319

How can I detect whether my Node.JS file was called using SH:node path-to-file or JS:require('path-to-file')?

This is the Node.JS equivalent to my previous question in Perl: How can I run my Perl script only if it wasn't loaded with require?

502
if (require.main === module) {
    console.log('called directly');
} else {
    console.log('required as a module');
}

See documentation for this here: https://nodejs.org/docs/latest/api/modules.html#modules_accessing_the_main_module

| improve this answer | |
  • 3
    Is there any way to get around this? I have code (which I don't have control over) that does this, but I need to require() it and have it act as though it was called directly. Basically, I need to fool something that uses that test into thinking it was called directly. – Kevin Nov 17 '15 at 22:17
  • 2
    @Kevin I don't know about doing this with require(), but you could maybe do it with either importing the file then running eval on it, or by running require('child_process').exec('node the_file.js') – MalcolmOcean Apr 29 '17 at 14:52
  • When using ES modules with Node.js, you can use the es-main package to check if a module was run directly. – Tim Schaub Feb 19 at 23:41
95

There is another, slightly shorter way (not outlined in the mentioned docs).

var runningAsScript = !module.parent;

I outlined more details about how this all works under the hood in this blog post.

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  • +1, I like this better, but I will hesitate before switching accepted answers. :) – Bryan Field Mar 4 '13 at 14:51
  • 9
    As I indicated, the official way that is documented is the one @nicolaskruchten outlined. This is just an alternative, no need to switch accepted answer. Both work. – Thorsten Lorenz Mar 6 '13 at 3:50
  • 12
    I had to use this rather than the documented way - the documented way works for eg. node script.js but not cat script.js | node. This way works for both. – Tim Malone Dec 14 '17 at 23:47
11

I was a little confused by the terminology used in the explanation(s). So I had to do a couple quick tests.

I found that these produce the same results:

var isCLI = !module.parent;
var isCLI = require.main === module;

And for the other confused people (and to answer the question directly):

var isCLI = require.main === module;
var wasRequired = !isCLI;
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7

Try this if you are using ES6 modules:

if (process.mainModule.filename === __filename) {
  console.log('running as main module')
}
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  • 2
    crap, my process.mainModule is undefined – datdinhquoc Oct 17 '18 at 9:40
  • 1
    GHOSHHHH, i need to check this in my .mjs file – datdinhquoc Oct 17 '18 at 9:44
6

I always find myself trying to recall how to write this goddamn code snippet, so I decided to create a simple module for it. It took me a bit to make it work since accessing caller's module info is not straightforward, but it was fun to see how it could be done.

So the idea is to call a module and ask it if the caller module is the main one. We have to figure out the module of the caller function. My first approach was a variation of the accepted answer:

module.exports = function () {
    return require.main === module.parent;
};

But that is not guaranteed to work. module.parent points to the module which loaded us into memory, not the one calling us. If it is the caller module that loaded this helper module into memory, we're good. But if it isn't, it won't work. So we need to try something else. My solution was to generate a stack trace and get the caller's module name from there:

module.exports = function () {
    // generate a stack trace
    const stack = (new Error()).stack;
    // the third line refers to our caller
    const stackLine = stack.split("\n")[2];
    // extract the module name from that line
    const callerModuleName = /\((.*):\d+:\d+\)$/.exec(stackLine)[1];

    return require.main.filename === callerModuleName;
};

Save this as is-main-module.js and now you can do:

const isMainModule = require("./is-main-module");

if (isMainModule()) {
    console.info("called directly");
} else {
    console.info("required as a module");
}

Which is easier to remember.

| improve this answer | |
  • 2
    Very cool. I love it when common code snippets are abbreviated to a single name. Small adjustment: return require.main /*this is undefined if we started node interactively*/ && require.main.filename === callerModuleName; – masterxilo Feb 6 '18 at 10:43

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