7

I try to minify separate .js-files with gulp. Like:

file_one.js --> file_one.min.js
file_two.js --> file_two.min.js

It works the first time I execute gulp. But if I run it a second time it looks like this:

file_one.js 
file_one.min.js
file_one.min.min.js
file_two.js
file_two.min.js
file_two.min.min.js

And it repeats that pattern every timme i execute gulp. How can I stop it from minify already minified js.

I use the following code:

gulp.task('scripts', function() {
    return gulp.src('dest/*js')
        .pipe(rename({ suffix: '.min' }))
        .pipe(uglify())
        .pipe(gulp.dest('dest'));
});
8

This is happening because you are saving the minified files in the same directory of your non minified files. The first part of your stream (gulp.src) reads all files inside your dest folder. Since you are saving your minified files to the very same folder, it is minifying them again on the second time it is run. the You have some options:

  1. Change the output folder to something else (for instance gulp.dest('build'))
  2. Change gulp.src to match only the non-minified files
| improve this answer | |
  • I think the OP was asking for clarification on how to do your point 2. i.e. "match the non-minified files" – Rick Davies Apr 7 '16 at 18:41
  • @RickDavies just read the comments. This solution worked for him. No need to downvote. – Marlon Bernardes Apr 8 '16 at 14:29
  • @MarlonBernardes I did read the comments and although the OP accepted your answer to his very real problem I don't believe it answered the intent of his original question, per my comment above. This is an open forum and other people searching for an answer to his question (viz. minifying files in the same directory) might be unsatisfied by yours. I was and downvoted it, also upvoting the answer by Patrik Oldsberg. That's my prerogative. – Rick Davies Apr 11 '16 at 14:11
25

You can put the minified files in a different directory, or you can exclude them in the gulp.srclike this:

gulp.task('scripts', function() {
    return gulp.src(['dest/*.js', '!dest/*.min.js'])
        .pipe(rename({ suffix: '.min' }))
        .pipe(uglify())
        .pipe(gulp.dest('dest'));
});
| improve this answer | |
  • 1
    Had the to be excluded minified files in a separate array first: gulp.src(['css/*.css'], ['!css/*.min.css']), not like this in one set of [] . This worked for me. Thanks! – rhand Sep 13 '15 at 14:26
0

You are having problem with duplicate so you need to delete the destination file first to re-run the file. See Example:

//clean
gulp.task('clean', function(){
    return del(['dist']);
});

    //Default task
    gulp.task('default',['clean'], function(){
        gulp.start('usemin','imagemin','copy','views');
    });
| improve this answer | |

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