在这样的片段中:
gulp.task "coffee", ->
gulp.src("src/server/**/*.coffee")
.pipe(coffee {bare: true}).on("error",gutil.log)
.pipe(gulp.dest "bin")
gulp.task "clean",->
gulp.src("bin", {read:false})
.pipe clean
force:true
gulp.task 'develop',['clean','coffee'], ->
console.log "run something else"
在 develop
任务中,我想运行 clean
并在完成后运行 coffee
,完成后运行其他内容.但我无法弄清楚.这块不行.请指教.
In develop
task I want to run clean
and after it's done, run coffee
and when that's done, run something else. But I can't figure that out. This piece doesn't work. Please advise.
它还没有正式发布,但是即将推出的 Gulp 4.0 让您可以轻松地使用 gulp.series 执行同步任务.你可以这样做:
It's not an official release yet, but the coming up Gulp 4.0 lets you easily do synchronous tasks with gulp.series. You can simply do it like this:
gulp.task('develop', gulp.series('clean', 'coffee'))
我找到了一篇很好的博客文章,介绍了如何升级和使用这些简洁的功能:通过示例迁移到 gulp 4
I found a good blog post introducing how to upgrade and make a use of those neat features: migrating to gulp 4 by example
这篇关于如何一个接一个地依次运行 Gulp 任务的文章就介绍到这了,希望我们推荐的答案对大家有所帮助,也希望大家多多支持跟版网!