75

I'm trying to do something like a C #include "filename.c", or PHP include(dirname(__FILE__)."filename.php") but in javascript. I know I can do this if I can get the URL a js file was loaded from (e.g. the URL given in the src attribute of the tag). Is there any way for the javascript to know that?

Alternatively, is there any good way to load javascript dynamically from the same domain (without knowing the domain specifically)? For example, lets say we have two identical servers (QA and production) but they clearly have different URL domains. Is there a way to do something like include("myLib.js"); where myLib.js will load from the domain of the file loading it?

Sorry if thats worded a little confusingly.

11 Answers 11

87

Within the script:

var scripts = document.getElementsByTagName("script"),
    src = scripts[scripts.length-1].src;

This works because the browser loads and executes scripts in order, so while your script is executing, the document it was included in is sure to have your script element as the last one on the page. This code of course must be 'global' to the script, so save src somewhere where you can use it later. Avoid leaking global variables by wrapping it in:

(function() { ... })();
12
  • 5
    This is a great suggestion, as long as the code in the script is run "inline" (i.e. in a global context or "immediate run anonymous method", as you've suggested, and not in a "called later" function or set-timeout). You could create a var in each javascript for the current file/path in this way. Careful however, "leaking global variables" cannot be solved by what I've called immediate-run-anon-methods, (function(){...})(); - your example above will still create a global var called src because it does not have a var specifier before it
    – Graza
    Feb 12 '10 at 23:14
  • 5
    There is a var specifier for 'src' (see comma on end of the first line) Feb 12 '10 at 23:30
  • 1
    @InifinitesLoop: in a similar answer to a similar question they suggest to return scripts[scripts.length-1].getAttribute('src', -1), see more here: stackoverflow.com/questions/984510/what-is-my-script-src-url/… Apr 14 '10 at 17:03
  • 2
    @buley See my very recent answer below. Getting the file name from the stacktrace using the stackinfo module (github) might help you.
    – B T
    May 5 '14 at 0:35
  • 3
    This doesn't work if your <script> tag isn't the last one due to various reasons, e.g. if you dynamically inject that tag via JS at the start of <head>. See also this comment.
    – ComFreek
    Dec 2 '14 at 18:49
60

All browsers except Internet Explorer (any version) have document.currentScript, which always works always (no matter how the file was included (async, bookmarklet etc)).

If you want to know the full URL of the JS file you're in right now:

var script = document.currentScript;
var fullUrl = script.src;

Tadaa.

3
  • This is awesome and exactly what I was hoping to find!
    – Markus
    Jan 12 '16 at 16:38
  • Thanks, I finally find the solution !
    – Alcalyn
    Apr 7 '16 at 17:41
  • 1
    I think it's good to know - if object is initialized outside from that file script, then that path is differet - so if someone want path of script it have to be called in root of that file script
    – BG BRUNO
    Sep 10 '19 at 0:31
18

The accepted answer here does not work if you have inline scripts in your document. To avoid this you can use the following to only target <script> tags with a [src] attribute.

/**
 * Current Script Path
 *
 * Get the dir path to the currently executing script file
 * which is always the last one in the scripts array with
 * an [src] attr
 */
var currentScriptPath = function () {

    var scripts = document.querySelectorAll( 'script[src]' );
    var currentScript = scripts[ scripts.length - 1 ].src;
    var currentScriptChunks = currentScript.split( '/' );
    var currentScriptFile = currentScriptChunks[ currentScriptChunks.length - 1 ];

    return currentScript.replace( currentScriptFile, '' );
}

This effectively captures the last external .js file, solving some issues I encountered with inline JS templates.

1
  • Works great!!!. Thank you!!!. I've found and tried a lots of solutions without a positive result. Feb 18 '16 at 4:16
17

I just made this little trick :

window.getRunningScript = () => {
    return () => {      
        return new Error().stack.match(/([^ \n])*([a-z]*:\/\/\/?)*?[a-z0-9\/\\]*\.js/ig)[0]
    }
}
console.log('%c Currently running script:', 'color: blue', getRunningScript()())

screenshot

Works on: Chrome, Firefox, Edge, Opera

Enjoy !

0
7

Refining upon the answers found here I came up with the following:

getCurrentScript.js

var getCurrentScript = function () {
  if (document.currentScript) {
    return document.currentScript.src;
  } else {
    var scripts = document.getElementsByTagName('script');
    return scripts[scripts.length-1].src;

  }
};

module.exports = getCurrentScript;

getCurrentScriptPath.js

var getCurrentScript = require('./getCurrentScript');

var getCurrentScriptPath = function () {
  var script = getCurrentScript();
  var path = script.substring(0, script.lastIndexOf('/'));
  return path;
};

module.exports = getCurrentScriptPath;

BTW: I'm using CommonJS module format and bundling with webpack.

