67

I am developing a Gulpfile. Can it be made to restart as soon as it changes? I am developing it in CoffeeScript. Can Gulp watch Gulpfile.coffee in order to restart when changes are saved?

14 Answers 14

61

You can create a task that will gulp.watch for gulpfile.js and simply spawn another gulp child_process.

var gulp = require('gulp'),
    argv = require('yargs').argv, // for args parsing
    spawn = require('child_process').spawn;

gulp.task('log', function() {
  console.log('CSSs has been changed');
});

gulp.task('watching-task', function() {
  gulp.watch('*.css', ['log']);
});

gulp.task('auto-reload', function() {
  var p;

  gulp.watch('gulpfile.js', spawnChildren);
  spawnChildren();

  function spawnChildren(e) {
    // kill previous spawned process
    if(p) { p.kill(); }

    // `spawn` a child `gulp` process linked to the parent `stdio`
    p = spawn('gulp', [argv.task], {stdio: 'inherit'});
  }
});

I used yargs in order to accept the 'main task' to run once we need to restart. So in order to run this, you would call:

gulp auto-reload --task watching-task

And to test, call either touch gulpfile.js or touch a.css to see the logs.

9
  • 4
    That's a nice trick. One thing I'd be tempted to do would be to name the task something like auto-reload, and run it like gulp auto-reload --task foo, otherwise you could get a fork-bomb starting the default task recursively. Commented Apr 6, 2014 at 16:32
  • Good suggestion @OverZealous. Applied the changes in order to avoid this problem for future readers.
    – Caio Cunha
    Commented Apr 6, 2014 at 18:37
  • 16
    That seems complicated, I wish it were as easy as it is with Grunt
    – fregante
    Commented May 17, 2014 at 15:44
  • This method also has a bunch of side effects, like occasional errors (2014-07-29 11:48 gulp[74366] (CarbonCore.framework) FSEventStreamStart: register_with_server: ERROR: f2d_register_rpc() => (null) (-21)), and, e.g. localhost:3000 port number incrementing when using BrowserSync Commented Jul 29, 2014 at 18:03
  • Om Windows instead of require('child_process') better to use require('child-proc') Commented Dec 5, 2014 at 14:46
43

I created gulper that is gulp.js cli wrapper to restart gulp on gulpfile change.

You can simply replace gulp with gulper.

$ gulper <task-name>
5
  • 2
    Very simple and elegant solution. Commented Mar 25, 2015 at 18:53
  • Wish I'd seen this earlier. Now I'm stuck with my own implementation: github.com/samvv/node-galop
    – samvv
    Commented Apr 29, 2016 at 17:41
  • Shame on me, I was using it for a year since I've first saw this answer, and I only now figured out that I did not upvote it. Thanks for the useful tool!
    – baldrs
    Commented Oct 29, 2016 at 11:28
  • nice for Linux & Mac, but fails on Windows - it tries to launch gulp's CMD as JS
    – SynCap
    Commented Jul 29, 2017 at 21:56
  • You're a star mate :)
    – Vik
    Commented Aug 7, 2017 at 5:11
13

I use a small shell script for this purpose. This works on Windows as well.

Press Ctrl+C to stop the script.

// gulpfile.js
gulp.task('watch', function() {
    gulp.watch('gulpfile.js', process.exit);
});

Bash shell script:

# watch.sh
while true; do
    gulp watch;
done;

Windows version: watch.bat

@echo off
:label
cmd /c gulp watch
goto label
2
  • Simple, easy to understand (for me at least), certainly no leaks.
    – tuomassalo
    Commented Sep 2, 2015 at 10:22
  • This is the only one that worked for me, since gulper gives errors on Windows.
    – Dylan
    Commented Mar 8, 2016 at 1:13
9

I was getting a bunch of EADDRINUSE errors with the solution in Caio Cunha's answer. My gulpfile opens a local webserver with connect and LiveReload. It appears the new gulp process briefly coexists with the old one before the older process is killed, so the ports are still in use by the soon-to-die process.

Here's a similar solution which gets around the coexistence problem, (based largely on this):

var gulp = require('gulp');
var spawn = require('child_process').spawn;

gulp.task('gulp-reload', function() {
  spawn('gulp', ['watch'], {stdio: 'inherit'});
  process.exit();
});

gulp.task('watch', function() {
  gulp.watch('gulpfile.js', ['gulp-reload']);
});

That works fairly well, but has one rather serious side-effect: The last gulp process is disconnected from the terminal. So when gulp watch exits, an orphaned gulp process is still running. I haven't been able to work around that problem, the extra gulp process can be killed manually, or just save a syntax error to gulpfile.js.

