16

I was just testing something with AJAX and I found that on success if I alert

alert(decodeURI('%'));

or

alert(encodeURIComponent('%'));

the browser errors out with the following code.

$.ajax({
   type: "POST",
   url: "some.php",
   data: "",
   success: function(html){
         alert(decodeURIComponent('%'));
//           alert(decodeURI('%'));
   }
 });

If I use any other string it works just fine.
Is it something that I missed?

6
  • 4
    "The browser", which browser? – Rob W Sep 16 '11 at 19:43
  • Tested with Chrome and Firefox. – CristiC Sep 16 '11 at 19:44
  • Are you trying to encode or decode the %? It can be encoded (into %25) using encodeURI or encodeURIComponent, but it cannot be decoded (using either) because it's not a URI. – Rocket Hazmat Sep 16 '11 at 19:56
  • Also, does it really "lock your browser" or does it just not execute the rest of the JavaScript statements? – Rocket Hazmat Sep 16 '11 at 20:17
  • 1
    Note that when there is an Error/Exception in JavaScipt, it will stop executing. This is not the same as "hanging" (or "locked up") where the browser won't respond to your keyboard or mouse anymore. – Rocket Hazmat Sep 16 '11 at 20:25
17

Chrome barfs when trying from the console. It gives an URIError: URI malformed. The % is an escape character, it can't be on its own.

7
  • 3
    How about Wikipedia? en.wikipedia.org/wiki/Percent_encoding Percent-encoding the percent character Because the percent ("%") character serves as the indicator for percent-encoded octets, it must be percent-encoded as "%25" for that octet to be used as data within a URI. – Juan Mendes Sep 16 '11 at 19:51
  • Ok, but this doesn't needs to hang. Doesn't matter if it is an escape character or not. It should return %. Why urldecode is working for php for the same situation? – CristiC Sep 16 '11 at 20:09
  • @Parkyprg: What do you mean by 'hang'? The browser may stop JavaScript execution because of the URIError, but that's not the same as 'hanging'. – Rocket Hazmat Sep 16 '11 at 20:14
  • 1
    PHP is more leniant in its parsing. According to the rules of encoding URIs, a single % is invalid and you should not use it. It assumes that %s that don't form an escape sequence should be treated as literals. I would not rely on this behavior, follow the standard. – Juan Mendes Sep 16 '11 at 20:16
  • 1
    @Juan: That's what I thought, but "hang" and "lock up" are the wrong terms, so it kinda bugged me. – Rocket Hazmat Sep 16 '11 at 20:23
16

Recently a decodeURIComponent in my code tripped over the ampersand % and googling led me to this question.

Here's the function I use to handle % which is shorter than the version of Ilia:

function decodeURIComponentSafe(s) {
    if (!s) {
        return s;
    }
    return decodeURIComponent(s.replace(/%(?![0-9][0-9a-fA-F]+)/g, '%25'));
}

It

  • returns the input value unchanged if input is empty
  • replaces every % NOT followed by a two-digit (hex) number with %25
  • returns the decoded string

It also works with the other samples around here:

  • decodeURIComponentSafe("%%20Visitors") // % Visitors
  • decodeURIComponentSafe("%Directory%20Name%") // %Directory Name%
  • decodeURIComponentSafe("%") // %
  • decodeURIComponentSafe("%1") // %1
  • decodeURIComponentSafe("%3F") // ?
3
  • This breaks on some characters (ie: %3F => %25EF instead of ?). Can you update your regex to allow hex numbers at least on the second character like this: s.replace(/%(?![0-9][\da-f]+)/gi, '%25') – BornReady Apr 8 '19 at 18:36
  • @BornReady I'm trying to understand your use case. What would be your input to decodeURIComponentSafe and what would be your expected result? – Heinrich Ulbricht Apr 19 '19 at 19:28
  • 3
    decodeURIComponentSafe('%3f'). Expected result:?. Actual result: %25ef – BornReady Apr 21 '19 at 14:42
8

The point is that if you use single % it breaks the logic of decodeURIComponent() function as it expects two-digit data-value followed right after it, for example %20 (space).

There is a hack around. We need to check first if the decodeURIComponent() actually can run on given string and if not return the string as it is.