4

I've more recently found a much cleaner approach to this, which can be executed at any time, rather than being forced to do it synchronously when the script loads.

Use stackinfo to get a stacktrace at a current location, and grab the info.file name off the top of the stack.

info = stackinfo()
console.log('This is the url of the script '+info[0].file)
3

I've coded a simple function which allows to get the absolute location of the current javascript file, by using a try/catch method.

// Get script file location
// doesn't work for older browsers

var getScriptLocation = function() {
    var fileName    = "fileName";
    var stack       = "stack";
    var stackTrace  = "stacktrace";
    var loc     = null;

    var matcher = function(stack, matchedLoc) { return loc = matchedLoc; };

    try { 

        // Invalid code
        0();

    }  catch (ex) {

        if(fileName in ex) { // Firefox
            loc = ex[fileName];
        } else if(stackTrace in ex) { // Opera
            ex[stackTrace].replace(/called from line \d+, column \d+ in (.*):/gm, matcher);
        } else if(stack in ex) { // WebKit, Blink and IE10
            ex[stack].replace(/at.*?\(?(\S+):\d+:\d+\)?$/g, matcher);
        }

        return loc;
    }

};

You can see it here.

5
  • Why down vote? Consider adding a comment as well.. Anyways. Jul 9 '15 at 13:26
  • 5
    Because according to the rules you are supposed to explain the solution in your answer, not just link. If that link dies then your answer is meaningless. Aug 14 '15 at 8:07
  • This is awesome, thanks for sharing. Also, you could do a check for document.currentScript just in case it is defined.
    – alecov
    Jun 2 '16 at 21:57
  • 2
    You should copy that small solution from the github to here (You can leave the link in for the newest version) so it doesn't become obsolete when you delete or replace the github project (again)
    – GazB
    Aug 15 '16 at 14:22
  • For me it gets the first script, not where it's called. Mar 30 '17 at 10:08
3

Refining upon the answers found here:

little trick

getCurrentScript and getCurrentScriptPath

I came up with the following:

//Thanks to https://stackoverflow.com/a/27369985/5175935
var getCurrentScript = function () {

    if ( document.currentScript && ( document.currentScript.src !== '' ) )
        return document.currentScript.src;
    var scripts = document.getElementsByTagName( 'script' ),
        str = scripts[scripts.length - 1].src;
    if ( str !== '' )
        return src;
    //Thanks to https://stackoverflow.com/a/42594856/5175935
    return new Error().stack.match(/(https?:[^:]*)/)[0];

};

//Thanks to https://stackoverflow.com/a/27369985/5175935
var getCurrentScriptPath = function () {
    var script = getCurrentScript(),
        path = script.substring( 0, script.lastIndexOf( '/' ) );
    return path;
};
1

Regardless of whether its a script, a html file (for a frame, for example), css file, image, whatever, if you dont specify a server/domain the path of the html doc will be the default, so you could do, for example,

<script type=text/javascript src='/dir/jsfile.js'></script>

or

<script type=text/javascript src='../../scripts/jsfile.js'></script>

If you don't provide the server/domain, the path will be relative to either the path of the page or script of the main document's path

1

I may be misunderstanding your question but it seems you should just be able to use a relative path as long as the production and development servers use the same path structure.

<script language="javascript" src="js/myLib.js" />
5
  • 2
    The problem is that this javascript library is meant to be loaded on different domains.
    – B T
    Feb 12 '10 at 23:12
  • So is this a single js library file located on one domain that needs to be pulled in across multiple domains? Or is this a js file that resides on multiple domains that need to pull in other js files relative to its source? Could you provide an example of what you are trying to accomplish? Feb 12 '10 at 23:17
  • Its both actually. The js file will reside on multiple domains (QA vs production), and it will also be included from multiple domains (whatever web app needs to use the library).
    – B T
    Feb 12 '10 at 23:26
  • This may be what you're trying to get around, but could you hardcode the path of the script as a variable and have devel and production versions of your lib that have that line being their only difference? Or more simply pass something to a single script as a get param that specifies its location: ?devel=true Feb 12 '10 at 23:47
  • That is what I'm trying to avoid. I'm also trying to avoid a GET parameter, but thats a perfectly valid solution. I'm just too lazy to much around in all our Java Struts stuff for this. : )
    – B T
    Feb 13 '10 at 1:18
0
function getCurrnetScriptName() {
    const url = new URL(document.currentScript.src);
    const {length:len, [len-1]:last} = url.pathname.split('/');
    return last.slice(0,-3);
}

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