50

I want to add some bash commands at the end of gulp.watch function to accelerate my development speed. So, I am wondering if it is possible. Thanks!

3 Answers 3

76

I would go with:

var spawn = require('child_process').spawn;
var fancyLog = require('fancy-log');
var beeper = require('beeper');

gulp.task('default', function(){

    gulp.watch('*.js', function(e) {
        // Do run some gulp tasks here
        // ...

        // Finally execute your script below - here "ls -lA"
        var child = spawn("ls", ["-lA"], {cwd: process.cwd()}),
            stdout = '',
            stderr = '';

        child.stdout.setEncoding('utf8');

        child.stdout.on('data', function (data) {
            stdout += data;
            fancyLog(data);
        });

        child.stderr.setEncoding('utf8');
        child.stderr.on('data', function (data) {
            stderr += data;
            fancyLog.error(data));
            beeper();
        });

        child.on('close', function(code) {
            fancyLog("Done with exit code", code);
            fancyLog("You access complete stdout and stderr from here"); // stdout, stderr
        });


    });
});

Nothing really "gulp" in here - mainly using child processes http://nodejs.org/api/child_process.html and spoofing the result into fancy-log

4
  • 3
    After doing some research on child processes, I'v achieved my goal by using child_process.exec at last. Thanks for your node resource!
    – houhr
    Commented Jan 15, 2014 at 14:10
  • 27
    Thank you for actually addressing his question instead of responding with a link to a plugin.
    – user124873
    Commented Oct 19, 2014 at 3:29
  • 8
    While I can understand how you might not want to use a plugin, I believe my answer still addressed the question.
    – Erik
    Commented Dec 24, 2014 at 23:43
  • I had the same question and your answer better met my needs than a re-engineering of this proverbial wheel (not to detract anything from Mangled's answer). Commented Aug 3, 2015 at 6:14
45

Use https://www.npmjs.org/package/gulp-shell.

A handy command line interface for gulp

7
  • 6
    While there are alternative ways (like gulp-exec and gulp-spawn), the gulp-shell prints the output from the command immediately - which is often wanted.
    – jmu
    Commented Aug 27, 2014 at 5:29
  • 4
    There is now also gulp-run, which has a cleaner and more intuitive interface, IMO. Commented Aug 3, 2015 at 7:44
  • 14
    gulp-shell is blacklisted, see github.com/gulpjs/plugins/blob/master/src/blackList.json. Commented Oct 26, 2015 at 20:37
  • 2
    It is "blacklisted" because there is some overlap with gulp-exec -- not that there is anything wrong with either plugin. github.com/sun-zheng-an/gulp-shell/issues/1
    – Erik
    Commented Oct 26, 2015 at 20:38
  • 4
    One doesn't need any plugins to run bash commands from gulp. Just use node's child_process directly. This why those plugins get blacklisted.
    – demisx
    Commented Mar 19, 2016 at 2:10
1

The simplest solution is as easy as:

var child = require('child_process');
var gulp   = require('gulp');

gulp.task('launch-ls',function(done) {
   child.spawn('ls', [ '-la'], { stdio: 'inherit' });
   done();
});

It doesn't use node streams and gulp pipes but it will do the work.

1
  • done is never called. Isn't this going to mess up script execution order if other scripts are supposed to run before or after it?
    – trusktr
    Commented Oct 14, 2023 at 22:30

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