9

i am currently learning about gulp.js. as i saw the tutorial and documentation of gulp.js, this code:

gulp.src('js/*.js')
.pipe(uglify())
.pipe(gulp.dest('minjs'));

makes the uglified javascript file with create new directory named 'minjs'. of course, i installed gulp-uglity with --dev-save option. there is no error message on the console so i don't know what is the problem. i tried gulp with "sudo", but still not working.

so i went to the root directory and searched all filesystem but there is no file named 'minjs' so i guess it just not working. why this is happening? anyone knows this problem, it would be nice why this is happening.

whole source code:

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

gulp.task('default', function() {
    console.log('mifying scripts...');

    gulp.src('js/*.js')
    .pipe(uglify())
    .pipe(gulp.dest('minjs'));
});
  • Can you try .pipe(gulp.dest('./minjs/'));? – Manasov Daniel Jan 2 '16 at 10:28
  • it will create minjs folder relative to the directory containing your gulpfile.js. Did you check there ? – Arkantos Jan 2 '16 at 10:33
  • Arkantos// yep. i checked, no 'minjs' directory ;( – modernator Jan 2 '16 at 10:40
  • Manasov Daniel// just i tried, but nothing happens either. – modernator Jan 2 '16 at 10:41
  • how are you executing your gulp tasks ? You can go to the directory containing gulpfile.js and give gulp for executing default task. Do you see any errors while doing this ? – Arkantos Jan 2 '16 at 11:05
9

I had the same problem, you have to return the task inside the function:

gulp.task('default', function() {
 return gulp.src("js/*.js")
    .pipe(uglify())
    .pipe(gulp.dest('minjs'));

Also, minjs will not be a file, but a folder, were all your minified files are going to be saved.

Finally, if you want to minify only 1 file, you can specify it directly, the same with the location of the destination.

For example:

var gulp = require('gulp');
var browserify = require('browserify');
var source = require('vinyl-source-stream');
var uglify = require('gulp-uglify');    

gulp.task('browserify', function() {
    return browserify('./src/client/app.js')
        .bundle()
        //Pass desired output filename to vinyl-source-stream
        .pipe(source('main.js'))
        // Start piping stream to tasks!
        .pipe(gulp.dest('./public/'));
});

    gulp.task('build', ['browserify'], function() {
         return gulp.src("./public/main.js")
            .pipe(uglify())
            .pipe(gulp.dest('./public/'));
    });

Hope it helps!

0

Finally I resolved question like this

It was a directory mistake so the gulp task haven't gathered any matched files, then it won't create any dest directory (because no files in output)

like me

const paths = {
  dest: {
    lib: './lib',
    esm: './esm',
    dist: './dist',
  },
  styles: 'src/components/**/*.less',
  scripts: ['src/components/**/*.{ts,tsx}', '!src/components/**/demo/*.{ts,tsx}'],
};

at first my scripts was ['components/**/*.{ts,tsx}', '!components/**/demo/*.{ts,tsx}']

it haven't matched any file.

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