I have a list containing 3 elements, for example '1', '2', '3' and I wanna write a function which returns element which is not an function argument. For example:

 def get_char(a, b):
     crs = ['1', '2', '3']
     return something

 x = get_char('1', '2')
 x = '3'

 x = get_char('3', '2')
 x = '1'

You can see what I'm trying to accomplish. I know that I can get it by using if statements but is there any simpler way of doing it?

  • 1
    Is it always n elements and you provide n-1 elements as an input to the function? – rahlf23 Nov 8 at 20:22
  • set(['1', '2', '3'])^set(a,b) – mad_ Nov 8 at 20:22
  • Yes, it should always work that way. – ofnero Nov 8 at 20:23
  • @mad_: ^ is a little off from the desired behavior, and this is Python 3, so you can use set literals; {'1', '2', '3'} - {a, b} is cleaner and more correct. – ShadowRanger Nov 8 at 20:35
up vote 1 down vote accepted

Here is a general response:

def get_chars(*args):
    chars = {'1', '2', '3'}
    return (chars^set(args)).pop()

Though you may want to do something to handle the case that you pass in 3 arguments or 1 argument. Depends on your usecase.

Note also that you could change your chars set to have more characters, and this function would still work.


As ShadowRanger points out in the comments, it probably makes more sense to do set subtraction than bit-wise xor. Something like this:

def get_chars(*args):
    return ({'1', '2', '3'} - set(args)).pop()

This is still subject to the same problem if passing in the wrong number of arguments, which you could check using something like this:

def get_chars(*args):
    diff = {'1', '2', '3'} - set(args)
    if len(diff) != 1:
        # Handle the incorrect number of args (or use error)
        return None
    return diff.pop()
  • Thank you! That's what i wanted to do! – ofnero Nov 8 at 20:31
  • 2
    You want -, not ^ here; ^ would return elements in chars that aren't in args and elements in args that aren't in chars, while chars - set(args) (or chars.difference(args), the named methods don't require the arguments to be explicitly converted to set) would only return the values in chars not found in args. – ShadowRanger Nov 8 at 20:37
  • @ShadowRanger Good call. – Stephen Nov 8 at 20:43

You can use two lists, an iteration and the not in function:

x = [1,2,3]

y = [1,5,7]


def compare(original_list, list_to_compare):
    for i in original_list:
        if i not in list_to_compare:
            print(i)


compare(x,y)
# result 2, 3
compare(y,x)
*emphasized text*# result 5,3

You may use if and in to test if the variable is present in the arguments list (args here):

>>> def get_char(*args):
...     crs = ['1', '2', '3']
...     for x in crs:
...             if x not in args:
...                     return x
...     return Null
... 
>>> x = get_char('1', '2')
>>> 
>>> x
'3'

This returns the very first element in crs that is not also present in args, returns Null if all are present.

I guess that this could be what you are asking for:

def elements_from_crs_not_in_args(*args): 
     crs = ['1','2','3']
     return [i for i in crs if i not in args] 

Then:

input: elements_from_crs_not_in_args('1','2')
result: ['3']

If you are planning to return a single element (first of the list?) instead of a list, return[..][0]

I would do two things first if set of char are same I will pull them outside the function so it does not get executed each time. Second use set operation symmetric difference ^to find all the elements which are present in only one list of two lists or difference to find the difference of one set from another. In the end you have to convert the set into a tuple in order to get the first element as set do not support indexes

crs = set(['1', '2', '3'])
def get_char(a, b):
    return (crs ^ set((a,b))).pop()

print(get_char('1', '2')) #'3'

Or better

crs = set(['1', '2', '3'])
def get_char(a, b):
     return (crs - set((a,b))).pop()

print(get_char('1', '2')) #'3'

In Python3 you can use set literal as pointed out by @ShadowRanger

crs = {'1', '2', '3'}
def get_char(a, b):
    return (crs - {a, b}).pop()

print(get_char('1', '2')) #'3'
  • Is there some reason you don't use set literals? They've been available since 2.7/3.0 (over eight years now), and they're both faster and clearer than calling the set constructor on list/tuple literals. – ShadowRanger Nov 8 at 20:41
  • @ShadowRanger yup I have a local environment of 2.7 from old age still running. – mad_ Nov 8 at 20:48

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