Skip to main content

Peer-to-peer RDMA zero-copy L3 KV-cache backend for SGLang HiCache

Project description

PeerCache

English · 简体中文

CI Docs License

A lightweight, peer-to-peer L3 storage backend for SGLang HiCache, built for PD-disaggregated (prefill/decode) inference: prefill workers publish KV pages, decode workers read them back over RDMA with zero CPU copies.

Docs: https://flymysql.github.io/PeerCache/

PeerCache gives you Mooncake-style RDMA zero-copy KV-cache sharing across nodes, but without the centralized master + metadata services. Instead it uses:

  • Embedded service discovery — no separate meta process. One node (chosen by discovery_addr) auto-hosts the discovery service in-process; nodes register their endpoint, heartbeat, and pull the live membership list.
  • A consistent-hash distributed directory (DHT) — the mapping key -> {data_node, remote_addr, rkey, length} is sharded across all nodes by hashing the key. There is no central metadata store.
  • Data stays local on writeset() copies the page into a node-local published pool (a host memcpy, no network, no master) and pushes only a tiny location record to the directory.
  • One-sided RDMA READ on readget() looks up the directory, then issues a zero-copy IBV_WR_RDMA_READ straight into SGLang's registered host buffer.
  • Concurrent multi-threaded I/O — a per-peer channel pool (each an RC QP with its own completion queue) lets reader/writer threads run with no shared-CQ contention; the control plane parallelises directory lookups too.
  • Disk persistence tier (L4) — pages evicted from memory spill to disk (default /data/peercache/, 100GB) and are promoted back into the pool on a later read (locally or by a remote reader).
  • Built-in monitoring — Prometheus /metrics + an embedded HTML dashboard (default port 31997): hit rate, throughput, latency p50/p99, mem/disk usage.

Architecture

PeerCache splits into a C++ data plane (raw RDMA verbs) and a Python control plane (discovery, directory, pool). The meta node only tracks membership; the key -> location map is sharded across every node by consistent hashing, and the KV bytes never leave the node that produced them until a peer reads them directly.

flowchart LR
    subgraph A["Node 0 — prefill / producer"]
        S0["PeerCacheStore"]
        P0[("Published pool MR (LRU)")]
        D0["Directory shard"]
    end
    subgraph B["Node 1 — decode / consumer"]
        S1["PeerCacheStore"]
        R1[("Receive MR = SGLang kv_buffer")]
        D1["Directory shard"]
    end
    M(["Embedded discovery / membership"])

    S0 -- "set(): local memcpy" --> P0
    S0 -- "PUT key→loc (hash)" --> D1
    S1 -- "GET key (hash)" --> D0
    S1 == "one-sided RDMA READ (zero copy)" ==> P0
    P0 -. "lands directly in" .-> R1
    S0 -. "register / heartbeat" .-> M
    S1 -. "register / heartbeat" .-> M
write:  set() ── local memcpy ──> published pool MR
                └── PUT key->{node,addr,rkey,len} ──> directory shard (hash(key))
read:   get() ── GET key ──> directory shard ──> {node,addr,rkey,len}
                └── one-sided RDMA READ ──> local host buffer (zero copy)
  • C++ data plane (cpp/): raw libibverbs + librdmacm. RC QPs, one-sided READ/WRITE, per-peer channel pool with private CQs for concurrency. Exposed to Python via pybind11 as the _peercache module.
  • Python control plane (python/peercache/): TCP RPC, service discovery, consistent-hash ring, distributed directory, and the published-pool with LRU.
  • TCP fallback transport: a pure-Python transport that mirrors the RDMA API so the design can be validated end-to-end on machines without RDMA hardware.

Two-MR model (correctness)

SGLang's host KV buffer is the L2 tier and is evicted/overwritten by HiCache, so we cannot register its address into the directory directly (dangling reference). Each node therefore registers two memory regions:

  1. Receive MR = mem_pool_host.kv_buffer — destination of one-sided READ on get.
  2. Published pool MR = a backend-owned host pool with LRU — source of READ on remote nodes. set memcpys the page into this pool (node-local, no network) and publishes its addr+rkey+len to the directory. Eviction from the pool deletes the corresponding directory entry, so a published address stays valid until evicted.

See the Architecture docs for the full design.

Why simpler than Mooncake?

Mooncake PeerCache
metadata central master + metadata service sharded directory (consistent hash)
data placement dedicated managed pool stays on producing node
coordination master allocates / tracks objects only service discovery on meta node
transfer RDMA zero-copy RDMA zero-copy (one-sided READ)

Install

From PyPI (recommended)

pip install peercache

This builds the C++ data plane from source, so the target host needs a C++17 toolchain, CMake ≥ 3.18, and the RDMA dev headers (libibverbs / librdmacm, e.g. rdma-core or Mellanox OFED). If those headers are absent, the build automatically falls back to a stub module and the pure-Python TCP transport.

