37

What I was trying to achieve, was something like this:

>>> camel_case_split("CamelCaseXYZ")
['Camel', 'Case', 'XYZ']
>>> camel_case_split("XYZCamelCase")
['XYZ', 'Camel', 'Case']

So I searched and found this perfect regular expression:

(?<=[a-z])(?=[A-Z])|(?<=[A-Z])(?=[A-Z][a-z])

As the next logical step I tried:

>>> re.split("(?<=[a-z])(?=[A-Z])|(?<=[A-Z])(?=[A-Z][a-z])", "CamelCaseXYZ")
['CamelCaseXYZ']

Why does this not work, and how do I achieve the result from the linked question in python?

Edit: Solution summary

I tested all provided solutions with a few test cases:

string:                 ''
AplusKminus:            ['']
casimir_et_hippolyte:   []
two_hundred_success:    []
kalefranz:              string index out of range # with modification: either [] or ['']

string:                 ' '
AplusKminus:            [' ']
casimir_et_hippolyte:   []
two_hundred_success:    [' ']
kalefranz:              [' ']

string:                 'lower'
all algorithms:         ['lower']

string:                 'UPPER'
all algorithms:         ['UPPER']

string:                 'Initial'
all algorithms:         ['Initial']

string:                 'dromedaryCase'
AplusKminus:            ['dromedary', 'Case']
casimir_et_hippolyte:   ['dromedary', 'Case']
two_hundred_success:    ['dromedary', 'Case']
kalefranz:              ['Dromedary', 'Case'] # with modification: ['dromedary', 'Case']

string:                 'CamelCase'
all algorithms:         ['Camel', 'Case']

string:                 'ABCWordDEF'
AplusKminus:            ['ABC', 'Word', 'DEF']
casimir_et_hippolyte:   ['ABC', 'Word', 'DEF']
two_hundred_success:    ['ABC', 'Word', 'DEF']
kalefranz:              ['ABCWord', 'DEF']

In summary you could say the solution by @kalefranz does not match the question (see the last case) and the solution by @casimir et hippolyte eats a single space, and thereby violates the idea that a split should not change the individual parts. The only difference among the remaining two alternatives is that my solution returns a list with the empty string on an empty string input and the solution by @200_success returns an empty list. I don't know how the python community stands on that issue, so I say: I am fine with either one. And since 200_success's solution is simpler, I accepted it as the correct answer.

  • Other Qs to do what you're trying to do: first, second and I'm pretty sure there are others. – Jerry Apr 28 '15 at 9:57
  • How is it ABC CamelCase?! – mihai Apr 28 '15 at 10:48
  • 1
    @Mihai I do not understand your question. If you wonder how the regex performs on "ABCCamelCase", it works as expected: ['ABC', 'Camel', 'Case']. If you interpreted ABC to stand for AbstractBaseClass, then I am sorry for the confusion, as ABC is just three arbitrary uppercase letters in my question. – AplusKminus Apr 28 '15 at 10:54
  • Read my answer to a similar question. – Matthias Apr 28 '15 at 10:56
  • 1
    Also a good answer, but I did not find the question as the wording was too specific for my search. Also your answer does not quite do what is asked for here, as it produces a converted string with an arbitrary separation character which you would need to split with str.split(' '), instead of a (more versatile) list of its parts. – AplusKminus Apr 28 '15 at 11:06
29

As @AplusKminus has explained, re.split() never splits on an empty pattern match. Therefore, instead of splitting, you should try finding the components you are interested in.

