I have this weirdly formatted URL. I have to extract the contents in '()'.
Sample URL : http://sampleurl.com/(K(ThinkCode))/profile/view.aspx
If I can extract ThinkCode out of it, I will be a happy man! I am having a tough time with regexing special chars like '(' and '/'.
>>> foo = re.compile( r"(?<=\(K\()[^\)]*" )
>>> foo.findall( r"http://sampleurl.com/(K(ThinkCode))/profile/view.aspx" )
['ThinkCode']
Explanation
In regex-world, a lookbehind is a way of saying "I want to match ham, but only if it's preceded by spam. We write this as (?<=spam)ham. So in this case, we want to match [^\)]*, but only if it's preceded by \(K\(.
Now \(K\( is a nice, easy regex, because it's plain text! It means, match exactly the string (K(. Notice that we have to escape the brackets (by putting \ in front of them), since otherwise the regex parser would think they were part of the regex instead of a character to match!
Finally, when you put something in square brackets in regex-world, it means "any of the characters in here is OK". If you put something inside square brackets where the first character is ^, it means "any character not in here is OK". So [^\)] means "any character that isn't a right-bracket", and [^\)]* means "as many characters as possible that aren't right-brackets".
Putting it all together, (?<=\(K\()[^\)]* means "match as many characters as you can that aren't right-brackets, preceded by the string (K(.
Oh, one last thing. Because \ means something inside strings in Python as well as inside regexes, we use raw strings -- r"spam" instead of just "spam". That tells Python to ignore the \'s.
Another way
If lookbehind is a bit complicated for you, you can also use capturing groups. The idea behind those is that the regex matches patterns, but can also remember subpatterns. That means that you don't have to worry about lookaround, because you can match the entire pattern and then just extract the subpattern inside it!
To capture a group, simply put it inside brackets: (foo) will capture foo as the first group. Then, use .groups() to spit out all the groups that you matched! This is the way the other answer works.
It's not too hard, especially since / isn't actually a special character in Python regular expressions. You just backslash the literal parens you want. How about this:
s = "http://sampleurl.com/(K(ThinkCode))/profile/view.aspx"
mo = re.match(r"http://sampleurl\.com/\(K\(([^)]+)\)\)/profile.view\.aspx", s);
print mo.group(1)
Note the use of r"" raw strings to preserve the backslashes in the regular expression pattern string.
If you want to have special characters in a regex, you need to escape them, such as \(, \/, \\.
Matching things inside of nested parenthesis is quite a bit of a pain in regex. if that format is always the same, you could use this:
\(.*?\((.*?)\).*?\)
Basically: find a open paren, match characters until you find another open paren, group characters until I see a close paren, then make sure there are two more close paren somewhere in there.
mystr = "http://sampleurl.com/(K(ThinkCode))/profile/view.aspx"
import re
re.sub(r'^.*\((\w+)\).*',r'\1',mystr)
Related
I wanted to search a string for a substring beginning with ">"
Does this syntax say what I want it to say: this character followed by anything.
regex_firstline = re.compile("[>]{1}.*")
As a pythonic way for such tasks you can use str.startswith() method, and don't need to use regex.
But about your regex "[>]{1}.*" you don't need {1} after your character class and you can specify the start of your regex with anchor ^.So it can be "^>.*"
Using http://regex101.com:
[>]{1} matches the single character > literally exactly one time (but it denotes {1} is a meaningless quantifier), and
.* then matches any character as many times as possible.
If a list was provided inside square brackets (as opposed to a single character), regex would attempt to match a single character within the list exactly one time. http://regex101.com has a good listing of tokens and what they mean.
An ideal regex expression would be ^[>].*, meaning at the beginning of a string find exactly one > character followed by anything else (and with only one character in the square brackets, you can remove those to simplify it even further: ^>.*
I have an HTML to LaTeX parser tailored to what it's supposed to do (convert snippets of HTML into snippets of LaTeX), but there is a little issue with filling in variables. The issue is that variables should be allowed to contain the LaTeX reserved characters (namely # $ % ^ & _ { } ~ \). These need to be escaped so that they won't kill our LaTeX renderer.
The program that handles the conversion and everything is written in Python, so I tried to find a nice solution. My first idea was to simply do a .replace(), but replace doesn't allow you to match only if the first is not a \. My second attempt was a regex, but I failed miserably at that.
The regex I came up with is ([^\][#\$%\^&_\{\}~\\]). I hoped that this would match any of the reserved characters, but only if it didn't have a \ in front. Unfortunately, this matches ever single character in my input text. I've also tried different variations on this regex, but I can't get it to work. The variations mainly consisted of removing/adding slashes in the second part of the regex.
Can anyone help with this regex?
EDIT Whoops, I seem to have included the slashes as well. Shows how awake I was when I posted this :) They shouldn't be escaped in my case, but it's relatively easy to remove them from the regexes in the answers. Thanks all!
