Lei, HUANG 7fa6f5f98e feat: add riscv64 cross-build support (#8820)
* feat: add riscv64 cross-build support

Add the missing build infrastructure for riscv64gc-unknown-linux-gnu.
The codebase itself already compiles cleanly for riscv64 (verified with
`cargo check --workspace --target riscv64gc-unknown-linux-gnu`): all
architecture-sensitive dependencies support it (tikv-jemalloc-sys,
aws-lc-sys, ring, pprof, simd-json).

- .cargo/config.toml: set riscv64-linux-gnu-gcc as the linker for the
  riscv64gc-unknown-linux-gnu target
- rust.yml: add a check-riscv64 CI job that cross-checks the whole
  workspace to prevent regressions from future dependency changes
- docker/dev-builder/riscv64/Dockerfile: new cross dev-builder image
  with gcc/g++-riscv64-linux-gnu and the riscv64 rust target
- Makefile: add dev-builder-riscv64 and build-riscv64-bin targets

Verified end-to-end: the produced riscv64 binary starts in standalone
mode under qemu and serves SQL (create/insert/select) over HTTP.

Signed-off-by: Lei, HUANG <mrsatangel@gmail.com>

* ci: build riscv64 artifacts in the release workflow

- release.yml: add build-linux-riscv64-artifacts job that cross-compiles
  greptime for riscv64gc-unknown-linux-gnu on the amd64 runner with the
  dev-builder-riscv64 image, and uploads greptime-linux-riscv64-*
  artifacts. The job is wired into the needs of publish-github-release,
  release-cn-artifacts and stop-linux-amd64-runner. Integration tests
  are skipped since the cross-compiled binary cannot run on the host.
- release-dev-builder-images.yaml + build-dev-builder-images action:
  build and push the dev-builder-riscv64 image to DockerHub, and sync
  it to ECR and ACR via skopeo like the other dev-builder images.
- Makefile: DEV_BUILDER_RISCV64_IMAGE_TAG now defaults to
  DEV_BUILDER_IMAGE_TAG so the existing tag-bump automation keeps the
  riscv64 image tag in sync.

Signed-off-by: Lei, HUANG <mrsatangel@gmail.com>

* fix: forward cargo extension in riscv64 build

Pass CARGO_EXTENSION through build-riscv64-bin just like the existing
build-by-dev-builder target, so wrappers such as sccache are preserved
inside the cross-build container.

Signed-off-by: Lei, HUANG <mrsatangel@gmail.com>

* ci: check riscv64 release feature graph

Check all workspace targets with the servers/dashboard feature enabled so
the riscv64 CI job covers the same optional dependency graph used by the
release artifact build.

Signed-off-by: Lei, HUANG <mrsatangel@gmail.com>

* fix: gate riscv64 latest tags to main pushes

Manual dev-builder workflow dispatches now publish only their immutable
version tag. Update DockerHub and ECR latest tags only for the workflow's
main-branch push event, preventing feature-branch builds from replacing
the shared latest image.

Signed-off-by: Lei, HUANG <mrsatangel@gmail.com>

* docs: include riscv64 in release input description

Update the build_linux_artifacts workflow input description to reflect
that it now triggers amd64, arm64, and riscv64 artifact builds.

Signed-off-by: Lei, HUANG <mrsatangel@gmail.com>

* fix: fall back when riscv64 builder is unpublished

Before building a release artifact, pull the pinned RISC-V dev-builder
from ECR. If the image has not been published yet, build the same tag
locally from the current Dockerfile so releases remain unblocked during
the builder-tag update window.

Signed-off-by: Lei, HUANG <mrsatangel@gmail.com>

---------

Signed-off-by: Lei, HUANG <mrsatangel@gmail.com>
2026-08-10 08:11:21 +00:00
2023-08-10 08:08:37 +00:00
2023-06-25 11:05:46 +08:00
2023-11-09 10:38:12 +00:00
2023-03-28 19:14:29 +08:00

GreptimeDB Logo

One database for metrics, logs, and traces
replacing Prometheus, Loki, and Elasticsearch

The unified OpenTelemetry backend — with SQL + PromQL on object storage.

User Guide | API Docs | Roadmap 2026

Stable Canary Nightly

stable for production  ·  latest includes pre-releases  ·  nightly is a weekly snapshot of main

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Introduction

GreptimeDB is an open-source observability database built for Observability 2.0 — treating metrics, logs, and traces as one unified data model (wide events) instead of three separate pillars.

Use it as the single OpenTelemetry backend — replacing Prometheus, Loki, and Elasticsearch with one database built on object storage. Query with SQL and PromQL, scale without pain, cut costs up to 50×.

Overview

A quick overview of what GreptimeDB ingests, how it connects to other systems, and what its distributed engine lets you do.

GreptimeDB Overview

Features

Feature Description
Observability 2.0 native Logs, metrics, and traces in one engine with SQL + PromQL. Native OpenTelemetry, Prometheus remote write, and Jaeger. Migrate one signal at a time, or use as a single backend.
Elastic compute-storage separation Scale reads independently with horizontal replicas. Serve high-concurrency workloads from dashboards, alerting, and AI agents — without resharding or data migration.
Sub-second on PBEB-scale data Columnar engine with fulltext, inverted, and skipping indexes. Written in Rust. Designed for high-concurrency point queries, not just analytical scans.
50× lower cost Object storage (S3, GCS, Azure Blob) as primary storage, with a tiered cache (memory + local disk) to keep writes and queries fast.

