Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Hi there I'm rather new to Python and here is my problem. I'm trying to make a function that will decrypt an integer and output a string of three letters so basically I was wondering if there was a way to translate the first into Python. So say:

x == 0
y == 1
z == 3

if x or y or z == 0 :
    Mylist.append("c")
elif x or y or z == 1 :
    Mylist.append("d")
elif x or y or z== 2 :
    Mylist.append("e")
elif x or y or z == 3 : 
    Mylist.append("f")

which would return a list of

["c", "d", "f"]

Any help would be greatly appreciated!

share|improve this question
add comment

3 Answers

up vote 45 down vote accepted

You misunderstand how boolean expressions work. You are looking for:

if x == 1 or y == 1 or z == 1:

x and y are otherwise evaluated on their own (False if 0, True otherwise).

You can shorten that to:

if 1 in (x, y, z):

or better still:

if 1 in {x, y, z}:

using a set to take advantage of the constant-cost membership test (in takes a fixed amount of time whatever the left-hand operand is).

When you use or, python sees each side of the operator as separate expressions. The expression x or y == 1 is treated as first a boolean test for x, then if that is False, the expression y == 1 is tested.

This is due to operator precedence. The or operator has a lower precedence than the == test, so the latter is evaluated first.

However, even if this were not the case, and the expression x or y or z == 1 was actually interpreted as (x or y or z) == 1 instead, this would still not do what you expect it to do.

x or y or z would evaluate to the first argument that is 'truthy', e.g. not False, numeric 0 or empty (see boolean expressions for details on what Python considers false in a boolean context).

So for the values x = 2; y = 1; z = 0, x or y or z would resolve to 2, because that is the first true-like value in the arguments. Then 2 == 1 would be False, even though y == 1 would be True.

share|improve this answer
12  
... or 1 in [x, y, z] if you want a shorthand. –  larsmans Feb 27 '13 at 12:28
    
can you explain a bit more why the OP misunderstands booleans? –  Private Feb 27 '13 at 13:14
    
I wouldn't be so quick to go for the set version. Tuple's are very cheap to create and iterate over. On my machine at least, tuples are faster than sets so long as the size of the tuple is around 4-8 elements. If you have to scan more than that, use a set, but if you are looking for an item out of 2-4 possibilities, a tuple is still faster! If you can arrange for the most likely case to be first in the tuple, the win is even bigger: (my test: timeit.timeit('0 in {seq}'.format(seq=tuple(range(9, -1, -1))))) –  IfLoop Oct 24 '13 at 15:27
    
@dequestarmappartialsetattr: In Python 3.3 and up, the set is stored as a constant, bypassing the creation time altogether, eliminating the creation time. Tuples can be cheap to create as Python caches a bundle of them to avoid memory churn, making that the biggest difference with sets here. –  Martijn Pieters Oct 24 '13 at 15:29
    
@dequestarmappartialsetattr: If you time just the membership test, for integers sets and tuples are equally fast for the ideal scenario; matching the first element. After that tuples lose out to sets. –  Martijn Pieters Oct 24 '13 at 15:37
add comment

The direct way to write x or y or z == 0 is

if any(map((lambda value: value == 0), (x,y,z))):
    pass # write your logic.

But I dont think, you like it. :) And this way is ugly.

The other way (a better) is:

0 in (x, y, z)

BTW lots of ifs could be written as something like this

my_cases = {
    0: Mylist.append("c"),
    1: Mylist.append("d")
    # ..
}

for key in my_cases:
    if key in (x,y,z):
        my_cases[key]()
        break
share|improve this answer
1  
a semicolon! gah, my eyes! ;) –  Brian Cain Jul 11 '13 at 21:20
    
@BrianCain sorry, too much JS for today. ;) –  akaRem Jul 11 '13 at 21:25
    
In your example of the dict instead of a key, you will get errors because the return value of .append is None, and calling None gives an AttributeError. In general I agree with this method, though. –  SethMMorton Feb 8 at 20:57
add comment

Your problem is more easily addressed with a dictionary structure like:

x == 0
y == 1
z == 3
d = {0: 'c', 1:'d', 2:'e', 3:'f'}
MyList = [d[k] for k in [x, y, z]]
share|improve this answer
    
Or even d = "cdef" which leads to MyList = ["cdef"[k] for k in [x, y, z]] –  aragaer Oct 24 '13 at 15:39
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.