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webrtc_sendrecv.py: Use default arg for server URL
Part-of: <https://gitlab.freedesktop.org/gstreamer/gstreamer/-/merge_requests/1864>
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1 changed files with 3 additions and 2 deletions
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@ -42,7 +42,7 @@ class WebRTCClient:
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self.pipe = None
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self.webrtc = None
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self.peer_id = peer_id
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self.server = server or 'wss://webrtc.nirbheek.in:8443'
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self.server = server
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async def connect(self):
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self.conn = await websockets.connect(self.server)
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@ -190,7 +190,8 @@ if __name__ == '__main__':
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sys.exit(1)
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parser = argparse.ArgumentParser()
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parser.add_argument('peerid', help='String ID of the peer to connect to')
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parser.add_argument('--server', help='Signalling server to connect to, eg "wss://127.0.0.1:8443"')
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parser.add_argument('--server', default='wss://webrtc.nirbheek.in:8443',
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help='Signalling server to connect to, eg "wss://127.0.0.1:8443"')
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args = parser.parse_args()
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our_id = random.randrange(10, 10000)
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c = WebRTCClient(our_id, args.peerid, args.server)
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