I am trying to match what is before /../ but after / with a regular expressions, but I want it to look back and stop at the first /
I feel like I am close but it just looks at the first slash and then takes everything after it like... input is this:
this/is/a/./path/that/../includes/face/./stuff/../hat
and my regular expression is:
#\/(.*)\.\.\/#
matching /is/a/./path/that/../includes/face/./stuff/../ instead of just that/../ and stuff/../
How should I change my regex to make it work?
.* means "match any number of any character at all[1]". This is not what you want. You want to match any number of non-/ characters, which is written [^/]*.
Any time you are tempted to use .* or .+ in a regex, be very suspicious. Stop and ask yourself whether you really mean "any character at all[1]" or not - most of the time you don't. (And, yes, non-greedy quantifiers can help with this, but character classes are both more efficient for the regex engine to match against and more clear in their communication of your intent to human readers.)
[1] OK, OK... . isn't exactly "any character at all" - it doesn't match newline (\n) by default in most regex flavors - but close enough.
Change your pattern that only characters other than / ([^/]) get matched:
#([^/]*)/\.\./#
Alternatively, you can use a lookahead.
#(\w+)(?=/\.\./)#
Explanation
NODE EXPLANATION
--------------------------------------------------------------------------------
( group and capture to \1:
--------------------------------------------------------------------------------
\w+ word characters (a-z, A-Z, 0-9, _) (1 or
more times (matching the most amount
possible))
--------------------------------------------------------------------------------
) end of \1
--------------------------------------------------------------------------------
(?= look ahead to see if there is:
--------------------------------------------------------------------------------
/ '/'
--------------------------------------------------------------------------------
\. '.'
--------------------------------------------------------------------------------
\. '.'
--------------------------------------------------------------------------------
/ '/'
--------------------------------------------------------------------------------
) end of look-ahead
I think you're essentially right, you just need to make the match non-greedy, or change the (.*) to not allow slashes: #/([^/]*)/\.\./#
In your favourite language, do a few splits and string manipulation eg Python
>>> s="this/is/a/./path/that/../includes/face/./stuff/../hat"
>>> a=s.split("/../")[:-1] # the last item is not required.
>>> for item in a:
... print item.split("/")[-1]
...
that
stuff
In python:
>>> test = 'this/is/a/./path/that/../includes/face/./stuff/../hat'
>>> regex = re.compile(r'/\w+?/\.\./')
>>> regex.findall(me)
['/that/..', '/stuff/..']
Or if you just want the text without the slashes:
>>> regex = re.compile(r'/(\w+?)/\.\./')
>>> regex.findall(me)
['that', 'stuff']
([^/]+) will capture all the text between slashes.
([^/]+)*/\.\. matches that\.. and stuff\.. in you string of this/is/a/./path/that/../includes/face/./stuff/../hat It captures that or stuff and you can change that, obviously, by changing the placement of the capturing parens and your program logic.
You didn't state if you want to capture or just match. The regex here will only capture that last occurrence of the match (stuff) but is easily changed to return that then stuff if used global in a global match.
NODE EXPLANATION
--------------------------------------------------------------------------------
( group and capture to \1 (0 or more times
(matching the most amount possible)):
--------------------------------------------------------------------------------
[^/]+ any character except: '/' (1 or more
times (matching the most amount
possible))
--------------------------------------------------------------------------------
)* end of \1 (NOTE: because you're using a
quantifier on this capture, only the LAST
repetition of the captured pattern will be
stored in \1)
--------------------------------------------------------------------------------
/ '/'
--------------------------------------------------------------------------------
\. '.'
--------------------------------------------------------------------------------
\. '.'
Related
I am trying to extract the last section of the following string :
"/subscriptions/5522233222-d762-666e-555a-e6666666666/resourcegroups/rg-sql-Belguim-01/providers/Microsoft.Compute/snapshots/vm-sql-image-v3.3-pre-sysprep-Oct-2021-BG"
I want to capture:
"snapshots/vm-sql-image-v3.3-pre-sysprep-Oct-2021-BG"
I tried below with no luck:
(\w*?\/\w*?)$
How to pull this off using regex?
Use
[^\/]+\/[^\/]+$
See regex proof.
