None)
function(varOne=123, varTwo=234)

OUTPUT: -

No values
{'varOne': 123}
{'varOne': 123, 'varTwo': 234}
share|improve this answer

Call your function as usual, but accept as **kwargs. Then filter them:

def fn(**kwargs):
    items = {'var%s' % i: v for i, (k, v) in enumerate(items)}

fn(a=1, b=2, c=3)

if you need a specific set of names, then make a dict of names:

    names = dict(zip('varOne varTwo varThree'.split(), range(1, 4)))

walk over this dict and check if the var is in kwargs:

items = {'var%s' % k: kwargs[v] for k, v in names.items() if v in kwargs}
share|improve this answer
    
There's really no need to go throwing lambdas around for this ... – Zero Piraeus Oct 27 '12 at 6:49
    
Right. In the second examlpe I use list comprehensions. – culebrón Oct 27 '12 at 7:03

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