The [^\] is a character class for anything not a \, that is why it is matching everything. You want a negative lookbehind assertion:
((?<!\)[#\$%\^&_\{\}~\\])
(?<!...) will match whatever follows it as long as ... is not in front of it. You can check this out at the python docs
The regex ([^\][#\$%\^&_\{\}~\\]) is matching anything that isn't found between the first [ and the last ], so it should be matching everything except for what you want it to.
Moving around the parenthesis should fix your original regex ([^\\])[#\$%\^&_\{\}~\\].
I would try using regex lookbehinds, which won't match the character preceding what you want to escape. I'm not a regex expert so perhaps there is a better pattern, but this should work (?<!\\)[#\$%\^&_\{\}~\\].
If you're looking to find special characters that aren't escaped, without eliminating special chars preceded by escaped backslashes (e.g. you do want to match the last backslash in abc\\\def), try this:
(?<!\\)(\\\\)*[#\$%\^&_\{\}~\\]
This will match any of your special characters preceded by an even number (this includes 0) of backslashes. It says the character can be preceded by any number of pairs of backslashes, with a negative lookbehind to say those backslashes can't be preceded by another backslash.
The match will include the backslashes, but if you stick another in front of all of them, it'll achieve the same effect of escaping the special char, anyway.
I have a file with the format of
sjaskdjajldlj_abc:
cdf_asjdl_dlsf1:
dfsflks %jdkeajd
sdjfls:
adkfld %dk_.(%sfj)sdaj, %kjdflajfs
afjdfj _ajhfkdjf
zjddjh -15afjkkd
xyz
and I want to find the text in between the string _abc: in the first line and xyz in the last line.
I have already tried print
re.findall(re.escape("*_abc:")+"(*)"+re.escape("xyz"),line)
But I got null.
If I understood the requirement correctly:
a1=re.search(r'_abc(.*)xyz',line,re.DOTALL)
print a1.group(1)
Use re.DOTALL which will enable . to match a newline character as well.
You used re.escape on your pattern when it contains special characters, so there's no way it will work.
>>>>re.escape("*_abc:")
'\\*_abc\\:'
This will match the actual phrase *_abc:, but that's not what you want.
Just take the re.escape calls out and it should work more or less correctly.
It sounds like you have a misunderstanding about what the * symbol means in a regular expression. It doesn't mean "match anything", but rather "repeat the previous thing zero or more times".
To match any string, you need to combine * with ., which matches any single character (almost, more on this later). The pattern .* matches any string of zero or more characters.
So, you could change your pattern to be .*abc(.*)xyz and you'd be most of the way there. However, if the prefix and suffix only exist once in the text the leading .* is unnecessary. You can omit it and just let the regular expression engine handle skipping over any unmatched characters before the abc prefix.
The one remaining issue is that you have multiple lines of text in your source text. I mentioned above that the . patter matches character, but that's not entirely true. By default it won't match a newline. For single-line texts that doesn't matter, but it will cause problems for you here. To change that behavior you can pass the flag re.DOTALL (or its shorter spelling, re.S) as a third argument to re.findall or re.search. That flag tells the regular expression system to allow the . pattern to match any character including newlines.
So, here's how you could turn your current code into a working system:
import re
def find_between(prefix, suffix, text):
pattern = r"{}.*{}".format(re.escape(prefix), re.escape(suffix))
result = re.search(pattern, text, re.DOTALL)
if result:
return result.group()
else:
return None # or perhaps raise an exception instead
I've simplified the pattern a bit, since your comment suggested that you want to get the whole matched text, not just the parts in between the prefix and suffix.
I'm trying to add some light markdown support for a javascript preprocessor which I'm writing in Python.
For the most part it's working, but sometimes the regex I'm using is acting a little odd, and I think it's got something to do with raw-strings and escape sequences.
The regex is: (?<!\\)\"[^\"]+\"
Yes, I am aware that it only matches strings beginning with a " character. However, this project is born out of curiosity more than anything, so I can live with it for now.
To break it down:
(?<\\)\" # The group should begin with a quotation mark that is not escaped
[^\"]+ # and match any number of at least one character that is not a quotation mark (this is the biggest problem, I know)
\" # and end at the first quotation mark it finds
That being said, I (obviously) start hitting problems with things like this:
"This is a string with an \"escaped quote\" inside it"
I'm not really sure how to say "Everything but a quotation mark, unless that mark is escaped". I tried:
([^\"]|\\\")+ # a group of anything but a quote or an escaped quote
, but that lead to very strange results.
I'm fully prepared to hear that I'm going about this all wrong. For the sake of simplicity, let's say that this regex will always start and end with double quotes (") to avoid adding another element in the mix. I really want to understand what I have so far.
Thanks for any assistance.