To force the no-RDMA build explicitly (control plane + TCP fallback only, e.g. on a laptop or in CI):

pip install peercache --config-settings=cmake.define.PEERCACHE_NO_RDMA=ON

From source

git clone https://github.com/flymysql/PeerCache.git
cd PeerCache
pip install .                 # or: pip install -e ".[test]"

Run with SGLang

The meta service is embedded — there is no separate meta process. Point discovery_addr at one node's IP on every node; the node whose IP matches auto-starts the discovery service in-process.

# On every SGLang node, set discovery_addr to the SAME node's IP (say node-0).
# node-0 detects the IP is itself and hosts the embedded meta automatically.
python -m sglang.launch_server --enable-hierarchical-cache \
  --hicache-storage-backend dynamic \
  --hicache-storage-backend-extra-config \
  '{"backend_name":"peercache","module_path":"peercache.store","class_name":"PeerCacheStore","discovery_addr":"NODE0_IP:31998","protocol":"rdma","device_name":"mlx5_0","global_segment_size":"4gb"}'

(Optionally, you can still run a standalone meta with peercache-meta --bind 0.0.0.0:31998 if you prefer a dedicated discovery host.)

See examples/sglang_launch.md for details.

Benchmarks

A systematic benchmark suite ships inside the package and is exposed as a single console command (no repo clone, no PYTHONPATH). It drives PeerCache's HiCacheStorage interface exactly as SGLang HiCache does (PD-disaggregated batch_set_v1 / batch_exists / batch_get_v1) and reports throughput (pages/s, tokens/s, GB/s) and latency tail (p50/p95/p99/p999/max) across a sweep of thread models, including the full-load saturation/peak throughput.

Measured baseline (cross-host RDMA, GET, MLA)

On 2× AMD EPYC 9K84 + 8× ConnectX-7 (RoCEv2, MTU 4096, MLNX_OFED 5.8):

scenario GET throughput
single NIC, PeerCache 46.0 GB/s (368 Gbps) — ~94% of bare ib_read_bw (49.0 GB/s)
single process, 8 rails (1 MiB pages) 147.6 GB/s (1.18 Tbps)
full machine, 8 NICs, multi-process 413.1 GB/s (≈ 3.3 Tbps)

PeerCache GET throughput: single NIC → whole machine

Methodology, charts, and reproduce commands: Performance baseline.

pip install peercache

# RDMA hardware (publishable numbers)
peercache-bench suite --device-name mlx5_0 --layout mla --page-size 131072 \
    --batch-size 32 --concurrencies 1,2,4,8,16,32,64 --duration 10 --tag rdma

peercache-bench subcommands: latency, throughput, saturation, suite (SGLang-HiCache), plus micro, mooncake, compare.

RDMA-first. PeerCache is built on RDMA one-sided READ; publishable figures must be measured on RDMA hardware. The TCP fallback is for functional smoke testing only and must not be quoted. See the bench README and the Benchmarks docs for the methodology, thread models, metric definitions, and reproduction recipe.

Test

pip install -e ".[test]"
pytest -q

Maintainer setup (one-time)

  • GitHub Pages: Settings → Pages → Build and deployment → Source = GitHub Actions. The Docs workflow then publishes to https://flymysql.github.io/PeerCache/ on every push to main.
  • PyPI Trusted Publishing: on the PyPI peercache project, add a GitHub publisher (owner flymysql, repo PeerCache, workflow release.yml, environment pypi). Tagging vX.Y.Z then builds the sdist, attaches it to a GitHub Release, and publishes to PyPI. Until configured, the PyPI step is non-blocking and the GitHub Release still ships the package.

Project details


Download files

Download the file for your platform. If you're not sure which to choose, learn more about installing packages.

Source Distribution

peercache-0.6.2.tar.gz (298.3 kB view details)

Uploaded Source

Built Distributions

If you're not sure about the file name format, learn more about wheel file names.

peercache-0.6.2-cp312-cp312-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl (214.8 kB view details)

Uploaded CPython 3.12manylinux: glibc 2.27+ x86-64manylinux: glibc 2.28+ x86-64

peercache-0.6.2-cp311-cp311-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl (214.9 kB view details)

Uploaded CPython 3.11manylinux: glibc 2.27+ x86-64manylinux: glibc 2.28+ x86-64

peercache-0.6.2-cp310-cp310-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl (213.3 kB view details)

Uploaded CPython 3.10manylinux: glibc 2.27+ x86-64manylinux: glibc 2.28+ x86-64

peercache-0.6.2-cp39-cp39-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl (213.8 kB view details)

Uploaded CPython 3.9manylinux: glibc 2.27+ x86-64manylinux: glibc 2.28+ x86-64

File details

Details for the file peercache-0.6.2.tar.gz.