Perfect for:

  • Replacing Prometheus + Loki + Elasticsearch with a single observability backend
  • Scaling past Prometheus — high cardinality, long-term storage, no Thanos/Mimir overhead
  • AI/agent workloads — store GenAI telemetry (OTel GenAI conventions), and serve high-concurrency reads from SRE/developer agents via horizontal read replicas
  • Cutting observability costs with object storage (up to 50× savings on traces, 30% on logs)
  • Edge-to-cloud observability with unified APIs on resource-constrained devices

Why Observability 2.0? Three separate databases for metrics, logs, and traces means three storage layers, three query languages, and three sets of dashboards. GreptimeDB stores all three as timestamped wide events in one columnar engine — JOIN across signals in SQL, run one stack instead of three, and ingest AI agent telemetry the same way. Read more: Observability 2.0 and the Database for It.

Learn more in Why GreptimeDB.

How GreptimeDB Compares

Capability GreptimeDB Prometheus / Thanos / Mimir Grafana Loki Elasticsearch
Data types Metrics, logs, traces Metrics only Logs only Logs, traces
Query language SQL + PromQL PromQL LogQL Query DSL
Storage Native object storage (S3, etc.) Local disk + object storage (Thanos/Mimir) Object storage (chunks) Local disk
Scaling Compute-storage separation, stateless nodes Federation / Thanos / Mimir — multi-component, ops heavy Stateless + object storage Shard-based, ops heavy
Cost efficiency Up to 50× lower storage cost High at scale Moderate High (inverted index overhead)
OpenTelemetry Native (metrics + logs + traces) Partial (metrics only) Partial (logs only) Via instrumentation

Benchmarks:

Architecture

GreptimeDB can run in two modes:

  • Standalone — single binary for development and small deployments.
  • Distributed — four components, each independently scalable:
    • Frontend — protocol entry (OTel, Prometheus, MySQL/PostgreSQL, gRPC, ingestion APIs for Elasticsearch/InfluxDB/Loki) and the distributed query engine. Stateless, scales horizontally.
    • Datanode — region engine with WAL, memtable, SST, cache, compaction, and indexes. Persists data to object storage. Elastic.
    • Metasrv — metadata, routing, repartitioning, autopilot, and security. Backed by a pluggable KV layer (etcd or RDS).
    • Flownode (optional) — continuous flow computation (streaming and materialized views).

For deeper coverage, see the architecture doc or DeepWiki.

GreptimeDB System Overview

Try GreptimeDB

For AI agents — paste this prompt into your agent:

Read https://docs.greptime.com/SKILL.md and follow the instructions
to deploy, configure, ingest, and query GreptimeDB.
docker run -p 127.0.0.1:4000-4003:4000-4003 \
  -v "$(pwd)/greptimedb_data:/greptimedb_data" \
  --name greptime --rm \
  greptime/greptimedb:latest standalone start \
  --http-addr 0.0.0.0:4000 \
  --grpc-bind-addr 0.0.0.0:4001 \
  --mysql-addr 0.0.0.0:4002 \
  --postgres-addr 0.0.0.0:4003

Dashboard: http://localhost:4000/dashboard

Read more in the full Install Guide.

Troubleshooting:

  • Cannot connect to the database? Ensure that ports 4000, 4001, 4002, and 4003 are not blocked by a firewall or used by other services.
  • Failed to start? Check the container logs with docker logs greptime for further details.

Getting Started

Build From Source

Prerequisites:

  • Rust toolchain — nightly, pinned by rust-toolchain.toml
  • Protobuf compiler (>= 3.15)
  • C/C++ building essentials: gcc / g++ / autoconf and the glibc dev package (libc6-dev on Ubuntu, glibc-devel on Fedora)
  • Python toolchain (optional, only for some test scripts)

Build and run:

make                          # build greptime binary
cargo run -- standalone start # start in standalone mode

Common dev commands:

make fmt            # format Rust code
make clippy         # lint (fails on warnings)
make test           # unit + integration tests (uses cargo-nextest)
make sqlness-test   # SQL regression tests

See the Contribution Guidelines for the full developer workflow.

Tools & Extensions

Project Status

GreptimeDB is generally available, with stable APIs and regular releases. It runs in production at scale — OceanBase Cloud operates 80+ GreptimeDB clusters managing 300 TB of logs, cutting log storage cost by 60% after migrating from Grafana Loki. See more in case studies.

Read the v1.0 highlights and 2026 roadmap, or browse the version reference.

If GreptimeDB is useful to you, please star the repo.

Known Users

Community

We invite you to engage and contribute!

License

GreptimeDB is an open-core project. Its core is licensed under the Apache License 2.0.

A small set of peripheral, enterprise-only features are gated behind the enterprise Cargo feature (not built by default) and are governed by the separate GreptimeDB Enterprise License. Source files under that license carry an explicit Enterprise License header.

Commercial Support

Running GreptimeDB in your organization? We offer enterprise add-ons, services, training, and consulting. Contact us for details.

Contributing

Acknowledgement

Special thanks to all contributors! See AUTHOR.md.


All trademarks, logos, and brand names referenced in this README and in the Overview diagram are the property of their respective owners. Their use is for identification purposes only and does not imply endorsement or affiliation.

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