Hanzo AI 197dac4245 platformvm/txs/zap_native: batch 3 primitives — variable-length nested schemas (LP-023 Phase 1)
Five primitives. Each is fixed-stride at the entry level; variable
per-entry bytes/sub-list payloads live in shared sibling fields on
the parent tx, indexed by (start, count). This keeps List.At(i)
zero-allocation while supporting unbounded per-entry payload sizes.

  OutputList         stride  96  →  TransferableOutput
  InputList          stride  88  →  TransferableInput + shared SigIndicesArray
  CredentialList     stride  16  →  Credential        + shared SignatureArray
  WarpMessage        size    40  →  embedded {SourceNetwork, Payload}
  EvidenceList       stride  48  →  EvidenceEntry     + shared MessageBlobs/SignatureBlobs

Design choices:

- Stride is the entry-count semantics for SetList; the byte count from
  ListBuilder.Finish() is discarded. List.Object(i, stride) does the
  branch-free arithmetic.

- Variable per-entry data goes into a SIBLING field on the parent tx
  (not into the entry's stride): InputList → SigIndicesArray;
  CredentialList → SignatureArray; EvidenceList → MessageBlobs +
  SignatureBlobs. Each entry references its slice via (start, count).
  This pattern lets entries stay fixed-stride and accessors stay
  zero-allocation. Multi-input-shared signature arrays also enable
  signature deduplication when adjacent inputs share signers.

- Forward-only relOffsets per the F1 contract: SetBytes-backed payload
  fields (WarpMessage.Payload, EvidenceList parent's MessageBlobs/
  SignatureBlobs) flow through the F1-fixed zap.Object.Bytes which
  rejects negative bit-patterns.

- Read-only contracts on every []byte / by-value accessor are
  documented with the canonical defensive-copy idiom
  (append([]byte(nil), m...)) per AT1.

- Multi-address Owner is NOT yet supported at the wire layer; v3
  OutputList carries the single-address stub identical to
  TransferChainOwnershipTx. Multi-address callers still flow through
  the legacy codec gate behind LUXD_ENABLE_LEGACY_CODEC. The
  AddressList primitive ships in batch 4 (defer).

- Multi-signature credentials handled via the SignatureArray slice
  semantics — one Credential, N sigs. Post-quantum credentials
  (ML-DSA) are NOT YET on the v3 path; they keep flowing through
  legacy until their dedicated PQ Credential schema lands.

Round-trip tests (batch3_test.go) cover all five primitives + the
empty-list/null-pointer fallback path. go test passes; race-free.

Updated bench numbers for v3 batch-2 (the +1-byte TxKind tax):
  Parse geomean speedup vs legacy: 7.09× (was 8.39× pre-v3)
  Build geomean speedup vs legacy: 1.35× (build path was always
  closer to parity; structure-allocator dominates at small tx sizes)
2026-06-02 14:27:01 -07:00
2026-05-29 23:33:09 -07:00
2026-05-21 15:01:49 -07:00


Build Status Go Version License

Node implementation for the Lux network - a blockchains platform with high throughput, and blazing fast transactions.

Features

  • High Performance: Optimized for throughput with sub-second finality
  • Quasar Consensus: Quasar (BLS + Pulsar + ML-DSA) with Nova (linear chains) and Nebula (DAG chains) modes; sub-protocols include Photon, Wave, Focus, Flare, Horizon, Ray, Field
  • EVM Compatible: Full Ethereum Virtual Machine support on C-Chain
  • Multi-Chain Architecture: Platform (P), Exchange (X), and Contract (C) chains
  • Custom Nets: Create custom blockchain networks with configurable VMs
  • Cross-Chain Transfers: Native cross-chain asset transfers between chains
  • L1 Validators: Support for L1 (Layer 1) validator operations with BLS signatures
  • LP-118 Protocol: Implementation of LP-118 for warp message handling and aggregation

Installation

Lux is an incredibly lightweight protocol, so the minimum computer requirements are quite modest. Note that as network usage increases, hardware requirements may change.

The minimum recommended hardware specification for nodes connected to Mainnet is:

  • CPU: Equivalent of 8 AWS vCPU
  • RAM: 16 GiB
  • Storage: 1 TiB
    • Nodes running for very long periods of time or nodes with custom configurations may observe higher storage requirements.
  • OS: Ubuntu 22.04/24.04 or macOS >= 12
  • Network: Reliable IPv4 or IPv6 network connection, with an open public port.

If you plan to build Lux Node from source, you will also need the following software:

  • Go version >= 1.23.9
  • gcc
  • g++

Building From Source

Clone The Repository

Clone the Lux Node repository:

git clone git@github.com:luxfi/node.git
cd node

This will clone and checkout the master branch.

Building Lux Node

Build Lux Node by running the build task:

./scripts/run_task.sh build

The node binary is now in the build directory. To run:

./build/node

Binary Install (GitHub Releases)

Download the latest build for your operating system and architecture.

The Lux binary to be executed is named luxd.