File metadata

  • Download URL: peercache-0.6.2.tar.gz
  • Upload date:
  • Size: 298.3 kB
  • Tags: Source
  • Uploaded using Trusted Publishing? Yes
  • Uploaded via: twine/6.1.0 CPython/3.13.12

File hashes

Hashes for peercache-0.6.2.tar.gz
Algorithm Hash digest
SHA256 4fca4988183c96c1ab28baf23be8b280d6039d762363d964976d60ab277b0370
MD5 d316d8e517aa47575174927859a5cefc
BLAKE2b-256 95bbbf538320166f4cc34bfb6c58250b00676760f1479ecd22aeaa5667b7f417

See more details on using hashes here.

Provenance

The following attestation bundles were made for peercache-0.6.2.tar.gz:

Publisher: release.yml on flymysql/PeerCache

Attestations: Values shown here reflect the state when the release was signed and may no longer be current.

File details

Details for the file peercache-0.6.2-cp312-cp312-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl.

File metadata

File hashes

Hashes for peercache-0.6.2-cp312-cp312-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl
Algorithm Hash digest
SHA256 86dc1e168ad3a042667797c80e64edacb5d128577d5dabd05b57e3492e347514
MD5 028768f99d8e3008ae59ee49aa3b91e9
BLAKE2b-256 cc9dca4390e8b5195b29845598b24aaca78f4e8f971f7d81d1e6a84a959781ca

See more details on using hashes here.

Provenance

The following attestation bundles were made for peercache-0.6.2-cp312-cp312-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl:

Publisher: release.yml on flymysql/PeerCache

Attestations: Values shown here reflect the state when the release was signed and may no longer be current.

File details

Details for the file peercache-0.6.2-cp311-cp311-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl.

File metadata

File hashes

Hashes for peercache-0.6.2-cp311-cp311-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl
Algorithm Hash digest
SHA256 c4325afdb056ac47d5313a48c8f73f81a7cbdf080fe2a783c314a66eedac4f0b
MD5 122beb97f3e55c1fb172b4495d79fb89
BLAKE2b-256 acf6cfa991d929bc8ee413ba9217fd19a46fb8bbbf85379a60ec37f209801848

See more details on using hashes here.

Provenance

The following attestation bundles were made for peercache-0.6.2-cp311-cp311-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl:

Publisher: release.yml on flymysql/PeerCache

Attestations: Values shown here reflect the state when the release was signed and may no longer be current.

File details

Details for the file peercache-0.6.2-cp310-cp310-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl.

File metadata

File hashes

Hashes for peercache-0.6.2-cp310-cp310-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl
Algorithm Hash digest
SHA256 c8a96d1648cfe79661790d50c35fc7d320ed8daf267df039bf2c46166f0babc9
MD5 08647b70b7ef67c50a657f53cb35f2ef
BLAKE2b-256 05db2885abab7e3b6f0839e7d9e284fd189d7a3158878b280ea2c29a4680fbd2

See more details on using hashes here.

Provenance

The following attestation bundles were made for peercache-0.6.2-cp310-cp310-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl:

Publisher: release.yml on flymysql/PeerCache

Attestations: Values shown here reflect the state when the release was signed and may no longer be current.

File details

Details for the file peercache-0.6.2-cp39-cp39-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl.

File metadata

File hashes

Hashes for peercache-0.6.2-cp39-cp39-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl
Algorithm Hash digest
SHA256 5f3089d44f925c669226848c795bb321da896143fd01d2025cb0706f88ddbc1e
MD5 d00638aef1c17313635a4407f5ed79d6
BLAKE2b-256 70f5c1a5e48428f3f5763840d14e32643d894da84fbe71df57f5a4157009f2d7

See more details on using hashes here.

Provenance

The following attestation bundles were made for peercache-0.6.2-cp39-cp39-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl:

Publisher: release.yml on flymysql/PeerCache

Attestations: Values shown here reflect the state when the release was signed and may no longer be current.

Supported by

AWS Cloud computing and Security Sponsor Datadog Monitoring Depot Continuous Integration Fastly CDN Google Download Analytics Pingdom Monitoring Sentry Error logging StatusPage Status page