1
  • 1
    to restart any task : process.argv.shift(); spawn(process.argv.shift(), process.argv, {stdio: 'inherit'}); process.exit()
    – Mbrevda
    Commented Jan 15, 2016 at 13:29
4

I've been dealing with the same problem and the solution in my case was actually very simple. Two things.

  1. npm install nodemon -g (or locally if you prefer)
  2. run with cmd or create a script in packages like this:

    "dev": "nodemon --watch gulpfile.js --exec gulp"
    
  3. The just type npm run dev

--watch specifies the file to keep an eye on. --exec says execute next in line and gulp is your default task. Just pass in argument if you want non default task.

Hope it helps.

EDIT : Making it fancy ;) Now while the first part should achieve what you were after, in my setup I've needed to add a bit more to make it really user friend. What I wanted was

  1. First open the page.
  2. Look for changes in gulpfile.js and restart gulp if there are any
  3. Gulp it up so keep an eye on files, rebuild and hot reload

If you only do what I've said in the first part, it will open the page every time. To fix it, create a gulp task that will open the page. Like this :

gulp.task('open', function(){
return gulp
.src(config.buildDest + '/index.html')
.pipe(plugins.open({
    uri: config.url
}));

Then in my main tasks I have :

gulp.task('default', ['dev-open']);
gulp.task('dev-open', function(done){
    plugins.sequence('build', 'connect', 'open', 'watch', done);
});
gulp.task('dev', function(done){
    plugins.sequence('build', 'connect', 'watch', done);
});

Then modifying your npm scripts to

"dev": "gulp open & nodemon --watch gulpfile.js --watch webpack.config.js --exec gulp dev"

Will give you exactly what you want. First open the page and then just keep live reloading. Btw for livereload I use the one that comes with connect which always uses the same port. Hope it works for you, enjoy!

2
  • Nodemon is exactly what I needed. I had completely forgotten about it's existence. What a shame.
    – cram2208
    Commented May 5, 2021 at 13:42
  • I recommend the original solution, not the 'fancy' addition, with two recommendations: 1) add nodemon to optionalDependencies in package.json and 2) Mention in the README Commented Oct 24, 2021 at 15:15
3

Another solution for this is to refresh the require.cache.

var gulp = require('gulp');

var __filenameTasks = ['lint', 'css', 'jade'];
var watcher = gulp.watch(__filename).once('change', function(){
  watcher.end(); // we haven't re-required the file yet
                 // so is the old watcher
  delete require.cache[__filename];
  require(__filename);
  process.nextTick(function(){
    gulp.start(__filenameTasks);
  });
});
4
  • Edit: better using once otherwise you might have memory leaks Commented Nov 10, 2014 at 22:42
  • This still leaks: (node) warning: possible EventEmitter memory leak detected. 11 change listeners added. Use emitter.setMaxListeners() to increase limi
    – SleepyCal
    Commented Apr 30, 2015 at 16:37
  • I've modified it a little bit. The problem is that even if you use once the watcher is still there so you also have to end it Commented May 1, 2015 at 10:16
  • Eventually my fix was to stop using gulp heh
    – SleepyCal
    Commented May 1, 2015 at 11:05
3

I know this is a very old question, but it's a top comment on Google, so still very relevant.

Here is an easier way, if your source gulpfile.js is in a different directory than the one in use. (That's important!) It uses the gulp modules gulp-newer and gulp-data.

var gulp          = require('gulp'         )
  , data          = require('gulp-data'    )
  , newer         = require('gulp-newer'   )
  , child_process = require('child_process')
;

gulp.task( 'gulpfile.js' , function() {
    return gulp.src( 'sources/gulpfile.js' ) // source
        .pipe( newer(     '.'            ) ) // check
        .pipe( gulp.dest( '.'            ) ) // write
        .pipe( data( function(file)        { // reboot
            console.log('gulpfile.js changed! Restarting gulp...') ;
            var t , args = process.argv ;
            while ( args.shift().substr(-4) !== 'gulp' ) { t=args; }
            child_process.spawn( 'gulp' , args , { stdio: 'inherit' } ) ;
            return process.exit() ;
        } ) )
    ;
} ) ;

It works like this:

  • Trick 1: gulp-newer only executes the following pipes, if the source file is newer than the current one. This way we make sure, there's no reboot-loop.
  • The while loop removes everything before and including the gulp command from the command string, so we can pass through any arguments.
  • child_process.spawn spawns a new gulp process, piping input output and error to the parent.
  • Trick 2: process.exit kills the current process. However, the process will wait to die until the child process is finished.

