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Say all of w, x, y, and z can be in list A. Is there a shortcut for checking that it contains only x--eg. without negating the other variables?

w, x, y, and z are all single values (not lists, tuples, etc).

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Are w,x,y and z all single values or lists? –  Steve Mayne Aug 31 '12 at 21:33
    
@SteveMayne All single values. –  idlackage Aug 31 '12 at 21:34
1  
Just to be clear, by "all single values", do you mean things like int and float and strings, or could (e.g.) y be a list? –  DSM Aug 31 '12 at 21:37
    
@DSM Yup, I mean the int/float/str. –  idlackage Aug 31 '12 at 21:40
    
Wait- do you mean that it doesn't include w, y, or z but can include other variables (let's say a, b, or c?) –  David Robinson Aug 31 '12 at 21:43

8 Answers 8

up vote 6 down vote accepted
A=[w,y,x,z]
all(p == x for p in A)
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This checks that all elements in A are equal to x without reference to any other variables:

all(element==x for element in A)
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I think it can include multiple x's –  David Robinson Aug 31 '12 at 21:38

If all items in the list are hashable:

set(A) == set([x])
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this is a bit inefficient as you have to compute the set instead of just iterating through A once –  Claudiu Aug 31 '12 at 21:47
    
Yep. Just more compact. –  David Robinson Aug 31 '12 at 21:48
    
In newer versions you can use {x} sugar. –  sdcvvc Sep 5 '12 at 8:58

I'm not sure what without negating the other variables means, but I suspect that this is what you want:

if all(item == x for item in myList): 
    #do stuff
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{x} == {w,x,y,z} & set(A)

This will work if all of [w,x,y,z] and items in A are hashable.

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Heres another way:

>>> [x] * 4 == [x,w,z,y]

of the many already stated.

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There are two interpretations to this question:

First, is the value of x contained in [w,y,z]:

>>> w,x,y,z=1,2,3,2
>>> any(x == v for v in [w,y,z])
True
>>> w,x,y,z=1,2,3,4
>>> any(x == v for v in [w,y,z])
False

Or it could mean that they represent the same object:

>>> w,x,y,z=1,2,3,4
>>> any(x is v for v in [w,y,z])
False
>>> w,x,y,z=1,2,3,x
>>> any(x is v for v in [w,y,z])
True
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That, or if you don't want to deal with a loop:

>>> a = [w,x,y,z]
>>> a.count(x) == len(a)
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I found this method to be 5 times faster than the accepted answer. –  Jonas Klemming May 29 '13 at 8:31

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