Here is a solution using re.finditer() that emulates splitting:

def camel_case_split(identifier):
    matches = finditer('.+?(?:(?<=[a-z])(?=[A-Z])|(?<=[A-Z])(?=[A-Z][a-z])|$)', identifier)
    return [m.group(0) for m in matches]
  • I found one difference (according to my test cases) between your solution and mine: camel_case_split("") returns []in your case and [""] in mine. The question is, which of those you would rather consider to be expected. Since either one works in my application, I consider this to be a valid answer! – AplusKminus Apr 28 '15 at 13:05
  • Another question that remains, is whether this, or my proposed solution performs better. I am no expert on the complexity of regular expressions, so this would have to be evaluated by someone else. – AplusKminus Apr 28 '15 at 13:14
  • Our regexes are basically the same, except that mine starts with a .+? that captures the text instead of discarding it, and ends with a $ to make it go all the way to the end. Neither change changes the search strategy. – 200_success Apr 28 '15 at 13:22
  • 1
    Doesn't support digits. For example, "L2S" is not split into ["L2", "S"] . Use [a-z0-9] rather than [a-z] in the above regular expression to fix this. – Neapolitan Oct 6 '16 at 14:48
  • @Neapolitan The question seemed not to want a split there. – 200_success Oct 6 '16 at 14:53
16

Use re.sub() and split()

import re

name = 'CamelCaseTest123'
splitted = re.sub('(?!^)([A-Z][a-z]+)', r' \1', name).split()

result

['Camel', 'Case', 'Test123']
  • Best answer so far IMHO, elegant and effective, should be the selected answer. – Pierrick Bruneau Apr 26 at 9:12
6

Most of the time when you don't need to check the format of a string, a global research is more simple than a split (for the same result):

re.findall(r'[A-Z](?:[a-z]+|[A-Z]*(?=[A-Z]|$))', 'CamelCaseXYZ')

returns

['Camel', 'Case', 'XYZ']

To deal with dromedary too, you can use:

re.findall(r'[A-Z]?[a-z]+|[A-Z]+(?=[A-Z]|$)', 'camelCaseXYZ')

Note: (?=[A-Z]|$) can be shorten using a double negation (a negative lookahead with a negated character class): (?![^A-Z])

  • 1
    Does not correctly split "camelCase" as it returns ['Case'] only. – AplusKminus Apr 28 '15 at 14:18
  • @SheridanVespo: This is a way only for camel, not for dromedary (as asked). But it's possible to do it in the same way with few changes. – Casimir et Hippolyte Apr 28 '15 at 14:20
  • 1
    I was not aware that there is something with the name of dromedary case. Since the wikipedia page for camel case does not mention it, I must assume it is not a commonly known term. Nevertheless, your code seems to work just as requested. Since your regex includes one lookaround and "mine" contains 4, I assume yours is more efficient. Is that correct? – AplusKminus Apr 28 '15 at 14:54
  • @SheridanVespo: Yes "dromedary-case" doesn't exist, but since the dromedary has only one hump, and the camel two... About efficiency: it is not the pattern itself but all the code after that you avoid since you obtain directly the list of strings you want. About lookarounds in general: lookarounds do not come straight from hell and are not so slow (they can slow down a pattern only if they are badly used). As I was saying to an other SO user there's a few minutes, there are cases where you can optimize a pattern with lookaheads. – Casimir et Hippolyte Apr 28 '15 at 15:17
3

The documentation for python's re.split says:

Note that split will never split a string on an empty pattern match.

When seeing this:

>>> re.findall("(?<=[a-z])(?=[A-Z])|(?<=[A-Z])(?=[A-Z][a-z])", "CamelCaseXYZ")
['', '']

it becomes clear, why the split does not work as expected. The remodule finds empty matches, just as intended by the regular expression.

Since the documentation states that this is not a bug, but rather intended behavior, you have to work around that when trying to create a camel case split:

def camel_case_split(identifier):
    matches = finditer('(?<=[a-z])(?=[A-Z])|(?<=[A-Z])(?=[A-Z][a-z])', identifier)
    split_string = []
    # index of beginning of slice
    previous = 0
    for match in matches:
        # get slice
        split_string.append(identifier[previous:match.start()])
        # advance index
        previous = match.start()
    # get remaining string
    split_string.append(identifier[previous:])
    return split_string
2

I just stumbled upon this case and wrote a regular expression to solve it. It should work for any group of words, actually.

