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This an optimized version of the tokenizer that was first written, and it works fairly well. A secondary tokenizer can parse the output from this function to create classified tokens of greater specificity.

def tokenize(source):
    return (token for token in (token.strip() for line
            in source.replace('\r\n', '\n').replace('\r', '\n').split('\n')
            for token in line.split('#', 1)[0].split(';')) if token)

My question is this: how can this be written simply with the re module? Below is my ineffective attempt.

def tokenize2(string):
    search = re.compile(r'^(.+?)(?:;(.+?))*?(?:#.+)?$', re.MULTILINE)
    for match in search.finditer(string):
        for item in match.groups():
            yield item

Edit: This is the type of output that I am looking for from the tokenizer. Parsing the text should be easy.

>>> def tokenize(source):
    return (token for token in (token.strip() for line
            in source.replace('\r\n', '\n').replace('\r', '\n').split('\n')
            for token in line.split('#', 1)[0].split(';')) if token)

>>> for token in tokenize('''\
a = 1 + 2; b = a - 3 # create zero in b
c = b * 4; d = 5 / c # trigger div error

e = (6 + 7) * 8
# try a boolean operation
f = 0 and 1 or 2
a; b; c; e; f'''):
    print(repr(token))


'a = 1 + 2'
'b = a - 3 '
'c = b * 4'
'd = 5 / c '
'e = (6 + 7) * 8'
'f = 0 and 1 or 2'
'a'
'b'
'c'
'e'
'f'
>>> 
share|improve this question
    
would applying the regex match to the if statement at the end of your generator comprehension do it? –  tMC Aug 16 '12 at 19:00
    
No, one of the problems is that a statement like a;b;c only returns ('a', 'c'), and a#b returns ('a', None). –  Noctis Skytower Aug 16 '12 at 19:04

2 Answers 2

up vote 1 down vote accepted

I might be way off here-

>>> def tokenize(source):
...     search = re.compile(r'^(.+?)(?:;(.+?))*?(?:#.+)?$', re.MULTILINE)
...     return (token.strip() for line in source.split('\n') if search.match(line)
...                   for token in line.split('#', 1)[0].split(';') if token)
... 
>>> 
>>> 
>>> for token in tokenize('''\
... a = 1 + 2; b = a - 3 # create zero in b
... c = b * 4; d = 5 / c # trigger div error
... 
... e = (6 + 7) * 8
... # try a boolean operation
... f = 0 and 1 or 2
... a; b; c; e; f'''):
...     print(repr(token))
... 
'a = 1 + 2'
'b = a - 3'
'c = b * 4'
'd = 5 / c'
'e = (6 + 7) * 8'
'f = 0 and 1 or 2'
'a'
'b'
'c'
'e'
'f'
>>> 

If applicable, I would keep the re.compile out of the def scope.

share|improve this answer
    
Thanks! I was hoping to get it all in a single regular expression that would do all of the tokenization work, but the code works well enough. Anyone else is still welcome to write lambda source: re.finditer(PATTERN, source, FLAGS) where they define PATTERN and FLAGS. It would be a great learning experience. –  Noctis Skytower Aug 16 '12 at 19:54
    
shouldn't you be .strip()ing the return value? –  Ben Aug 16 '12 at 20:01

Here's one based off of your tokenize2 function:

def tokenize2(source):
    search = re.compile(r'([^;#\n]+)[;\n]?(?:#.+)?', re.MULTILINE)
    for match in search.finditer(source):
        for item in match.groups():
            yield item

>>> for token in tokenize2('''\
... a = 1 + 2; b = a - 3 # create zero in b
... c = b * 4; d = 5 / c # trigger div error
... 
... e = (6 + 7) * 8
... # try a boolean operation
... f = 0 and 1 or 2
... a; b; c; e; f'''):
...     print(repr(token))
... 
'a = 1 + 2'
' b = a - 3 '
'c = b * 4'
' d = 5 / c '
'e = (6 + 7) * 8'
'f = 0 and 1 or 2'
'a'
' b'
' c'
' e'
' f'
>>> 
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