Node.js:捕获`child_process.spawn` 的标准输出 [英] Node.js: Capture STDOUT of `child_process.spawn`
问题描述
我需要在生成的子进程的自定义流输出中捕获.
I need to capture in a custom stream outputs of a spawned child process.
child_process.spawn(command[, args][, options])
例如
var s = fs.createWriteStream('/tmp/test.txt');
child_process.spawn('ifconfig', [], {stdio: [null, s, null]})
现在如何实时读取/tmp/test.txt?
看起来 child_process.spawn 没有使用 stream.Writable.prototype.write 也没有使用 stream.Writable.prototype._write 作为它的执行.
It looks like child_process.spawn is not using stream.Writable.prototype.write nor stream.Writable.prototype._write for its execution.
例如
s.write = function() { console.log("this will never get printed"); };
还有,
s.__proto__._write = function() { console.log("this will never get printed"); };
看起来它使用文件描述符幕后从 child_process.spawn 写入文件.
It looks like it uses file descriptors under-the-hood to write from child_process.spawn to a file.
这样做不起作用:
var s2 = fs.createReadStream('/tmp/test.txt');
s2.on("data", function() { console.log("this will never get printed either"); });
那么,如何获取子进程的STDOUT内容?
So, how can I get the STDOUT contents of a child process?
我想要实现的是将子进程的 STDOUT 流式传输到套接字.如果我将套接字直接提供给 child_process.spawn 作为 stdio 参数,它会在完成时关闭套接字,但我想保持打开状态.
What I want to achieve is to stream STDOUT of a child process to a socket. If I provide the socket directly to the child_process.spawn as a stdio parameter it closes the socket when it finishes, but I want to keep it open.
更新:
解决方案是使用默认的{stdio: ['pipe', 'pipe', 'pipe']} 选项并监听创建的.stdout子进程.
The solution is to use default {stdio: ['pipe', 'pipe', 'pipe']} options and listen to the created .stdout of the child process.
var cmd = child_process.spaw('ifconfig');
cmd.stdout.on("data", (data) => { ... });
现在,为了提高赌注,一个更具挑战性的问题:
Now, to up the ante, a more challenging question:
--如何读取子进程的STDOUT并保留颜色?
-- How do you read the STDOUT of the child process and still preserve the colors?
例如,如果您像这样将 STDOUT 发送到 process.stdout:
For example, if you send STDOUT to process.stdout like so:
child_process.spawn('ifconfig', [], {stdio: [null, process.stdout, null]});
它将保留颜色并将彩色输出打印到控制台,因为 .isTTY 属性在 process.stdout 上设置为 true.
it will keep the colors and print colored output to the console, because the .isTTY property is set to true on process.stdout.
process.stdout.isTTY // true
现在,如果您使用默认的 {stdio: ['pipe', 'pipe', 'pipe']},您将读取的数据将被去除控制台颜色.你是如何获得颜色的?
Now if you use the default {stdio: ['pipe', 'pipe', 'pipe']}, the data you will read will be stripped of console colors. How do you get the colors?
一种方法是使用 fs.createWriteStream 创建您自己的自定义流,因为 child_process.spawn 要求您的流具有文件描述符.
One way to do that would be creating your own custom stream with fs.createWriteStream, because child_process.spawn requires your streams to have a file descriptor.
然后将该流的 .isTTY 设置为 true,以保留颜色.
Then setting .isTTY of that stream to true, to preserve colors.
最后,您需要捕获 child_process.spawn 写入该流的数据,但由于 child_process.spawn 不使用 .prototype.write 或 .prototype._write 流,您需要以其他hacky方式捕获其内容.
And finally you would need to capture the data what child_process.spawn writes to that stream, but since child_process.spawn does not use .prototype.write nor .prototype._write of the stream, you would need to capture its contents in some other hacky way.
这可能就是 child_process.spawn 要求您的流具有文件描述符的原因,因为它绕过了 .prototype.write 调用并直接写入下的文件-引擎盖.
That's probably why child_process.spawn requires your stream to have a file descriptor because it bypasses the .prototype.write call and writes directly to the file under-the-hood.
有什么想法可以实现吗?
Any ideas how to implement this?
推荐答案
你可以不用临时文件:
var process = child_process.spawn(command[, args][, options]);
process.stdout.on('data', function (chunk) {
console.log(chunk);
});
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