There are many other ways of inserting the restart function into the pipes. I just happen to use gulp-data in every of my gulpfiles anyway. Feel free to comment your own solution. :)

1

Here's another version of @CaioToOn's reload code that is more in line with normal Gulp task procedure. It also does not depend on yargs.

Require spawn and initilaize the process variable (yargs is not needed):

var spawn = require('child_process').spawn;
var p;

The default gulp task will be the spawner:

gulp.task('default', function() {
  if(p) { p.kill(); }
  // Note: The 'watch' is the new name of your normally-default gulp task. Substitute if needed.
  p = spawn('gulp', ['watch'], {stdio: 'inherit'});
});

Your watch task was probably your default gulp task. Rename it to watch and add a gulp.watch()for watching your gulpfile and run the default task on changes:

gulp.task('watch', ['sass'], function () {
  gulp.watch("scss/*.scss", ['sass']);
  gulp.watch('gulpfile.js', ['default']);
});

Now, just run gulp and it will automatically reload if you change your gulpfile!

1
1

try this code (only win32 platform)

gulp.task('default', ['less', 'scripts', 'watch'], function(){
    gulp.watch('./gulpfile.js').once('change' ,function(){
        var p;
        var childProcess = require('child_process');
        if(process.platform === 'win32'){
            if(p){
                childProcess.exec('taskkill /PID' + p.id + ' /T /F', function(){});
                p.kill();
            }else{
                p = childProcess.spawn(process.argv[0],[process.argv[1]],{stdio: 'inherit'});
            }
        }
    });
});
2
  • this is the only solution that worked for me on Windows. But still it does not kill the previous process, at the end I have to manually kill all the spawned processes.
    – nazikus
    Commented Aug 11, 2016 at 14:47
  • also, if you use connect.reload(), you need to run connect.serverClose() before process handling. Otherwise port is not released and throws more errors.
    – nazikus
    Commented Aug 11, 2016 at 14:50
1

A good solution for Windows, which also works well with Visual Studio task runner.

/// <binding ProjectOpened='auto-watchdog' />
const spawn = require('child-proc').spawn,
      configPaths = ['Gulpconfig.js', 'bundleconfig.js'];

gulp.task('watchdog', function () {
    // TODO: add other watches here

    gulp.watch(configPaths, function () {
        process.exit(0);
    });
});

gulp.task('auto-watchdog', function () {
    let p = null;

    gulp.watch(configPaths, spawnChildren);
    spawnChildren();

    function spawnChildren() {
        const args = ['watchdog', '--color'];

        // kill previous spawned process
        if (p) {
            // You might want to trigger a build as well
            args.unshift('build');

            setTimeout(function () {
                p.kill();
            }, 1000);
        }

        // `spawn` a child `gulp` process linked to the parent `stdio`
        p = spawn('gulp', args, { stdio: 'inherit' });
    }
});

Main changes compared to other answers:

  • Uses child-proc because child_process fails on Windows.
  • The watchdog exits itself on changes of files because in Windows the gulp call is wrapped in a batch script. Killing the batch script wouldn't kill gulp itself causing multiple watches to be spawned over time.
  • Build on change: Usually a gulpfile change also warrants rebuilding the project.
1

Install nodemon globally: npm i -g nodemon

And add in your .bashrc (or .bash_profile or .profile) an alias:

alias gulp='nodemon --watch gulpfile.js --watch gulpfile.babel.js --quiet --exitcrash --exec gulp'

This will watch for file gulpfile.js and gulpfile.babel.js changes. (see Google)

P.S. This can be helpful for endless tasks (like watch) but not for single run tasks. I mean it uses watch so it will continue process even after gulp task is done. ;)

1
  • Better: Add nodemon to "optionalDependencies" within package.json, include "dev":"nodemon --watch gulpfile.js --exec gulp dev" in package.json's "scripts", and finally mention in the project README. Commented Oct 24, 2021 at 15:12
0

