1

Let's say I have these strings (each new line being a separate string):

EducationLink
BioLink
InterestsLink

And I wanted to extract the part that's not "Link" using Javascript. How would I do this? The expected results are

Education
Bio
Interests

I tried a Regex, but I'm not very experienced with them, and it failed:

/^ (^Link) $/

Using string functions such as slice() and substr(), I only got the values to the right of the selected text, not to the left as desired.

Thanks for your help.

6 Answers 6

2

you can use .replace()

'EducationLink'.replace('Link', ''); //returns Education

https://developer.mozilla.org/en/JavaScript/Reference/Global_Objects/String/replace

The thing is you CAN use regex to do this replace, but being such a simple scenario (unless there is more to it) why would you overcomplicate things?

3
  • Because if there's more than one line to work on. Because there might be Link in the middle of the string somewhere. Because there's just so much that could go wrong with plain string substitution. Apart from that, no reason. Feb 23, 2012 at 21:51
  • Neither of these scenarios are true, so this seems like the best answer. Feb 23, 2012 at 21:52
  • @Kolink no need to get your knickers in a twist. The asker plainly states he has several strings and goes on to list them.
    – Darko
    Feb 23, 2012 at 21:53
2
text = input.replace(/Link(\n|$)/g,"\n");
3
  • If you assume that each line is an individual string, then it should go like this instead: text = input.replace(/Link$/, '');. I'm not sure which the OP meant, though.
    – benekastah
    Feb 23, 2012 at 21:48
  • Each line is a separate string, sorry about that. Feb 23, 2012 at 21:49
  • The updated regex will still work, but you can simplify it to /Link$/g if you want. Feb 23, 2012 at 21:51
1

You would need to put the Link into the end of your RegEx, such as:

^([A-Z]+)Link$

This matches:

  • One or more characters between A and Z
  • Then the word Link
  • Then the end of the string

The part in parentheses will be returned as a group.

Furthermore, if all you need to do is remove the suffix Link, you can use the replace() method in Javascript:

var x = myStr.replace('Link', '');
4
  • Oh, that was rather obvious. However, why did my RegEx not work? Feb 23, 2012 at 21:49
  • Your RegEx doesn't make much sense. The ^ character is used to match the beginning of the string, or to negate characters in a bracket group. Such as [^Link] would mean any character that is neither L, nor i nor n nor k. Feb 23, 2012 at 21:54
  • Ok, but I used normal parentheses (), not square brackets []. Feb 23, 2012 at 21:55
  • I can't think of anything that would match your expression. Feb 23, 2012 at 21:59
0

One way is to use String.split()MDN

var txt = 'EducationLink'.split('Link')[0]; // txt == 'Education'
0

Try This:

<script>

var str = "EducationLink";
index = str.search(/link/i);
str = str.substr(0,index);

</script> 
0

As others have pointed out, if all the strings end in 'Link', just use a replace. Otherwise, any of these methods will work fine:

var i = 0;
var strings = [
    'EducationLink',
    'BioLink',
    'InterestsLink'
];
var s = '';
var r = /^(.+)Link$/
for (i = 0; i < strings.length; i += 1) {
    s = strings[i];
    //s = s.substring(0, s.indexOf('Link')); //Uncomment for substring
    //s = s.match(r)[1]; //Uncomment for regex
    s = s.replace('Link', '');
    strings[i] = s;
}
console.log(strings);

Copy and paste into a browser console window to run.

To answer your question ("However, why did my RegEx not work?") in a comment on another answer, your RegEx does the following:

/^ (^Link) $/
//Each regex term on own line, commented below
^   //start of string
    //Literal space
(^Link) //Capturing group, string starting with 'Link'.
    //Literal space
$   //end of string

While you can have two "start of string" identifiers in a Regex, there will only ever be one "start of string". The ^ character is only a negation in a character class which is enclosed in square brackets, not curved. If you want to capture a literal caret (^), put a backslash in front of it (\^).

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