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I would like to get the subscription key of a subscriber ( SUB ) socket after it has been set.

Say I have the following socket :

import zmq
ctx = zmq.Context.instance()
sub_sock = ctx.socket(zmq.SUB)
sub_sock.bind("tcp://127.0.0.1:6667")
sub_sock.setsockopt(zmq.SUBSCRIBE, "foo1".encode('ascii'))

What I want to do is something like this ( pseudo-code ) :

sub_key = sub_sock.get_sub_key().decode("ascii")
sub_key = subkey[:-1] + "2"  # "foo2"

# unsubscribe all keys
sub_sock.setsockopt(zmq.UNSUBSCRIBE, '')

# subscribe to new key
sub_sock.setsockopt(zmq.SUBSCRIBE, sub_key.encode('ascii'))

Question :

However, I cannot discover a function that can retrieve the key of the subscriber socket. How can I retrieve the socket's subscription key?

System :

  • Python 3.6
  • libzmq version: 4.2.5
  • pyzmq version: 17.0.0
  • deserves [ +1 ] for having quoted all version details. – user3666197 Jun 28 '18 at 10:01
1

How can I retrieve the socket's subscription key ( ... after it has been set ) ?

Yes, one can, but only on PUB-side ( well, actually the XPUB clone of the PUB-behaviour archetype ) if that have been carefully configured with .setsockopt( { XPUB_VERBOSE | XPUB_VERBOSER }, 1 ) method so as to start serving channel-associated (X)SUB-s in this particular mode.

So, in an extreme need ( in a case of a SUB-side total loss of context or suffering from amnesia of it's own subscription-management ), one can setup the XSUB to also instantiate a utilitarian XPUB-instance with this additional .setsockopt( { XPUB_VERBOSE | XPUB_VERBOSER }, 1 ) configuration, { .bind() | .connect() } a link from-Home-Base to-Home-Base, and handle all the arrived (X)SUB-subscription details on-the-fly.

The native API documentation publishes all the details for doing this right.

A unique approach to learn one's own subscription details from a wire-tapping, yet doable.


Final remarks :

The ZeroMQ topic-filter is designed in a way more complex manner and optimised for speed ( high throughput, low latency ). It may handle units, hundreds, thousands, tens of thousands of subscriptions for each of the { .bind() | .connected() } peers.

These design-aspirations and focus on performance was the reason, there is no such function for ex-post asking a "librarian" for finding all "my own" subscription keys ( no matter if never remembered or plain forgotten ).

One may also realise, that since API v4.x, the ZeroMQ native handling started to manage topic-filtering on the (X)PUB-side, while older API versions reported this performance-critical operation to be deferred onto each of the (X)SUB-side(s), at the cost of the increased cummulative volumes of raw-network traffic, as all messages ( yes, indeed, ALL MESSAGES ) went from (X)PUB to all (X)SUB-s. Did anyone mention security concerns here?

# unsubscribe all keys                        // THIS WILL NOT FLY THAT WAY

The same reasoning stands behind a "missing" API call, asking for "forget all my own subscriptions", but one has to explicitly unsubscribe, in a one by one manner, or properly .close() the (X)SUB-side socket-instance and rather re-instantiate another one on a green field basis and re-{ .bind() | .connect() } it back to the infrastructure, so as to meet the set goal en-bloc.

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There is no support to get the subscriptions from the SUB socket. You will need to store them in your own data structure ( list, map, etc )

Some other info:

A SUB socket supports multiple simultaneous subscriptions.

The line below does not unsubscribe all keys, its actually unsubscribing the key "" which is a valid subscription.

# unsubscribe all keys
sub_sock.setsockopt(zmq.UNSUBSCRIBE, '')

You need to be explicit:

sub_sock.setsockopt(zmq.UNSUBSCRIBE, "foo1".encode('ascii'))
  • Thank you for mentioning that '' does not mean all keys. – NumesSanguis Jul 2 '18 at 6:43

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