I have this URL:
http://example.com/createSend/step4_1.aspx?cID=876XYZ964D293CF&snap=true&jlkj=kjhkjh&
And this regex pattern:
cID=[^&]*
Which produces this result:
cID=87B6XYZ964D293CF
How do I REMOVE the "cID="?
Thanks
views:
120answers:
5
+7
A:
You can either use lookbehind (not in Javascript):
(?<=cID=)[^&]*
Or you can use grouping and grab the first group:
cID=([^&]*)
Kerry
2010-06-09 05:43:20
If he is using javascript, look-behind is not an option as js doesn't support them.
Amarghosh
2010-06-09 05:52:45
Good to know :)
Kerry
2010-06-09 06:47:16
+3
A:
By using capturing groups:
cID=([^&]*)
and then get $1:
87B6XYZ964D293CF
cherouvim
2010-06-09 05:43:55
+1
A:
Here's the Javascript code:
var str = "http://example.com/createSend/step4_1.aspx?cID=876XYZ964D293CF&snap=true&jlkj=kjhkjh&";
var myReg = new RegExp("cID=([^&]*)", "i");
var myMatch = myReg.exec(str);
alert(myMatch[1]);
David A Moss
2010-06-09 06:51:42
+4
A:
Generally speaking, to accomplish something like this, you have at least 3 options:
- Use lookarounds, so you can match precisely what you want to capture
- No lookbehind in Javascript, unfortunately
- Use capturing group to capture specific strings
- Near universally supported in all flavors
- If all else fails, you can always just take a
substringof the match- Works well if the length of the prefix/suffix to chop is a known constant
References
Examples
Given this test string:
i have 35 dogs, 16 cats and 10 elephants
These are the matches of some regex patterns:
\d+ cats->16 cats(see on rubular.com)\d+(?= cats)->16(see on rubular.com)(\d+) cats->16 cats(see on rubular.com)- Group 1 captures
16
- Group 1 captures
You can also do multiple captures, for example:
(\d+) (cats|dogs)yields 2 match results (see on rubular.com)- Result 1:
35 dogs- Group 1 captures
35 - Group 2 captures
dogs
- Group 1 captures
- Result 2:
16 cats- Group 1 captures
16 - Group 2 captures
cats
- Group 1 captures
- Result 1:
polygenelubricants
2010-06-09 07:58:40
+2
A:
With JavaScript, you'll want to use a capture group (put the part you want to capture inside ()) in your regular expression
var url = 'http://example.com/createSend/step4_1.aspx?cID=876XYZ964D293CF&snap=true&jlkj=kjhkjh&';
var match = url.match(/cID=([^&]*)/);
// ["cID=876XYZ964D293CF", "876XYZ964D293CF"]
// match[0] is the whole pattern
// match[1] is the first capture group - ([^&]*)
// match will be 'false' if the match failed entirely
gnarf
2010-06-09 08:10:46