问题描述
我有一个 gulp 任务,我想获取一些源文件并将它们复制到 build/premium
和 build/free
然后从构建/免费
.
我的尝试是这样做的:
gulp.task("build", ["clean"], function () {gulp.src(["src/*", "!src/composer.*", "LICENSE"]).pipe(gulp.dest("build/premium")).pipe(del(["build/free/plugins/*", "!build/free/plugins/index.php"])).pipe(gulp.dest("build/free"));});
这会导致错误:
TypeError: dest.on 不是函数在 DestroyableTransform.Stream.pipe (stream.js:45:8)在 Gulp.<匿名>(/Users/gezim/projects/myproj/gulpfile.js:9:6)
如何在删除端口时完成此操作?有没有更好的方法来做到这一点?
我会使用 gulp-filter
只删除不应该从第二个目的地复制的内容.
我将任务的意图解释为希望 src
中存在的所有内容都存在于 build/premium
中.但是,build/free
应该排除最初在 src/plugins
中但仍应包含 src/plugins/index.php
的所有内容.p>
这是一个有效的 gulpfile:
var gulp = require("gulp");var filter = require("gulp-filter");变种德尔=要求(德尔");gulp.task("干净", function () {返回德尔(构建");});gulp.task("build", ["clean"], function () {返回 gulp.src(["src/**", "!src/composer.*", "LICENSE"]).pipe(gulp.dest("build/premium")).pipe(filter(["**", "!plugins/**", "plugins/index.php"])).pipe(gulp.dest("build/free"));});
传递给 filter
的模式是 relative 路径.由于 gulp.src
模式具有 src/**
这意味着它们是相对于 src
的.
还要注意,del
不能直接传递给 .pipe()
,因为它返回一个承诺.它可以从任务中返回,就像 clean
任务一样.
I have a gulp task in which I want to take some source files and copy them to build/premium
and build/free
and then remove some extra files from
build/free
.
My attempt at that was doing this:
gulp.task("build", ["clean"], function () {
gulp.src(["src/*", "!src/composer.*", "LICENSE"])
.pipe(gulp.dest("build/premium"))
.pipe(del(["build/free/plugins/*", "!build/free/plugins/index.php"]))
.pipe(gulp.dest("build/free"));
});
Which results in an error:
TypeError: dest.on is not a function
at DestroyableTransform.Stream.pipe (stream.js:45:8)
at Gulp.<anonymous> (/Users/gezim/projects/myproj/gulpfile.js:9:6)
How do I accomplish this the deleting port? Is there a better way altogether to do this?
I would use gulp-filter
to drop only what should not be copied from the 2nd destination.
I interpreted the intent of the task as wanting everything present in src
to be present in build/premium
. However, build/free
should exclude everything which was originally in src/plugins
but should still include src/plugins/index.php
.
Here is a working gulpfile:
var gulp = require("gulp");
var filter = require("gulp-filter");
var del = require("del");
gulp.task("clean", function () {
return del("build");
});
gulp.task("build", ["clean"], function () {
return gulp.src(["src/**", "!src/composer.*", "LICENSE"])
.pipe(gulp.dest("build/premium"))
.pipe(filter(["**", "!plugins/**", "plugins/index.php"]))
.pipe(gulp.dest("build/free"));
});
The patterns passed to filter
are relative paths. Since the gulp.src
pattern has src/**
it means they are relative to src
.
Note also that del
cannot be passed straight to .pipe()
as it returns a promise. It can be returned from a task, like the clean
task does.
这篇关于在 gulp 任务中删除文件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!