RE_WORDS = re.compile(r'''
    # Find words in a string. Order matters!
    [A-Z]+(?=[A-Z][a-z]) |  # All upper case before a capitalized word
    [A-Z]?[a-z]+ |  # Capitalized words / all lower case
    [A-Z]+ |  # All upper case
    \d+  # Numbers
''', re.VERBOSE)

The key here is the lookahead on the first possible case. It will match (and preserve) uppercase words before capitalized ones:

assert RE_WORDS.findall('FOOBar') == ['FOO', 'Bar']
  • I like this one because it's clearer, and it does a better job for "strings people enter in real-life" like URLFinder and listURLReader. – Tom Swirly Jul 16 '18 at 12:47
0

Here's another solution that requires less code and no complicated regular expressions:

def camel_case_split(string):
    bldrs = [[string[0].upper()]]
    for c in string[1:]:
        if bldrs[-1][-1].islower() and c.isupper():
            bldrs.append([c])
        else:
            bldrs[-1].append(c)
    return [''.join(bldr) for bldr in bldrs]

Edit

The above code contains an optimization that avoids rebuilding the entire string with every appended character. Leaving out that optimization, a simpler version (with comments) might look like

def camel_case_split2(string):
    # set the logic for creating a "break"
    def is_transition(c1, c2):
      return c1.islower() and c2.isupper()

    # start the builder list with the first character
    # enforce upper case
    bldr = [string[0].upper()]
    for c in string[1:]:
        # get the last character in the last element in the builder
        # note that strings can be addressed just like lists
        previous_character = bldr[-1][-1]
        if is_transition(previous_character, c):
            # start a new element in the list
            bldr.append(c)
        else:
            # append the character to the last string
            bldr[-1] += c
    return bldr
  • Your code fails on something like camel_case_split("XYZCamelCase") which was specifically requested in the question I linked and is therefore also part of my question. – AplusKminus Apr 28 '15 at 12:29
  • Also: Could you please add comments to your code to make it easier to see what it actually does? – AplusKminus Apr 28 '15 at 12:33
  • @SheridanVespo I think the first version may have had an extraneous ) that you caught and corrected for me :) – kalefranz Apr 28 '15 at 12:49
  • I found another case, where the behavior of your code differs from the requested behavior: Whenever a string starts with a lower case letter, that letter will be converted to upper case. As a split function should not change anything, I consider this to be a bug. While that could be easily corrected, the problem from my first comment remains. – AplusKminus Apr 28 '15 at 13:11
  • @SheridanVespo Apparently there are varied definitions for camel case. Some definitions (and the one I was originally assuming) enforce the first letter being capitalized. No worries; the "bug" is an easy fix. Just remove the .upper() call when initializing the list. – kalefranz Apr 28 '15 at 13:34
0

I know that the question added the tag of regex. But still, I always try to stay as far away from regex as possible. So, here is my solution without regex:

def split_camel(text, char):
    if len(text) <= 1: # To avoid adding a wrong space in the beginning
        return text+char
    if char.isupper() and text[-1].islower(): # Regular Camel case
        return text + " " + char
    elif text[-1].isupper() and char.islower(): # Detect Camel case in case of abbreviations
        return text[:-1] + " " + text[-1] + char
    else: # Do nothing part
        return text + char

text = "PathURLFinder"
text = reduce(split_camel, a, "")
print text
# prints "Path URL Finder"
print text.split(" ")
# prints "['Path', 'URL', 'Finder']"
-1

I think below is the optimim

Def count_word(): Return(re.findall(‘[A-Z]?[a-z]+’, input(‘please enter your string’))

Print(count_word())

  • Can you elaborate please? – PJProudhon Jul 1 '18 at 15:23

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