EDIT
As a test for the regex, I'm trying to find all string literals in the minified jQuery script with the following code (using the unutbu's pattern below):
STRLIT = r'''(?x) # verbose mode
(?<!\\) # not preceded by a backslash
" # a literal double-quote
.*? # non-greedy 1-or-more characters
(?<!\\) # not preceded by a backslash
" # a literal double-quote
'''
f = open("jquery.min.js","r")
jq = f.read()
f.close()
literals = re.findall(STRLIT,jq)
The answer below fixes almost all issues. The ones that do arise are within jquery's own regular expressions, which is a very edge case. The solution no longer misidentifies valid javascript as markdown links, which was really the goal.
I think I first saw this idea in... Jinja2's source code? Later transplanted it to Mako.
r'''(\"\"\"|\'\'\'|\"|\')((?<!\\)\\\1|.)*?\1'''
Which does the following:
(\"\"\"|\'\'\'|\"|\') matches a Python opening quote, because this happens to be taken from code for parsing Python. You probably don't need all those quote types.
((?<!\\)\\\1|.) matches: EITHER a matching quote that was escaped ONLY ONCE, OR any other character. So \\" will still be recognized as the end of the string.
*? non-greedily matches as many of those as possible.
And \1 is just the closing quote.
Alas, \\\" will still incorrectly be detected as the end of the string. (The template engines only use this to check if there is a string, not to extract it.) This is a problem very poorly suited for regular expressions; short of doing insane things in Perl, where you can embed real code inside a regex, I'm not sure it's possible even with PCRE. Though I'd love to be proven wrong. :) The killer is that (?<!...) has to be constant-length, but you want to check that there's any even number of backslashes before the closing quote.
If you want to get this correct, and not just mostly-correct, you might have to use a real parser. Have a look at parsley, pyparsing, or any of these tools.
edit: By the way, there's no need to check that the opening quote doesn't have a backslash before it. That's not valid syntax outside a string in JS (or Python).
Perhaps use two negative look behinds:
import re
text = r'''"This is a string with an \"escaped quote\" inside it". While ""===r?+r:wt.test(r)?st.parseJSON(r) :r}catch(o){}st.data(e,n,r)}else r=t}return r}function s(e){var t;for(t in e)if(("data" '''
for match in (re.findall(r'''(?x) # verbose mode
(?<!\\) # not preceded by a backslash
" # a literal double-quote
.*? # 1-or-more characters
(?<!\\) # not preceded by a backslash
" # a literal double-quote
''', text)):
print(match)
yields
"This is a string with an \"escaped quote\" inside it"
""
"data"
The question mark in .+? makes the pattern non-greedy. The non-greediness causes the pattern to match when it encounters the first unescaped double quotation mark.
Using python, the correct regex matching double quoted string is:
pattern = r'"(\.|[^"])*"'
It describes strings starts and ends with ". For each character inside the two double quotes, it's either an escaped character OR any character expect ".
unutbu's ansever is wrong because for valid string "\\\\", cannot matched by that pattern.
I'm searching for strings within strings using Regex. The pattern is a string literal that ends in (, e.g.
# pattern
" before the bracket ("
# string
this text is before the bracket (and this text is inside) and this text is after the bracket
I know the pattern will work if I escape the character with a backslash, i.e.:
# pattern
" before the bracket \\("
But the pattern strings are coming from another search and I can not control what characters will be or where. Is there a way of escaping an entire string literal so that anything between markers is treated as a string? For example:
# pattern
\" before the ("
The only other option I have is to do a substitute adding escapes for every protected character.
re.escape is exactly what I need. I'm using regexp in Access VBA which doens't have that method. I only have replace, execute or test methods.
Is there a way to escape everything within a string in VBA?
Thanks
You didn't specify the language, but it looks like Python, so if you have a string in Python whose special regex characters you need to escape, use re.escape():
>>> import re
>>> re.escape("Wow. This (really) is *cool*")
'Wow\\.\\ This\\ \\(really\\)\\ is\\ \\*cool\\*'
Note that spaces are escaped, too (probably to ensure that they still work in a re.VERBOSE regex).
Maybe write your own VBA escape function:
Function EscapeRegEx(text As String) As String
Dim regEx As RegExp
Set regEx = New RegExp
regEx.Global = True
regEx.Pattern = "(\[|\\|\^|\$|\.|\||\?|\*|\+|\(|\)|\{|\})"
EscapeRegEx = regEx.Replace(text, "\$1")
End Function
I'm pretty sure that with the limitations of the RegExp abilities in VBA/VBScript, you are going to have to replace the special characters in your pattern before using it. There doesn't seem to be anything built into it like there is in Python.
The following regex will capture everything from the beginning of the string to the first (. The first captured group $1 will contain the portion before (.
^([^(]+)\(
Depending on your language, you might have to escape it as:
"^([^(]+)\\("