Pure Python package for communicating with Blackrock Cerebus devices
From a shell...
pip install pycbsdk
Then in python
from pycbsdk import cbsdk
params_obj = cbsdk.create_params()
nsp_obj = cbsdk.get_device(params_obj) # NSPDevice instance. This will be the first argument to most API calls.
runlevel = cbsdk.connect(nsp_obj) # Bind sockets, change device run state, and get device config.
config = cbsdk.get_config(nsp_obj)
print(config)
You may also try one of the provided test scripts
python -m pycbsdk.examples.print_rates
or via the entrypointpycbsdk-rates
.python -m pycbsdk.examples.comments
pycbsdk
is a pure Python package for communicating with a Blackrock Neurotech Cerebus device. It is loosely based on Blackrock's cbsdk
, but shares no code nor is pycbsdk
supported by Blackrock.
pycbsdk
's API design is intended to mimic that of a C-library. Indeed, a primary goal of this library is to help prototype libraries in other languages. After all, Python is a poor choice to handle high throughput data without some compiled language underneath doing all the heavy lifting.
However, it's pretty useful as is! And so far it has been good-enough for some quick test scripts, and it even drops fewer packets than CereLink. So, please use it, and contribute! We are more than happy to see the API expand to support more features, or even to have an additional "pythonic" API.
Upon initialization, the NSPDevice
instance configures its sockets (but no connection yet), it allocates memory for its mirror of the device state, and it registers callbacks to monitor config state.
When the connection to the device is established, two threads are created and started:
CerebusDatagramThread
- Makes heavy use of
asyncio
- A Receiver Coroutine retrieves datagrams, slices into generic packets, enqueues them in the receiver queue
- A Sender Coroutine monitors a sender queue and immediately sends found packets.
- Makes heavy use of
PacketHandlerThread
- Monitors the receiver queue.
- Updates device state (e.g., mirrors device time)
- Materializes the generic packets into specific packets.
- Calls registered callbacks depending on the packet type.
connect()
has startup_sequence=True
by default. This will cause the SDK to attempt to put the device into a running state. Otherwise, it'll stay in its original run state.
After the connection is established, the client can use API functions to:
- Get / Set config
set_config
andset_channel_config
do not do anything yetset_channel_spk_config
andset_channel_config_by_packet
do things and are blocking.get_config
is non-blocking by default and will simply read the local mirror of the config. However, ifforce_refresh=True
is passed as a kwarg, then this function will block and wait for a reply from the device. Use this sparingly.
- Register a callback to receive data as soon as it appears on the handler thread.
This and more should appear in the documentation at some point in the future...
- This library takes exclusive control over the UDP socket on port 51002 and thus cannot be used with Central, nor any other instance of
pycbsdk
. You only get one instance ofpycbsdk
or Central per machine.- CereLink's cerebus.cbpy uses shared memory and therefore can work in parallel to Central or other cbpy instances.
- The API is sparse but is filling out over time. Use the issue tracker to make requests for features that you need.
- For now, our dependencies are not compatible with NoGIL Python 3.13. This means that despite using threading, if your callback functions are slow and hold up the PacketHandlerThread, this could hold up datagram retrieval and ultimately cause packets to be dropped.
- Socket configuration is still finicky and platform-specific. On Windows you might need to supply the address of the local adapter pycbsdk is binding (e.g.,
--client-addr 192.168.137.198
), but on MacOS you must bindINADDR_ANY
, or--client-addr 0.0.0.0
, which is the default in most cases and can be omitted.