EXPLANATION
--------------------------------------------------------------------------------
[^\/]+ any character except: '\/' (1 or more
times (matching the most amount possible))
--------------------------------------------------------------------------------
\/ '/'
--------------------------------------------------------------------------------
[^\/]+ any character except: '\/' (1 or more
times (matching the most amount possible))
--------------------------------------------------------------------------------
$ before an optional \n, and the end of the
string
Your issues
(\w*?/\w*?)$ is for simple or empty last 2 segments (tested), e.g.
matched hello/world/subscriptions123/snap_shots capturing subscriptions123/snap_shots
matched /1/2// capturing the last 2 empty segments
OK was:
capture-group
/ to match the last path-separator before end ($)
\w*? intended to match the path-segment of any length
What to improve:
*? is a bit too unrestricted, choose quantifier as + for at least one (instead * for any or ? for zero or one)
\w is for word-meta-character, does not match hyphens or dots (OK for snapshot, not for given last segment)
Quick-fixed
(\w+/[\w\.-]+)$ (tested)
added dot \. and hyphen - to character-set containing \w
Simple but solid
(snapshots/[^\/]+)$ (tested)
fore-last path-segment assumed as fix constant snapshots
[^\/] any character except (^) slash in last segment
Note: the slash doesn't need to be escaped \/ like Ryszard answered
I am new to regex, so any help is really appreciated.
I have an expression to identify a URL :
(http[^'\"]+)
Unfortunately on some URLs, I get additional square brackets at the end
For instance "http://example.com]]"
As the result want to receive "http://example.com"
How do I get rid of those brackets with the help of the regex I wrote above?
What you actually have is called a negated character class, so just add characters that should not be matched. In addition, there's not really a need for a capturing group. That said, you could use
http[^'"\]\[]+
# ^^^^
Note that this will exclude square brackets anywhere in your possible url not just at the end. See a demo on regex101.com.
Stop the match between a word and nonword character:
(http[^'"]+)\b
See regex proof.
EXPLANATION
--------------------------------------------------------------------------------
( group and capture to \1:
--------------------------------------------------------------------------------
http 'http'
--------------------------------------------------------------------------------
[^'"]+ any character except: ''', '"' (1 or
more times (matching the most amount
possible))
--------------------------------------------------------------------------------
) end of \1
--------------------------------------------------------------------------------
\b the boundary between a word char (\w) and
something that is not a word char
I am trying to write a regex expression in PCRE which captures the first part of a word and excludes the second portion. The first portion needs to accommodate different values depending upon where the transaction is initiated from. Here is an example:
Raw Text:
.controller.CustomerDemographicsController
Regex Pattern Attempted:
\.controller\.(?P<Controller>\w+)
Results trying to achieve (in bold is the only content I want to save in the named capture group):
.controller.CustomerDemographicsController
NOTE: I've attempted to exclude using ^, lookback, and lookforward.
Any help is greatly appreciated.
You can match word chars in the Controller group up to the last uppercase letter:
\.controller\.(?P<Controller>\w+)(?=\p{Lu})
See the regex demo. Details:
\.controller\. - a .controller\. string
(?P<Controller>\w+) - Named capturing group "Controller": one or more word chars as many as possible
(?=\p{Lu}) - the next char must be an uppercase letter.
Note that (?=\p{Lu}) makes the \w+ stop before the last uppercase letter because the \w+ pattern is greedy due to the + quantifier.
Also, use
\.controller\.(?P<Controller>[A-Za-z]+)[A-Z]
See proof.
EXPLANATION:
--------------------------------------------------------------------------------
\. '.'
--------------------------------------------------------------------------------
controller 'controller'
--------------------------------------------------------------------------------
\. '.'
--------------------------------------------------------------------------------
(?P<Controller> group and capture to Controller:
--------------------------------------------------------------------------------
[A-Za-z]+ any character of: 'A' to 'Z', 'a' to 'z'
(1 or more times (matching the most
amount possible))
--------------------------------------------------------------------------------
) end of Controller group
--------------------------------------------------------------------------------
[A-Z] any character of: 'A' to 'Z'
I have these two sentence
TAGGING ODP:-7.160792, 113.496069
TAGGING pel:-7.160792, 113.496069
I want to match -7.160792 part only if the full sentence contain "odp" in it.
I tried the following (?(?=odp)-\d+.\d+) but it doesn't work, i don't know why.
Any help is appreciated.
(?(?=odp)-\d+\.\d+) won't work because (?=odp) is a positive lookahead that imposes a constraint on the pattern on the right, -\d+\.\d+. Namely, it requires odp string to occur exactly at the same location where - and a number are expected.
Use
(?<=ODP:)-\d+\.\d+
ODP:(-\d+\.\d+)
If lookbehinds are supported, the first variant is more viable.
Otherwise, another option with capturing groups is good to use.
And if odp can appear anywhere, even after the number:
(?i)^(?=.*odp).*(-\d+\.\d+)
This will capture the value into a group.
