hubmesh
Centrality-aware GraphRAG retrieval planner. Drop-in layer over any vector DB.
hubmesh is a Python library that improves multi-hop RAG quality on top of an existing
vector database. You don't replace your infrastructure — you add a smart planner between
your vector DB and your LLM.
What problem this solves
Naive vector retrieval ("embed query, get top-k by cosine similarity") fails on multi-hop questions like "Where was the founder of the company that acquired Slack born?" The correct answer requires retrieving entities along a reasoning path, not the single most similar item.
GraphRAG and HippoRAG showed that running a small Personalized PageRank over a knowledge
graph at query time can substantially improve multi-hop retrieval. hubmesh extends
that line with two contributions:
- Multi-component seed selection. Instead of picking PPR seeds by raw query similarity (which picks wrong-community seeds at high feature overlap), seeds are chosen by a multi-component score combining query relevance, structural fit, and coverage diversity.
- Budget-aware context packing. Once relevant entities are scored, pack them into the LLM's context window with explicit coverage and redundancy control rather than just truncating top-k.
The multi-component scoring pattern is adapted from the NNSI framework (Naidu Dsk, ICOMP'25 — to appear) for SDN topology optimization, repurposed here for retrieval planning.
Quickstart
In-memory (testing, small corpora)
from hubmesh import Planner
from hubmesh.adapters import InMemoryStore
embed = ... # callable: text -> np.ndarray
docs = [...] # list of Document or strings or dicts
store = InMemoryStore.from_documents(docs, embed=embed)
planner = Planner(store=store, embed=embed)
result = planner.retrieve(query="...", top_k=10, budget_tokens=4000)
Qdrant adapter (production)
from hubmesh import Planner
from hubmesh.adapters import QdrantStore
store = QdrantStore.from_documents(docs) # in-memory
store = QdrantStore.from_documents(docs, path="./qdrant_data") # on-disk
store = QdrantStore.from_documents(docs, url="http://localhost:6333") # remote
planner = Planner(store=store, embed=embed)
result = planner.retrieve(query="...", top_k=10)
Chroma adapter
from hubmesh.adapters import ChromaStore
store = ChromaStore.from_documents(docs) # ephemeral
store = ChromaStore.from_documents(docs, persist_directory="./chroma_data")
store = ChromaStore.from_documents(docs, host="localhost", port=8000)
Multi-hop / KG mode
from hubmesh.kg import build_entity_kg
import spacy
nlp = spacy.load("en_core_web_sm")
kg = build_entity_kg(docs, nlp=nlp)
planner = Planner(store=store, kg=kg, nlp=nlp)
result = planner.retrieve(query="Where was the founder of the company that bought Slack born?",
top_k=10, budget_tokens=4000)
# RetrievalResult includes reasoning paths showing why each doc was returned
for path in result.reasoning:
print(f" score={path.score:.3f} {' → '.join(path.node_ids)}")
LLM-extracted KG (richer than spaCy)
from hubmesh.kg_llm import build_entity_kg_llm
from hubmesh.entity_linker import EmbeddingLinker, make_st_embedder
def llm(prompt): # provider-agnostic — bring your own
return your_llm_call(prompt)
kg = build_entity_kg_llm(docs, llm=llm, cache_path="kg_cache.json")
# optional: cross-document entity dedup — same Linker protocol as the spaCy path
kg = build_entity_kg_llm(docs, llm=llm, cache_path="kg_cache.json",
linker=EmbeddingLinker(embed=make_st_embedder()))
planner = Planner(store=store, kg=kg)
Better entity linking
from hubmesh.kg import build_entity_kg
from hubmesh.entity_linker import EmbeddingLinker, make_st_embedder
# Cluster surface variations: "United States" / "U.S." / "USA" → one entity
linker = EmbeddingLinker(embed=make_st_embedder(), threshold=0.82)
kg = build_entity_kg(docs, linker=linker)
Iterative multi-hop: let your agent drive
r1 = planner.retrieve(query=question, top_k=5)
# your agent reads r1, spots the bridge entity, then aims hop 2 at it:
r2 = planner.retrieve(
query=question, top_k=5,
seed_entities=["Nimbus Analytics"], # merged with the query's own seeds
exclude_docs=[s.doc.id for s in r1.sources], # don't re-retrieve consumed docs
)
Seed mentions resolve through the alias index, so free-text entity names work. The query path stays deterministic and LLM-free — the planning intelligence lives in the caller.
MCP server: plug hubmesh into any agent
pip install "hubmesh[mcp]"
python -m spacy download en_core_web_sm
{"mcpServers": {"hubmesh": {"command": "hubmesh-mcp"}}}
Exposes the planner as deterministic operator tools over stdio —
index_corpus, retrieve (seed-steerable, as above), resolve_entities,
entity_neighbors, path_between, get_document, graph_stats,
list_corpora. Your agent is the solver: it decomposes the question,
reads each hop, and aims the next one; the server answers in
milliseconds with zero LLM calls. Corpora persist as plain JSON/NPZ
under ~/.hubmesh/corpora.
