If I want to replace a pattern in the following statement structure:
cat&345;
bat &#hut;
I want to replace elements starting from & and ending before (not including ;). What is the best way to do so?
Including or not including the & in the replacement?
>>> re.sub(r'&.*?(?=;)','REPL','cat&345;') # including
'catREPL;'
>>> re.sub(r'(?<=&).*?(?=;)','REPL','bat &#hut;') # not including
'bat &REPL;'
Explanation:
Although not required here, use a r'raw string' to prevent having to escape backslashes which often occur in regular expressions.
.*? is a "non-greedy" match of anything, which makes the match stop at the first semicolon.
(?=;) the match must be followed by a semicolon, but it is not included in the match.
(?<=&) the match must be preceded by an ampersand, but it is not included in the match.
Here is a good regex
import re
result = re.sub("(?<=\\&).*(?=;)", replacementstr, searchText)
Basically this will put the replacement in between the & and the ;
Maybe go a different direction all together and use HTMLParser.unescape(). The unescape() method is undocumented, but it doesn't appear to be "internal" because it doesn't have a leading underscore.
You can use negated character classes to do this:
import re
st='''\
cat&345;
bat &#hut;'''
for line in st.splitlines():
print line
print re.sub(r'([^&]*)&[^;]*;',r'\1;',line)
Related
I have a bunch of quotes scraped from Goodreads stored in a bs4.element.ResultSet, with each element of type bs4.element.Tag. I'm trying to use regex with the re module in python 3.6.3 to clean the quotes and get just the text. When I iterate and print using [print(q.text) for q in quotes] some quotes look like this
“Don't cry because it's over, smile because it happened.”
―
while others look like this:
“If you want to know what a man's like, take a good look at how he
treats his inferiors, not his equals.”
―
,
Each also has some extra blank lines at the end. My thought was I could iterate through quotes and call re.match on each quote as follows:
cleaned_quotes = []
for q in quote:
match = re.match(r'“[A-Z].+$”', str(q))
cleaned_quotes.append(match.group())
I'm guessing my regex pattern didn't match anything because I'm getting the following error:
AttributeError: 'NoneType' object has no attribute 'group'
Not surprisingly, printing the list gives me a list of None objects. Any ideas on what I might be doing wrong?
As you requested this for learning purpose, here's the regex answer:
(?<=“)[\s\s]+?(?=”)
Explanation:
We use a positive lookbehind to and lookahead to mark the beginning and end of the pattern and remove the quotes from result at the same time.
Inside of the quotes we lazy match anything with the .+?
Online Demo
Sample Code:
import re
regex = r"(?<=“)[\s\S]+?(?=”)"
cleaned_quotes = []
for q in quote:
m = re.search(regex, str(q))
if m:
cleaned_quotes.append(m.group())
Arguably, we do not need any regex flags. Add the g|gloabal flag for multiple matches. And m|multiline to process matches line by line (in such a scenario could be required to use [\s\S] instead of the dot to get line spanning results.)
This will also change the behavior of the positional anchors ^ and $, to match the end of the line instead of the string. Therefore, adding these positional anchors in-between is just wrong.
One more thing, I use re.search() since re.match() matches only from the beginning of the string. A common gotcha. See the documentation.
First of all, in your expression r'“[A-Z].+$”' end of line $ is defined before ", which is logically not possible.
To use $ in regexi for multiline strings, you should also specify re.MULTILINE flag.
Second - re.match expects to match the whole value, not find part of string that matches regular expression.
Meaning re.search should do what you initially expected to accomplish.
So the resulting regex could be:
re.search(r'"[A-Z].+"$', str(q), re.MULTILINE)
I need to build a program that can read multiple lines of code, and extract the right information from each line.
Example text:
no matches
one match <'found'>
<'one'> match <found>
<'three'><'matches'><'found'>
For this case, the program should detect <'found'>, <'one'>, <'three'>, <'matches'> and <'found'> as matches because they all have "<" and "'".
However, I cannot work out a system using regex to account for multiple matches on the same line. I was using something like:
re.search('^<.*>$')
But if there are multiple matches on one line, the extra "'<" and ">'" are taken as part of the .*, without counting them as separate matches. How do I fix this?
This works -
>>> r = re.compile(r"\<\'.*?\'\>")
>>> r.findall(s)
["<'found'>", "<'one'>", "<'three'>", "<'matches'>", "<'found'>"]
Use findall instead of search:
re.findall( r"<'.*?'>", str )
You can use re.findall and match on non > characters inside of the angle brackets:
>>> re.findall('<[^>]*>', "<'three'><'matches'><'found'>")
["<'three'>", "<'matches'>", "<'found'>"]
Non-greedy quantifier '?' as suggested by anubhava is also an option.
I want to write a regex to check if a word ends in anything except s,x,y,z,ch,sh or a vowel, followed by an s. Here's my failed attempt:
re.match(r".*[^ s|x|y|z|ch|sh|a|e|i|o|u]s",s)
What is the correct way to complement a group of characters?
Non-regex solution using str.endswith:
>>> from itertools import product
>>> tup = tuple(''.join(x) for x in product(('s','x','y','z','ch','sh'), 's'))
>>> 'foochf'.endswith(tup)
False
>>> 'foochs'.endswith(tup)
True
[^ s|x|y|z|ch|sh|a|e|i|o|u]
This is an inverted character class. Character classes match single characters, so in your case, it will match any character, except one of these: acehiosuxyz |. Note that it will not respect compound groups like ch and sh and the | are actually interpreted as pipe characters which just appear multiple time in the character class (where duplicates are just ignored).
So this is actually equivalent to the following character class:
[^acehiosuxyz |]
Instead, you will have to use a negative look behind to make sure that a trailing s is not preceded by any of the character sequences:
.*(?<!.[ sxyzaeiou]|ch|sh)s
This one has the problem that it will not be able to match two character words, as, to be able to use look behinds, the look behind needs to have a fixed size. And to include both the single characters and the two-character groups in the look behind, I had to add another character to the single character matches. You can however use two separate look behinds instead:
.*(?<![ sxyzaeiou])(?<!ch|sh)s
As LarsH mentioned in the comments, if you really want to match words that end with this, you should add some kind of boundary at the end of the expression. If you want to match the end of the string/line, you should add a $, and otherwise you should at least add a word boundary \b to make sure that the word actually ends there.
It looks like you need a negative lookbehind here:
import re
rx = r'(?<![sxyzaeiou])(?<!ch|sh)s$'
print re.search(rx, 'bots') # ok
print re.search(rx, 'boxs') # None
Note that re doesn't support variable-width LBs, therefore you need two of them.
How about
re.search("([^sxyzaeiouh]|[^cs]h)s$", s)
Using search() instead of match() means the match doesn't have to begin at the beginning of the string, so we can eliminate the .*.
This is assuming that the end of the word is the end of the string; i.e. we don't have to check for a word boundary.
It also assumes that you don't need to match the "word" hs, even it conforms literally to your rules. If you want to match that as well, you could add another alternative:
re.search("([^sxyzaeiouh]|[^cs]|^h)s$", s)
But again, we're assuming that the beginning of the word is the beginning of the string.
Note that the raw string notation, r"...", is unecessary here (but harmless). It only helps when you have backslashes in the regexp, so that you don't have to escape them in the string notation.
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 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)