问题
What would be the best way in Python to parse out chunks of text contained in matching brackets?
\"{ { a } { b } { { { c } } } }\"
should initially return:
[ \"{ a } { b } { { { c } } }\" ]
putting that as an input should return:
[ \"a\", \"b\", \"{ { c } }\" ]
which should return:
[ \"{ c }\" ]
[ \"c\" ]
[]
回答1:
Pseudocode:
For each string in the array:
Find the first '{'. If there is none, leave that string alone.
Init a counter to 0.
For each character in the string:
If you see a '{', increment the counter.
If you see a '}', decrement the counter.
If the counter reaches 0, break.
Here, if your counter is not 0, you have invalid input (unbalanced brackets)
If it is, then take the string from the first '{' up to the '}' that put the
counter at 0, and that is a new element in your array.
回答2:
Or this pyparsing version:
>>> from pyparsing import nestedExpr
>>> txt = "{ { a } { b } { { { c } } } }"
>>>
>>> nestedExpr('{','}').parseString(txt).asList()
[[['a'], ['b'], [[['c']]]]]
>>>
回答3:
I'm kind of new to Python, so go easy on me, but here is an implementation that works:
def balanced_braces(args):
parts = []
for arg in args:
if '{' not in arg:
continue
chars = []
n = 0
for c in arg:
if c == '{':
if n > 0:
chars.append(c)
n += 1
elif c == '}':
n -= 1
if n > 0:
chars.append(c)
elif n == 0:
parts.append(''.join(chars).lstrip().rstrip())
chars = []
elif n > 0:
chars.append(c)
return parts
t1 = balanced_braces(["{{ a } { b } { { { c } } } }"]);
print t1
t2 = balanced_braces(t1)
print t2
t3 = balanced_braces(t2)
print t3
t4 = balanced_braces(t3)
print t4
Output:
['{ a } { b } { { { c } } }']
['a', 'b', '{ { c } }']
['{ c }']
['c']
回答4:
Parse using lepl (installable via $ easy_install lepl):
from lepl import Any, Delayed, Node, Space
expr = Delayed()
expr += '{' / (Any() | expr[1:,Space()[:]]) / '}' > Node
print expr.parse("{{a}{b}{{{c}}}}")[0]
Output:
Node
+- '{'
+- Node
| +- '{'
| +- 'a'
| `- '}'
+- Node
| +- '{'
| +- 'b'
| `- '}'
+- Node
| +- '{'
| +- Node
| | +- '{'
| | +- Node
| | | +- '{'
| | | +- 'c'
| | | `- '}'
| | `- '}'
| `- '}'
`- '}'
回答5:
Cleaner solution. This will find return the string enclosed in the outermost bracket. If None is returned, there was no match.
def findBrackets( aString ):
if '{' in aString:
match = aString.split('{',1)[1]
open = 1
for index in xrange(len(match)):
if match[index] in '{}':
open = (open + 1) if match[index] == '{' else (open - 1)
if not open:
return match[:index]
回答6:
You could also parse them all at once, though I find the {a} to mean "a" rather than ["a"] slightly weird. If I've understood the format correctly:
import re
import sys
_mbrack_rb = re.compile("([^{}]*)}") # re.match doesn't have a pos parameter
def mbrack(s):
"""Parse matching brackets.
