在这样的代码片段中:
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任务中我想要运行clean并在完成后运行coffee,当完成时,运行其他东西.但我无法弄明白.这件作品不起作用.请指教.