138

I love using the expression

if 'MICHAEL89' in USERNAMES:
    ...

where USERNAMES is a list


Is there any way to match items with case insensitivity or do I need to use a custom method? Just wondering if there is need to write extra code for this.

Thanks to everyone!

163
if 'MICHAEL89' in (name.upper() for name in USERNAMES):
    ...

Alternatively:

if 'MICHAEL89' in map(str.upper, USERNAMES):
    ...

Or, yes, you can make a custom method.

  • 8
    if 'CaseFudge'.lower() in [x.lower() for x in list] – fredley Sep 2 '10 at 14:00
  • 41
    [...] creates the whole list. (name.upper() for name in USERNAMES) would create only a generator and one needed string at a time - massive memory savings if you're doing this operation a lot. (even more savings, if you simply create a list of lowercase usernames that you reuse for checking every time) – viraptor Sep 2 '10 at 14:06
  • 2
    Prefer to lower all keys when building the dict, for performance reasons. – Ryan May 1 '13 at 6:27
  • 1
    if [x.lower() for x in list] is a list comprehension, is (name.upper() for name in USERNAMES) a tuple comprehension? Or does it have another name? – otocan Apr 19 '18 at 8:48
  • 1
    @otocan It's a generator expression. – nmichaels Apr 19 '18 at 13:13
19

I would make a wrapper so you can be non-invasive. Minimally, for example...:

class CaseInsensitively(object):
    def __init__(self, s):
        self.__s = s.lower()
    def __hash__(self):
        return hash(self.__s)
    def __eq__(self, other):
        # ensure proper comparison between instances of this class
        try:
           other = other.__s
        except (TypeError, AttributeError):
          try:
             other = other.lower()
          except:
             pass
        return self.__s == other

Now, if CaseInsensitively('MICHAEL89') in whatever: should behave as required (whether the right-hand side is a list, dict, or set). (It may require more effort to achieve similar results for string inclusion, avoid warnings in some cases involving unicode, etc).

  • 3
    that doesn't work for dict try if CaseInsensitively('MICHAEL89') in {'Michael89':True}:print "found" – Xavier Combelle Sep 2 '10 at 14:56
  • 2
    Xavier: You would need CaseInsensitively('MICHAEL89') in {CaseInsensitively('Michael89'):True} for that to work, which probably doesn't fall under "behave as required". – Gabe Sep 2 '10 at 15:07
  • So much for there being only 1 obvious way to do it. This feels heavy unless it's going to be used a lot. That said, it's very smooth. – nmichaels Sep 2 '10 at 17:56
  • 2
    @Nathon, it seems to me that having to invasively alter the container is the "feels heavy" operation. A completely non-invasive wrapper: how much "lighter" than this could one get?! Not much;-). @Xavier, RHS's that are dicts or sets with mixed-case keys/items need their own non-invasive wrappers (part of the short etc. and "require more effort" parts of my answer;-). – Alex Martelli Sep 2 '10 at 18:14
  • My definition of heavy involves writing quite a bit of code to make something that will only be used once, where a less robust but much shorter version would do. If this is going to be used more than once, it's perfectly sensible. – nmichaels Sep 2 '10 at 18:35
10

Usually (in oop at least) you shape your object to behave the way you want. name in USERNAMES is not case insensitive, so USERNAMES needs to change:

class NameList(object):
    def __init__(self, names):
        self.names = names

    def __contains__(self, name): # implements `in`
        return name.lower() in (n.lower() for n in self.names)

    def add(self, name):
        self.names.append(name)

# now this works
usernames = NameList(USERNAMES)
print someone in usernames

The great thing about this is that it opens the path for many improvements, without having to change any code outside the class. For example, you could change the self.names to a set for faster lookups, or compute the (n.lower() for n in self.names) only once and store it on the class and so on ...

7

Here's one way:

if string1.lower() in string2.lower(): 
    ...

For this to work, both string1 and string2 objects must be of type string.

  • 5
    AttributeError: 'list' object has no attribute 'lower' – Jeff Oct 13 '17 at 12:26
  • @Jeff that's because one of your elements is a list, and both objects should be a string. Which object is a list? – User Jan 9 '19 at 0:48
  • 1
    I would up vote you, but I cannot unless you edit your answer. You are absolutely right. – Jeff Jan 9 '19 at 0:50
  • @Jeff I added clarification. – User Jan 9 '19 at 0:51
6

I think you have to write some extra code. For example:

if 'MICHAEL89' in map(lambda name: name.upper(), USERNAMES):
   ...

In this case we are forming a new list with all entries in USERNAMES converted to upper case and then comparing against this new list.

Update

As @viraptor says, it is even better to use a generator instead of map. See @Nathon's answer.

  • Or you could use itertools function imap. It's much faster than a generator but accomplishes the same goal. – wheaties Sep 2 '10 at 14:24
6

str.casefold is recommended for case-insensitive string matching. @nmichaels's solution can trivially be adapted.

Use either:

if 'MICHAEL89'.casefold() in (name.casefold() for name in USERNAMES):

Or:

if 'MICHAEL89'.casefold() in map(str.casefold, USERNAMES):

As per the docs:

Casefolding is similar to lowercasing but more aggressive because it is intended to remove all case distinctions in a string. For example, the German lowercase letter 'ß' is equivalent to "ss". Since it is already lowercase, lower() would do nothing to 'ß'; casefold() converts it to "ss".

5

You could do

matcher = re.compile('MICHAEL89', re.IGNORECASE)
filter(matcher.match, USERNAMES) 

Update: played around a bit and am thinking you could get a better short-circuit type approach using

matcher = re.compile('MICHAEL89', re.IGNORECASE)
if any( ifilter( matcher.match, USERNAMES ) ):
    #your code here

The ifilter function is from itertools, one of my favorite modules within Python. It's faster than a generator but only creates the next item of the list when called upon.

  • Just to add, the pattern might need to be escaped, since it might contain characters like ".","?", which has specail meaning in regular expression patterns. use re.escape(raw_string) to do it – Iching Chang Jan 8 '17 at 23:29
0

My 5 (wrong) cents

'a' in "".join(['A']).lower()

UPDATE

Ouch, totally agree @jpp, I'll keep as an example of bad practice :(

  • 2
    This is wrong. Consider 'a' in "".join(['AB']).lower() returns True when this isn't what OP wants. – jpp Apr 10 '19 at 19:36

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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