The server warms up models and persisted corpora in the background at launch (~5-10s on first run), so tool calls stay fast from the start — relevant for strict-timeout connector clients (Perplexity, etc.).
For web-based connector clients, serve SSE natively — no gateway process needed:
hubmesh-mcp --transport sse --port 8000 --allow-tunnel
ngrok http 8000 # paste https://<your-url>/sse into the connector
Tunnel field notes (from a live Perplexity integration): ngrok works
(free tier included); cloudflared quick tunnels buffer SSE bodies
and hang tool calls; supergateway is unnecessary here and crashes
on reconnect. --allow-tunnel accepts the tunnel's forwarded Host
header — without it, proxied requests get 421 Misdirected Request.
Full field report — setup, error decoder, a 9/9 test battery run through Perplexity, and two findings about reasoning-model behaviour — in docs/perplexity.md.
Chunking long documents
from hubmesh import chunk_by_sentences, chunk_documents
chunks = chunk_documents(
[{"id": "doc1", "text": long_text}, ...],
strategy="sentences", target_tokens=200,
)
# Then embed chunks and index normally
Installation
pip install hubmesh # core
pip install "hubmesh[qdrant]" # Qdrant adapter
pip install "hubmesh[chroma]" # Chroma adapter
pip install "hubmesh[kg]" # entity-linked KG (spaCy)
pip install "hubmesh[linker]" # embedding-based entity linker
pip install "hubmesh[all]" # everything
python -m spacy download en_core_web_sm # required for KG mode
Design
query → first-pass ANN → induced subgraph → multi-component scoring
↓ ↓
community anchoring → Personalized PageRank
↓ ↓
└─────→ ranking → budget-aware packing → context
Each layer is independently testable and replaceable. Adapters wrap your existing vector DB so you don't have to migrate.
Benchmarks
Headline: on multi-hop QA, hubmesh's KG mode beats both naive cosine retrieval and a HippoRAG-style PPR-only ablation that uses the same KG, at every hop depth.
| Benchmark | Setting | recall@10 vs naive |
|---|---|---|
| HotpotQA dev, N=7405 (full) | KG mode | +4.92 pts † |
| HotpotQA dev, N=500 | KG mode | +5.0 pts |
| MuSiQue dev, N=300, 2-hop | KG mode | +6.0 pts |
| MuSiQue dev, N=300, 3-hop | KG mode | +3.2 pts |
| MuSiQue dev, N=300, 4-hop | KG mode | +5.0 pts |
† measured on v0.1.1; all other rows measured with v0.4.0 defaults
(alias-indexed seeds + NNSI-KG convergence; ablation JSONs committed
in benchmarks/). Disclosed: small recall@2 dips (≤0.5 pts) under
convergence; multi-seed queries cost ~1.5–1.8× (still zero LLM
tokens, deterministic).
vs PPR-only ablation on the same KG: +29.8 pts on HotpotQA at N=500 (measured on v0.2.0) — the multi-component scoring is doing the work, not just "having a graph."
On the full N=7405 HotpotQA dev: hubmesh hits 74.2% supporting-fact recall@10 vs naive cosine's 69.3%. The win is consistent at recall@2 (+1.1) and recall@5 (+4.4) too.
Latency: ~22 ms mean / 26 ms p95 per query on a 7K-node KG (after PPR matrix caching).
See BENCHMARKS.md for the full methodology, ablations, per-hop breakdown, and notes on what this proves and doesn't.
Reproduce:
python benchmarks/run_hotpotqa.py --n 500 --kg
python benchmarks/run_musique.py --n 300 --kg
python benchmarks/profile_query.py # latency profile
Status
Pre-alpha (v0.4.0). Core algorithms implemented and validated; adapters for
in-memory, Qdrant, and Chroma; entity-linked KG with both spaCy NER and
LLM-based extraction (both linker-aware); alias-indexed entity resolution;
NNSI-KG scoring (multi-source convergence default-on, hub-discounted PPR
opt-in); agent-driven iterative multi-hop via seed_entities /
exclude_docs; MCP operator server (hubmesh-mcp, native SSE) with
JSON/NPZ corpus persistence; document chunking; reasoning-path
explanation; PPR-cache latency optimisation. Pinecone / pgvector / Weaviate adapters
and additional multi-hop benchmarks are tracked as
good first issues.
Acknowledgements
The multi-component scoring pattern is adapted from the Network Node Significance Index (NNSI) framework introduced in Naidu Dsk, "A Framework for Improving Network Topology Based on Graph Theory in Software-Defined Networking", 26th International Conference on Internet Computing & IoT (ICOMP'25), Las Vegas, July 2025 — proceedings to appear. Repurposed here from SDN topology optimization to retrieval planning.
License
MIT
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