Linux (amd64/arm64)

VERSION="vX.Y.Z"
GOARCH="amd64" # or arm64
curl -L -o node.tar.gz "https://github.com/luxfi/node/releases/download/${VERSION}/node-linux-${GOARCH}-${VERSION}.tar.gz"
tar -xzf node.tar.gz
./luxd --help

macOS (amd64/arm64)

VERSION="vX.Y.Z"
curl -L -o node.zip "https://github.com/luxfi/node/releases/download/${VERSION}/node-macos-${VERSION}.zip"
unzip node.zip
./luxd --help

Docker Install

Make sure Docker is installed on the machine - so commands like docker run etc. are available.

Building the Docker image of latest node branch can be done by running:

./scripts/run-task.sh build-image

To check the built image, run:

docker image ls

The image should be tagged as ghcr.io/luxfi/node:xxxxxxxx, where xxxxxxxx is the shortened commit of the Lux source it was built from. To run the Lux node, run:

docker run -ti -p 9630:9630 -p 9631:9631 ghcr.io/luxfi/node:xxxxxxxx /node/build/node

Running Lux

Connecting to Mainnet

To connect to the Lux Mainnet, run:

./build/node

You should see some pretty ASCII art and log messages.

You can use Ctrl+C to kill the node.

Connecting to Testnet

To connect to the Testnet, run:

./build/node --network-id=testnet

Creating a Local Testnet

The lux-cli is the easiest way to start a local network.

lux network start
lux network status

Bootstrapping

A node needs to catch up to the latest network state before it can participate in consensus and serve API calls. This process (called bootstrapping) currently takes several days for a new node connected to Mainnet.

A node will not report healthy until it is done bootstrapping.

Improvements that reduce the amount of time it takes to bootstrap are under development.

The bottleneck during bootstrapping is typically database IO. Using a more powerful CPU or increasing the database IOPS on the computer running a node will decrease the amount of time bootstrapping takes.

Generating Code

Lux Node uses multiple tools to generate efficient and boilerplate code.

Running protobuf codegen

To regenerate the protobuf go code, run scripts/run-task.sh generate-protobuf from the root of the repo.

This should only be necessary when upgrading protobuf versions or modifying .proto definition files.

To use this script, you must have buf (v1.31.0), protoc-gen-go (v1.33.0) and protoc-gen-go-grpc (v1.3.0) installed.

To install the buf dependencies:

go install google.golang.org/protobuf/cmd/protoc-gen-go@v1.33.0
go install google.golang.org/grpc/cmd/protoc-gen-go-grpc@v1.3.0

If you have not already, you may need to add $GOPATH/bin to your $PATH:

export PATH="$PATH:$(go env GOPATH)/bin"

If you extract buf to ~/software/buf/bin, the following should work:

export PATH=$PATH:~/software/buf/bin/:~/go/bin
go get google.golang.org/protobuf/cmd/protoc-gen-go
go get google.golang.org/protobuf/cmd/protoc-gen-go-grpc
scripts/run_task.sh generate-protobuf

For more information, refer to the GRPC Golang Quick Start Guide.

Running mock codegen

See the Contributing document autogenerated mocks section.

Versioning

Version Semantics

Lux Node is first and foremost a client for the Lux network. The versioning of Lux Node follows that of the Lux network.

  • v0.x.x indicates a development network version.
  • v1.x.x indicates a production network version.
  • vx.[Upgrade].x indicates the number of network upgrades that have occurred.
  • vx.x.[Patch] indicates the number of client upgrades that have occurred since the last network upgrade.

Library Compatibility Guarantees

Because Lux Node's version denotes the network version, it is expected that interfaces exported by Lux Node's packages may change in Patch version updates.

API Compatibility Guarantees

APIs exposed when running Lux Node will maintain backwards compatibility, unless the functionality is explicitly deprecated and announced when removed.

Supported Platforms

Lux Node can run on different platforms, with different support tiers:

  • Tier 1: Fully supported by the maintainers, guaranteed to pass all tests including e2e and stress tests.
  • Tier 2: Passes all unit and integration tests but not necessarily e2e tests.
  • Tier 3: Builds but lightly tested (or not), considered experimental.
  • Not supported: May not build and not tested, considered unsafe. To be supported in the future.

The following table lists currently supported platforms and their corresponding Lux Node support tiers:

Architecture Operating system Support tier
amd64 Linux 1
arm64 Linux 2
amd64 Darwin 2
amd64 Windows Not supported
arm Linux Not supported
i386 Linux Not supported
arm64 Darwin Not supported

To officially support a new platform, one must satisfy the following requirements:

Lux Node continuous integration Tier 1 Tier 2 Tier 3
Build passes
Unit and integration tests pass
End-to-end and stress tests pass

Security Bugs

We and our community welcome responsible disclosures.

Please refer to our Security Policy and Security Advisories.

S
Description
Lux blockchain node — multi-consensus, post-quantum ready
Readme BSD-3-Clause
1.4 GiB
Languages
Go 96.7%
Solidity 1.4%
Shell 1.2%
Dockerfile 0.4%
Makefile 0.1%
Other 0.1%