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I have this code:

var convert = spawn("gm", ["convert"].concat(parameters));
// output stream
obj.outStream = new BufferList();

convert.stderr.pipe(process.stderr, { end: false });
// put the output in the stream TOO
convert.stdout.pipe(obj.outStream);
// send the image to the input
obj.stream.pipe(throttle).pipe(convert.stdin);

How can I suppress the output of the "convert" process, without suppressing the input and the output to obj.outStream too?

The reason is because I don't want to output that to the user, as it does now.

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Could you clarify what you actually mean? You say you want to suppress output without suppressing output and don't want output and that doesn't make any sense. –  hexacyanide Sep 17 '13 at 16:01
    
sorry. I meant that if you open the console, with this code, you see the image converted (that is the output of the gm command). I don't want that. However I want the image's stream in the obj.outStream to work with it before returning it to the user. –  Filnik Sep 17 '13 at 16:06
    
So you're saying convert.stdout.pipe(obj.outStream); pipes the output, but it still shows in console? Is there a possibility that the application pipes to stderr instead? –  hexacyanide Sep 17 '13 at 16:14
    
yes, exactly. There's also stderr, but it's correctly handled in another part of the code. –  Filnik Sep 17 '13 at 16:37

2 Answers 2

up vote 0 down vote accepted

What you're probably seeing in the output is convert.stderr because you are piping it to process.stderr, which is the error output of your child process' master. When you spawn a child process, by default, no stdio is handled.

var spawn = require('child_process').spawn'
var child = spawn('gm', ['convert']);

The code that you've shown is that you're directly piping the child's stderr to the main process' stderr and piping stdout to your outStream. That means the only possible output you can see is convert.stderr.

To fix this, ignore stderr.

var obj = {
  outStream: new BufferList()
};

var spawn = require('child_process').spawn'
var child = spawn('gm', ['convert'], {
  stdio: ['pipe', obj.outStream, 'ignore']
});

With this, you have the stdin stream as it normally is, stdout piped to obj.outStreamm and stderr ignored.

share|improve this answer
    
the problem was actually not the err but the fact that I pipe the result in another part of the code to the std.out (and it was a lot below in the code). Unfortunately it's not something that I wrote, but it's something I have to maintain. However, thanks for the help! :) –  Filnik Sep 18 '13 at 8:30

See the docs you can use listeners or use the 'ignore' property.

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I've tried with the ignore, but it will affect both the terminal output and the output to the variable (at least, how I used it). –  Filnik Sep 17 '13 at 16:07

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