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How can I clean away 29% from the string below using Javascript?

This is a long string which is 29% of the others.

I need some kind of way to remove all percentage so the code must work with this string too:

This is a long string which is 22% of the others.
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6 Answers 6

up vote 6 down vote accepted

The regular expression \d+% matches one or more digits followed by a %. That is then followed by an optional space so you don't end up with two spaces in a row.

var s = "This is a long string which is 29% of the others.";
s = s.replace(/\d+% ?/g, "");
console.log(s);
// This is a long string which is of the others.

Without the optional space at the end of the expression, you end up with

    // This is a long string which is  of the others.
    //-------------------------------^^
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1  
I get this space anyway. –  Jonathan Clark Dec 7 '11 at 14:12

This ought to do the job!

var s = 'This is a long string which is 29% of the others.';
s = s.replace(/[0-9]+%\s?/g, '');
alert(s);

I used so called Regular Expressions to do this. If you want more information about the solution, I'd recommend this website!

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Close! But it only removes the % sign. I need to remove the digits too. So from the string above I need to remove 29 too. –  Jonathan Clark Dec 7 '11 at 13:56
    
@Jonathan: If you need to support decimals (e.g., "Blah blah 22.5% blah blah"), the regex is /\d+(?:\.\d+)?%/g, I believe. –  T.J. Crowder Dec 7 '11 at 13:57
    
@Jonathan: I think you must have mis-copied Zanathiel's answer, works for me (as does my regex for decimals, which will also happily accommodate integers): jsbin.com/inarux Note Michael's point about the space after, though. –  T.J. Crowder Dec 7 '11 at 14:00
    
Looks good! and works fine but instead of the 29% I now get white space. How can I remove this too? –  Jonathan Clark Dec 7 '11 at 14:05
1  
@RightSaidFred: Good point, but I wouldn't do it that way, it allows .25.25.25.25.25%. :-) –  T.J. Crowder Dec 7 '11 at 14:20

You've mentioned handling whitespace. Here's a solution that handles whitespace and potential decimal points within the percentage:

s = s.replace(/( ?)\d+(?:\.\d+)?%( ?)/g, function(m, c0, c1) {
  if (c0 === " " && c1 === " ") {
    return " ";
  }
  return "";
});

Live demo: Run | Edit

Here's how that works:

  • The initial ( ?) is a capture group that captures a space in front of the digits if there is one. If there isn't one, it'll get nothing, because the ? makes the space optional.
  • The \d+ matches leading digits.
  • The (?:\.\d+) matches an optional decimal point followed by more digits. (It's not a capture group, the (?:xxx) format is for grouping without capturing; the ? after it is to make the entire thing optional.)
  • The % matches a %, of course.
  • The ( ?) at the end captures a space following the %, if there is one; again it's optional.
  • String#replace allows you to give a function that will get called rather than just a simple replacement string.
  • The function receives the full match as the first argument, then the capture groups as the remaining arguments. If both capture groups have spaces in them, there were spaces on both sides of the percentage and so we return a single space (to avoid jamming the words before and after the percentage together). Otherwise, there was no space either before or after the percentage, so we return nothing at all so we eat the space that was there.

If you also want to handle things like .25%, the regex changes a bit:

/( ?)(?:(?:\d+\.\d+)|(?:\.\d+)|(?:\d+))%( ?)/g

Live demo: Run | Edit

Breakdown:

  • ( ?) - Same as before.
  • (?:...|...|...) - An alternation, it will match one of the alternatives given. The alternatives we give it are:
    • (?:\d+\.\d+) - One or more digits followed by a decimal point followed by one or more digits.
    • (?:\.\d+) - A leading decimal point followed by one or more digits
    • (?:\d+) - Just a series of digits
  • % - Match the %
  • ( ?) - Same as before

All the rest is the same.

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1  
What are you doing way down here? I didn't even see that you had an answer! ;) +1 –  RightSaidFred Dec 7 '11 at 14:33

Why not just do

This is a long string which is <span id="pct">29%</span> of the others.

And then when you want this to change in some javascript just use:

var i = 22; //change this to what you want :)
document.getElementById("pct").innerHTML = i +"%";
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Granted it's probable, but the OP isn't necessarily doing this on a web browser. The days when JavaScript was confined to web browsers are well and truly gone (if they ever really existed). –  T.J. Crowder Dec 7 '11 at 14:02
    
@T.J.Crowder: More likely, the OP is doing this in a browser, but just for reasons unrelated to the DOM. –  rvighne Apr 19 at 21:16

You can use regex to replace digits followed by "%"

var str = "This is a long string which is 29% of the others.";

var withoutPercentage = str.replace(/(\d+%)/, "");
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No need for the capture group. –  T.J. Crowder Dec 7 '11 at 14:02
    
Agree with you. –  Abdul Munim Dec 7 '11 at 14:06

Your best bet is probably regular exressions. This expression will get you the percentage: \d+%.

So something like this should do the trick:

var s='This is a long string which is 22% of the others.';
s= s.replace(/\d+%/g, 'REPLACE');
alert(s);
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