Do not use it in Production, testnet only.
Basic repo demoing a simple AVS middleware with full eigenlayer integration. See this video walkthrough.
You will need foundry and zap-pretty and docker to run the examples below.
curl -L https://foundry.paradigm.xyz | bash
foundryup
go install github.com/maoueh/zap-pretty@latest
You will also need to install docker, and build the contracts:
make build-contracts
You will also need to install abigen if you want to make changes to the smart contracts and then generate the go bindings
make bindings
This simple session illustrates the basic flow of the AVS. The makefile commands are hardcoded for a single operator, but it's however easy to create new operator config files, and start more operators manually (see the actual commands that the makefile calls).
Start anvil in a separate terminal:
make start-anvil-chain-with-el-and-avs-deployed
The above command starts a local anvil chain from a saved state with eigenlayer and incredible-squaring contracts already deployed (but no operator registered).
Start the aggregator:
make start-aggregator
Register the operator with eigenlayer and incredible-squaring, and then start the process:
make start-operator
By default, the
start-operator
command will also setup the operator (seeregister_operator_on_startup
flag inconfig-files/operator.anvil.yaml
). To disable this, setregister_operator_on_startup
to false, and runmake cli-setup-operator
before runningstart-operator
.
We wrote a docker-compose.yml file to run and test everything on a single machine. It will start an anvil instance, loading a state where the eigenlayer and incredible-squaring contracts are deployed, start the aggregator, and finally one operator, along with prometheus and grafana servers. The grafana server will be available at http://localhost:3000, with user and password both set to admin
. We have created a simple grafana dashboard which can be used as a starting example and expanded to include AVS specific metrics. The eigen metrics should not be added to this dashboard as they will be exposed on the main eigenlayer dashboard provided by the eigenlayer-cli.
The architecture of the AVS contains:
- Eigenlayer core contracts
- AVS contracts
- ServiceManager which will eventually contain slashing logic but for M2 is just a placeholder.
- TaskManager which contains task creation and task response logic.
- The challenge logic could be separated into its own contract, but we have decided to include it in the TaskManager for this simple task.
- Set of registry contracts to manage operators opted in to this avs
- Task Generator
- in a real world scenario, this could be a separate entity, but for this simple demo, the aggregator also acts as the task generator
- Aggregator
- aggregates BLS signatures from operators and posts the aggregated response to the task manager
- For this simple demo, the aggregator is not an operator, and thus does not need to register with eigenlayer or the AVS contract. It's IP address is simply hardcoded into the operators' config.
- Operators
- Square the number sent to the task manager by the task generator, sign it, and send it to the aggregator
-
A task generator (in our case, same as the aggregator) publishes tasks once every regular interval (say 10 blocks, you are free to set your own interval) to the IncredibleSquaringTaskManager contract's createNewTask function. Each task specifies an integer
numberToBeSquared
for which it wants the currently opted-in operators to determine its squarenumberToBeSquared^2
.createNewTask
also takesquorumNumbers
andquorumThresholdPercentage
which requests that each listed quorum (we only use quorumNumber 0 in incredible-squaring) needs to reach at least thresholdPercentage of operator signatures. -
A registry contract is deployed that allows any eigenlayer operator with at least 1 delegated mockerc20 token to opt-in to this AVS and also de-register from this AVS.
-
[Operator] The operators who are currently opted-in with the AVS need to read the task number from the Task contract, compute its square, sign on that computed result (over the BN254 curve) and send their taskResponse and signature to the aggregator.
-
[Aggregator] The aggregator collects the signatures from the operators and aggregates them using BLS aggregation. If any response passes the quorumThresholdPercentage set by the task generator when posting the task, the aggregator posts the aggregated response to the Task contract.
-
If a response was sent within the response window, we enter the [Dispute resolution] period.
- [Off-chain] A challenge window is launched during which anyone can raise a dispute in a DisputeResolution contract (in our case, this is the same as the TaskManager contract)
- [On-chain] The DisputeResolution contract resolves that a particular operator’s response is not the correct response (that is, not the square of the integer specified in the task) or the opted-in operator didn’t respond during the response window. If the dispute is resolved, the operator will be frozen in the Registration contract and the veto committee will decide whether to veto the freezing request or not.
Below is a more detailed uml diagram of the aggregator and operator processes:
Every AVS node implementation is required to abide by the Eigenlayer AVS Node Specification. We suggest reading through the whole spec, including the keys management section, but the hard requirements are currently only to:
- implement the AVS Node API
- implement the eigen prometheus metrics
If you are using golang, you can use our metrics and nodeapi implementation in the eigensdk, just like this repo does. Otherwise, you will have to implement it on your own.
AVS Registry contracts have a stale view of operator shares in the delegation manager contract. In order to update their stake table, they need to periodically call the StakeRegistry.updateStakes() function. We are currently writing a cronjob binary to do this for you, will be open sourced soon!
See the integration tests README for more details.
When running on anvil, a typical log for the operator is
[2024-04-09 18:25:08.647 PDT] INFO (logging/zap_logger.go:49) rpc client is nil. Dialing aggregator rpc client
[2024-04-09 18:25:08.650 PDT] INFO (logging/zap_logger.go:49) Sending signed task response header to aggregator {"signedTaskResponse":"\u0026aggregator.SignedTaskResponse{TaskResponse:contractIncredibleSquaringTaskManager.IIncredibleSquaringTaskManagerTaskResponse{ReferenceTaskIndex:0x2, NumberSquared:4}, BlsSignature:bls.Signature{G1Point:(*bls.G1Point)(0x14000282068)}, OperatorId:[32]uint8{0xc4, 0xc2, 0x10, 0x30, 0xe, 0x28, 0xab, 0x4b, 0xa7, 0xb, 0x7f, 0xbb, 0xe, 0xfa, 0x55, 0x7d, 0x2a, 0x2a, 0x5f, 0x1f, 0xbf, 0xa6, 0xf8, 0x56, 0xe4, 0xcf, 0x3e, 0x9d, 0x76, 0x6a, 0x21, 0xdc}}"}
[2024-04-09 18:25:08.651 PDT] INFO (logging/zap_logger.go:49) Received error from aggregator {"err":"task 2 not initialized or already completed"}
[2024-04-09 18:25:08.651 PDT] INFO (logging/zap_logger.go:69) Retrying in 2 seconds
[2024-04-09 18:25:10.679 PDT] INFO (logging/zap_logger.go:49) Signed task response header accepted by aggregator. {"reply":false}
The error task 2 not initialized or already completed
is expected behavior. This is because the aggregator needs to setup its data structures before it can accept responses. But on a local anvil setup, the operator had time to receive the websocket event for the new task, square the number, sign the response, and send it to the aggregator process before the aggregator has finalized its setup. Hence, the operator retries sending the response 2 seconds later and it is accepted.