Here's a short version that's easy to understand that you can set as a default task so you just need to type "gulp":

gulp.task('watch', function() {
  const restartingGulpProcessCmd = 'while true; do gulp watch2 --colors; done;';
  const restartingGulpProcess = require('child_process').exec(restartingGulpProcessCmd);
  restartingGulpProcess.stdout.pipe(process.stdout);
  restartingGulpProcess.stderr.pipe(process.stderr);
});

gulp.task('watch2', function() {
  gulp.watch(['config/**.js', 'webpack.config.js', './gulpfile.js'],
    () => {
      console.log('Config file changed. Quitting so gulp can be restarted.');
      process.exit();
    });

  // Add your other watch and build commands here
}

gulp.task('default', ['watch']);
1
  • What would this be for windows? The while true; part returns 'while is not recognized as an internal or external command..'
    – MattV
    Commented Nov 29, 2019 at 22:52
0

Install gulp-restart

npm install gulp-restart

This code will work for you.

var gulp = require('gulp'); var restart = require('gulp-restart');

gulp.task('watch', function() { gulp.watch(['gulpfile.js'], restart); })

it will restart gulp where you do changes on the gulpfile.js

1
  • gulp 4.0 on MacOs: TypeError: stdin.setRawMode is not a function at Object.<anonymous> (/.../node_modules/gulp-restart/index.js:18:7)
    – Vitamon
    Commented Apr 10, 2018 at 11:16
0

I spent a whole day trying to make this work on Windows / Gulp 4.0.2, and I (finally) made it...

I used some solutions from people on this page and from one other page. It's all there in the comments...

Any change in any function inside "allTasks" will take effect on gulpfile.js (or other watched files) save...

There are some useless comments and console.logs left, feel free to remove them... ;)

const { gulp, watch, src, dest, series, parallel } = require("gulp");
const spawn = require('child_process').spawn;

// This function contains all that is necessary: start server, watch files...
const allTasks = function (callback) {
   console.log('==========');
   console.log('========== STARTING THE GULP DEFAULT TASK...');
   console.log('========== USE CTRL+C TO STOP THE TASK');
   console.log('==========');

   startServer();
   // other functions (watchers) here

   // *** Thanks to Sebazzz ***
   // Stop all on gulpfile.js change
   watch('gulpfile.js', function (callback) {
      callback(); // avoid "task didn't complete" error
      process.exit();
   });

   callback(); // avoid "task didn't complete" error
}


// Restart allTasks
// ********************************************
// CALL GULPDEFAULT WITH THE GULP DEFAULT TASK:
// export.default = gulpDefault
// ********************************************
const gulpDefault = function (callback) {
   let p = null;

   watch('gulpfile.js', spawnChildren);

   // *** Thanks to Sphinxxx: ***
   // New behavior in gulp v4: The watcher function (spawnChildren()) is passed a callback argument
   // which must be called after spawnChildren() is done, or else the auto-reload task
   // never goes back to watching for further changes (i.e.the reload only works once).
   spawnChildren(callback);

   function spawnChildren(callback) {

      /*
      // This didn't do anything for me, with or without the delay,
      // so I left it there, but commented it out, together with the console.logs...

      // kill previous spawned process
      if (p) {
         // You might want to trigger a build as well
         //args.unshift('build');

         setTimeout(function () {
            console.log('========== p.pid before kill: ' + p.pid); // a random number
            console.log('========== p before kill: ' + p); // [object Object]
            p.kill();
            console.log('========== p.pid after kill: ' + p.pid); // the same random number
            console.log('========== p after kill: ' + p); // still [object Object]
         }, 1000);
      }
      */

      // `spawn` a child `gulp` process linked to the parent `stdio`
      // ['watch'] is the task that calls the main function (allTasks):
      // exports.watch = allTasks;
      p = spawn('gulp', ['watch'], { stdio: 'inherit', shell: true });
      // *** Thanks to people from: ***
      // https://stackoverflow.com/questions/27688804/how-do-i-debug-error-spawn-enoent-on-node-js
      // Prevent Error: spawn ENOENT
      // by passing "shell: true" to the spawn options

      callback(); // callback called - thanks to Sphinxxx
   }
}

exports.default = gulpDefault;
exports.watch = allTasks;

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