Example:

function decodeURIComponentSafe(uri, mod) {
    var out = new String(),
        arr,
        i = 0,
        l,
        x;
    typeof mod === "undefined" ? mod = 0 : 0;
    arr = uri.split(/(%(?:d0|d1)%.{2})/);
    for (l = arr.length; i < l; i++) {
        try {
            x = decodeURIComponent(arr[i]);
        } catch (e) {
            x = mod ? arr[i].replace(/%(?!\d+)/g, '%25') : arr[i];
        }
        out += x;
    }
    return out;
}

Running:

decodeURIComponent("%Directory%20Name%")

will result in Uncaught URIError: URI malformed error

while:

decodeURIComponentSafe("%Directory%20Name%") // %Directory%20Name%

will return the initial string.

In case you would want to have a fixed/proper URI and have % turned into %25 you would have to pass 1 as additional parameter to the custom function:

decodeURIComponentSafe("%Directory%20Name%", 1) // "%25Directory%20Name%25"
2
  • 1
    decodeURIComponentSafe("%%20Visitors") returns the string as is rather than returning "% Visitors" – Punit S Sep 18 '18 at 6:29
  • try this, decodeURIComponent(encodeURIComponent(" % 1")), output = "% 1" – Prathamesh Talathi Nov 19 '19 at 6:11
3

The problem here is you're trying to decode the %. This is not a valid encoded string. I think you want to encode the % instead.

decodeURI('%') // URIError
encodeURI('%') // '%25'
1

Both decodeURI('%') and decodeURIcomponent('%') cannot work because the URL is malformed (a single % is not valid as a url or url component)

Uncaught URIError: URI malformed

encodeURIComponent() works

1
  • 1
    Just to be accurate (PITA), %25 is also not a URI, but is valid data to be used in a URI – Juan Mendes Sep 16 '11 at 20:04
0

I had the same issue as OP and found this useful topic. Had to find a way to check if URI string contained percent sign before using decodeURIComponent().

The piece of code from Ilia Rostovtsev works great except for URI which contains encoded characters like %C3 (where percent sign is starting by [A-F]) because the regex used doesn't handle them (only % followed by a decimal).

I replaced the following line:

   x = mod ? arr[i].replace(/%(?!\d+)/g, '%25') : arr[i];

by

   x = mod ? arr[i].replace(/%(?!\d|[ABCDEF]+)/g, '%25') : arr[i];

Now, it is working as the regex will reject %1A to %9F and also %A1 to %F9

-7

The endless-loop or lock up may be due to a bug in jquery.

You can set a breakpoint in jquery at a point which is likely causing the 'lock-up'.

Decode doesn't make sense with just % provided, as percent-encoding is followed by alphanumericals referring to a given character in the ASCII table, and should normally yield an URIError in Opera, Chrome, FF.

Use the browser built in function encodeURI if you are looking for the 'url-encoded' notation of the percent-character:

encodeURI('%')
//>"%25"
16
  • 1
    This has nothing to do with jQuery. – Ivan Sep 16 '11 at 19:50
  • 2
    please read the post first. He does use jquery and has loaded it when doing his experiments. I couldn't reproduce the error! with the native functions. – Lorenz Lo Sauer Sep 16 '11 at 19:53
  • 2
    @Lo: jQuery and native functions have nothing to do with other. jQuery is NOT the reason you cannot reproduce the error. The problem here is he's trying to decode the %, instead of encoding it. You're encoding the %, so it works. Try to run decodeURI('%') (with or without jQuery), it won't work. – Rocket Hazmat Sep 16 '11 at 19:58
  • 3
    @Lo - xhr2.blogspot.com: I read the post better than you did, jQuery has nothing to do with the problem. Even if did, what does set a breakpoint in jquery mean? That you think JS and jQuery are the same thing.... – Juan Mendes Sep 16 '11 at 19:58
  • 2
    @Rocket: It's fine. I browsed this question because the subject-line suggested that this may be a JS-engine bug. I checked in FF/Chrome encodeURI / decodeURI and it was not. Before leaving I posted my two cents, which I realize may not have been helpful. – Lorenz Lo Sauer Sep 16 '11 at 20:52

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