EXPLANATION
--------------------------------------------------------------------------------
(?i) set flags for this block (case-
insensitive) (with ^ and $ matching
normally) (with . not matching \n)
(matching whitespace and # normally)
--------------------------------------------------------------------------------
^ the beginning of the string
--------------------------------------------------------------------------------
(?= look ahead to see if there is:
--------------------------------------------------------------------------------
.* any character except \n (0 or more times
(matching the most amount possible))
--------------------------------------------------------------------------------
odp 'odp'
--------------------------------------------------------------------------------
) end of look-ahead
--------------------------------------------------------------------------------
.* any character except \n (0 or more times
(matching the most amount possible))
--------------------------------------------------------------------------------
( group and capture to \1:
--------------------------------------------------------------------------------
- '-'
--------------------------------------------------------------------------------
\d+ digits (0-9) (1 or more times (matching
the most amount possible))
--------------------------------------------------------------------------------
\. '.'
--------------------------------------------------------------------------------
\d+ digits (0-9) (1 or more times (matching
the most amount possible))
--------------------------------------------------------------------------------
) end of \1
You can use the regex, (?i)(?<=odp:)[^,]*.
Explanation:
(?i): Case-insenstitive flag
(?<=odp:): Positive lookbehind for odp:
[^,]*: Anything but ,
👉 If you want the match to be restricted to numbers only, you can use the regex, (?i)(?<=odp:)(?:-\d+.\d+)
Explanation:
(?i): Case-insenstitive flag
(?<=odp:): Positive lookbehind for odp:
(?:: Start non capturing group
-: Literal, -
\d+: 1+ digit(s)
.\d+: . followed by 1+ digit(s)
): End non capturing group
👉 If the sign can be either + or -, you can use the regex, (?i)(?<=odp:)(?:[+-]\d+.\d+)
The pattern (?(?=odp)\-\d+\.\d+) is using a conditional (? stating in the if clause:
If what is directly to the right from the current position is odp,
then match -\d+.\d+
That can not match.
What you also could do is match odp followed by any char other than a digit using \D* and capture the digit part in a group.
\bodp\b\D*(-\d+\.\d+)\b
The pattern matches:
\bodp\b match odp between word boundaries to prevent a partial match
\D* Optionally match any char other than a digit
(-\d+\.\d+) Capture - and 1+ digits with a decimal part in group 1
\b A word boundary
Regex demo
(?<=ODP:)(-\d+.\d+)
You can try using the negative look behind.
This should solve for the code you ve provided.
I'm a beginner in Qt and C++ programming. I want to use a Regular expression validator in my line edit that doesn't allow to write dot(.) right after dot(.). This is my Regex that I've used :
QRegExp reName("[a-zA-Z][a-zA-Z0-9. ]+ ")
But this is not enough for my task. Please someone help me.
I'm looking for something like this - for example :
"camp.new." (accepted)
"camp..new" (not accepted)
"ca.mp.n.e.w" (accepted)
How about:
^[a-zA-Z](?:\.?[a-zA-Z0-9 ]+)+$
Explanation:
The regular expression:
^[a-zA-Z](?:\.?[a-zA-Z0-9 ]+)+$
matches as follows:
NODE EXPLANATION
----------------------------------------------------------------------
^ the beginning of the string
----------------------------------------------------------------------
[a-zA-Z] any character of: 'a' to 'z', 'A' to 'Z'
----------------------------------------------------------------------
(?: group, but do not capture (1 or more times
(matching the most amount possible)):
----------------------------------------------------------------------
\.? '.' (optional (matching the most amount
possible))
----------------------------------------------------------------------
[a-zA-Z0-9 ]+ any character of: 'a' to 'z', 'A' to
'Z', '0' to '9', ' ' (1 or more times
(matching the most amount possible))
----------------------------------------------------------------------
)+ end of grouping
----------------------------------------------------------------------
Generally speaking, what you want to do is to say that at each point you've got a ., it is not followed by another ., and otherwise everything is fine. A negative lookahead assertion is all you need here from the big bag of trickiness, but bear in mind that . is an RE metacharacter so there will be some backslashes too.
^(?:[^.]|\.(?!\.))*$
You might want adjust that further, of course.
In expanded form:
^ # Anchor at start
(?: # Start sub-RE
[^.] # Not a “.”
| # or...
\. (?! \. ) # a “.” if not followed by a “.”
)* # As many of the sub-RE as necessary
$ # Anchor at end
If you're RE engine anchors things anyway, you can simplify a little:
(?:[^.]|\.(?!\.))*