>>> mbrack("{a}")
'a'
>>> mbrack("{{a}{b}}")
['a', 'b']
>>> mbrack("{{a}{b}{{{c}}}}")
['a', 'b', [['c']]]
>>> mbrack("a")
Traceback (most recent call last):
ValueError: expected left bracket
>>> mbrack("{a}{b}")
Traceback (most recent call last):
ValueError: more than one root
>>> mbrack("{a")
Traceback (most recent call last):
ValueError: expected value then right bracket
>>> mbrack("{a{}}")
Traceback (most recent call last):
ValueError: expected value then right bracket
>>> mbrack("{a}}")
Traceback (most recent call last):
ValueError: unbalanced brackets (found right bracket)
>>> mbrack("{{a}")
Traceback (most recent call last):
ValueError: unbalanced brackets (not enough right brackets)
"""
stack = [[]]
i, end = 0, len(s)
while i < end:
if s[i] != "{":
raise ValueError("expected left bracket")
elif i != 0 and len(stack) == 1:
raise ValueError("more than one root")
while i < end and s[i] == "{":
L = []
stack[-1].append(L)
stack.append(L)
i += 1
stack.pop()
stack[-1].pop()
m = _mbrack_rb.match(s, i)
if m is None:
raise ValueError("expected value then right bracket")
stack[-1].append(m.group(1))
i = m.end(0)
while i < end and s[i] == "}":
if len(stack) == 1:
raise ValueError("unbalanced brackets (found right bracket)")
stack.pop()
i += 1
if len(stack) != 1:
raise ValueError("unbalanced brackets (not enough right brackets)")
return stack[0][0]
def main(args):
if args:
print >>sys.stderr, "unexpected arguments: %r" % args
import doctest
r = doctest.testmod()
print r
return r[0]
if __name__ == "__main__":
sys.exit(main(sys.argv[1:]))
回答7:
If you want to use a parser (lepl in this case), but still want the intermediate results rather than a final parsed list, then I think this is the kind of thing you were looking for:
>>> nested = Delayed()
>>> nested += "{" + (nested[1:,...]|Any()) + "}"
>>> split = (Drop("{") & (nested[:,...]|Any()) & Drop("}"))[:].parse
>>> split("{{a}{b}{{{c}}}}")
['{a}{b}{{{c}}}']
>>> split("{a}{b}{{{c}}}")
['a', 'b', '{{c}}']
>>> split("{{c}}")
['{c}']
>>> split("{c}")
['c']
That might look opaque at first, but it's fairly simple really :o)
nested is a recursive definition of a matcher for nested brackets (the "+" and [...] in the definition keep everything as a single string after it has been matched). Then split says match as many as possible ("[:]") of something that is surrounded by "{" ... "}" (which we discard with "Drop") and contains either a nested expression or any letter.
Finally, here's a lepl version of the "all in one" parser that gives a result in the same format as the pyparsing example above, but which (I believe) is more flexible about how spaces appear in the input:
>>> with Separator(~Space()[:]):
... nested = Delayed()
... nested += Drop("{") & (nested[1:] | Any()) & Drop("}") > list
...
>>> nested.parse("{{ a }{ b}{{{c}}}}")
[[['a'], ['b'], [[['c']]]]]
回答8:
Using Grako (grammar compiler):
#!/usr/bin/env python
import json
import grako # $ pip install grako
grammar_ebnf = """
bracketed = '{' @:( { bracketed }+ | any ) '}' ;
any = /[^{}]+?/ ;
"""
model = grako.genmodel("Bracketed", grammar_ebnf)
ast = model.parse("{ { a } { b } { { { c } } } }", "bracketed")
print(json.dumps(ast, indent=4))
Output
[
"a",
"b",
[
[
"c"
]
]
]
回答9:
Here is a solution I came up with for a similar use case. This was loosely based on the accepted psuedo code answer. I didn't want to add any dependencies for external libraries:
def parse_segments(source, recurse=False):
"""
extract any substring enclosed in parenthesis
source should be a string
"""
unmatched_count = 0
start_pos = 0
opened = False
open_pos = 0
cur_pos = 0
finished = []
segments = []
for character in source:
#scan for mismatched parenthesis:
if character == '(':
unmatched_count += 1
if not opened:
open_pos = cur_pos
opened = True
if character == ')':
unmatched_count -= 1
if opened and unmatched_count == 0:
segment = source[open_pos:cur_pos+1]
segments.append(segment)
clean = source[start_pos:open_pos]
if clean:
finished.append(clean)
opened = False
start_pos = cur_pos+1
cur_pos += 1
assert unmatched_count == 0
if start_pos != cur_pos:
#get anything that was left over here
finished.append(source[start_pos:cur_pos])
#now check on recursion:
for item in segments:
#get rid of bounding parentheses:
pruned = item[1:-1]
if recurse:
results = parse_tags(pruned, recurse)
finished.expand(results)
else:
finished.append(pruned)
return finished
来源:https://stackoverflow.com/questions/1651487/python-parsing-bracketed-blocks