91

Is there anyway to check if strict mode 'use strict' is enforced , and we want to execute different code for strict mode and other code for non-strict mode. Looking for function like isStrictMode();//boolean

7 Answers 7

Reset to default
123

The fact that this inside a function called in the global context will not point to the global object can be used to detect strict mode:

var isStrict = (function() { return !this; })();

Demo:

> echo '"use strict"; var isStrict = (function() { return !this; })(); console.log(isStrict);' | node
true
> echo 'var isStrict = (function() { return !this; })(); console.log(isStrict);' | node
false
1
  • 8
    For clarification, the return statement is equivalent to return this === undefined, it's not comparing it to the global object, it's just checking if this exists.
    – aljgom
    Mar 15, 2017 at 21:40
35

I prefer something that doesn't use exceptions and works in any context, not only global one:

var mode = (eval("var __temp = null"), (typeof __temp === "undefined")) ? 
    "strict": 
    "non-strict";

It uses the fact the in strict mode eval doesn't introduce a new variable into the outer context.

3
  • Just out of curiosity, how bulletproof is this in 2015, now that ES6 is here?
    – John Weisz
    Jul 18, 2015 at 17:02
  • 3
    I verify that it works in ES6 on latest chrome and nodejs.
    – Michael Matthew Toomim
    Nov 30, 2016 at 0:27
  • 2
    Nice! Works in NodeJS 10 REPL with/without --use_strict flag.
    – igor
    Jan 16, 2019 at 11:06
26 
function isStrictMode() {
    try{var o={p:1,p:2};}catch(E){return true;}
    return false;
}

Looks like you already got an answer. But I already wrote some code. So here

6
  • 1
    This is better than Mehdi's answer as it will work everywhere, not only in a global scope. Upped. :)
    – mgol
    Aug 15, 2012 at 23:45
  • 7
    This results in a syntax error, which happens before the code runs, so it can't be caught...
    – Jelle De Loecker
    Jun 28, 2013 at 12:11
  • 7
    This will not work in ES6 either as the check is removed to allow computed property names.
    – billc.cn
    Jan 30, 2015 at 10:22
  • 1
    Why should there be an error thrown in strict mode?
    – Buksy
    Aug 11, 2016 at 6:31
  • 1
    @skerit Can you elaborate on your syntax error? I do not get one.
    – Robert Siemer
    Feb 25, 2020 at 0:48
16

Yep, this is 'undefined' within a global method when you are in strict mode.

function isStrictMode() {
    return (typeof this == 'undefined');
}
0
8

Warning + universal solution

Many answers here declare a function to check for strict mode, but such a function will tell you nothing about the scope it was called from, only the scope in which it was declared!

function isStrict() { return !this; };

function test(){
  'use strict';
  console.log(isStrict()); // false
}

Same with cross-script-tag calls.

So whenever you need to check for strict mode, you need to write the entire check in that scope:

var isStrict = true;
eval("var isStrict = false");

Unlike the most upvoted answer, this check by Yaron works not only in the global scope.

5

More elegant way: if "this" is object, convert it to true

"use strict"

var strict = ( function () { return !!!this } ) ()

if ( strict ) {
    console.log ( "strict mode enabled, strict is " + strict )
} else {
    console.log ( "strict mode not defined, strict is " + strict )
}
0

Another solution can take advantage of the fact that in strict mode, variables declared in eval are not exposed on the outer scope

function isStrict() {
    var x=true;
    eval("var x=false");
    return x;
}

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