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I am using the npm library request.

Everytime I call request() I would like to actually call request().on('error', (e) => doSomething()).

Is there a way to override the request() prototype to always call my overridden method?

I have tried setting this before subsequent request() calls:

request.prototype.on('error', (e) => doSomething())`

and I have also tried:

request.prototype = (uri) => request(uri).on('error', (e) => doSomething())

Thanks for the help.

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    Why not to create your own wrapper and don't try monkeypatch it? Somewhere in your code\module export function request() { return request.on('error', doSomething) } May 24 '20 at 14:59
  • @EugeneObrezkov that is an obvious and sufficient solution that I did not think about. Thank you for your comment and help. A wrapper is a proper approach here and worked fine. May 24 '20 at 15:03
  • FYI, request() is now deprecated. You should probably not be writing new code with it. A list of alternatives is here which all support promises which is the preferred way of programming and handling asynchronous errors now anyway. I'm using got() myself.
    – jfriend00
    May 24 '20 at 15:18
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Wrapper. I need a wrapper. I was able to solve the general requirement with a simple wrapper method. Thanks to @Eugene Obrekov comment above. I simply did the following:

export function request() { return request.on('error', doSomething()) }

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