Gulp less 然后缩小任务
我必须在 gulp 中执行 2 个步骤:
I have to make 2 steps in gulp:
- 减少 .css 文件格式
- 缩小生成的 css 文件
这是我的 gulpfile:
This is my gulpfile:
var gulp = require('gulp'),
watch = require("gulp-watch"),
less = require('gulp-less'),
cssmin = require('gulp-cssmin'),
rename = require('gulp-rename');
gulp.task('watch-less', function () {
watch({glob: './*.less'}, function (files) { // watch any changes on coffee files
gulp.start('compile-less'); // run the compile task
});
watch({
glob: ['./*.css', '!./*.min.css']
}, function(files) {
gulp.start('minify-css'); // run the compile task
});
});
gulp.task('compile-less', function () {
gulp.src('./*.less') // path to your file
.pipe(less().on('error', function(err) {
console.log(err);
}))
.pipe(gulp.dest('./'));
});
gulp.task('minify-css', function() {
gulp.src([
'./*.css',
'!./*.min.css'
])
.pipe(cssmin().on('error', function(err) {
console.log(err);
}))
.pipe(rename({suffix: '.min'}))
.pipe(gulp.dest('./'));
})
gulp.task('default', ['watch-less']);
当我启动它时,只完成了第一步.请帮帮我.
When i start it only first step is done. Help me please.
推荐答案
时间久了就不需要了,对我来说方便的解决方案是:
There is no needing after time, convinient solution for me was:
var gulp = require('gulp'),
less = require('gulp-less'),
cssmin = require('gulp-cssmin'),
plumber = require('gulp-plumber'),
rename = require('gulp-rename');
gulp.task('watch', function () {
gulp.watch('./styles/*.less', ['less']);
});
gulp.task('less', function () {
gulp.src('./styles/*.less')
.pipe(plumber())
.pipe(less())
.pipe(gulp.dest('./styles/'))
.pipe(cssmin())
.pipe(rename({
suffix: '.min'
}))
.pipe(gulp.dest('./styles'))
});
gulp.task('default', ['less', 'watch']);
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