Cluster code by graph community detection via npx ruvector@0.2.25 hooks graph-cluster (spectral / Louvain)
Scanned 5/27/2026
Install via CLI
openskills install ruvnet/ruflo---
name: vector-cluster
description: Cluster code by graph community detection via npx ruvector@0.2.25 hooks graph-cluster (spectral / Louvain)
argument-hint: "<namespace> [--k N]"
allowed-tools: Bash Read mcp__claude-flow__memory_search mcp__claude-flow__memory_store mcp__claude-flow__memory_list
---
# Vector Cluster
Cluster vectors in a namespace by semantic similarity using `ruvector`.
## When to use
Use this skill when you have a collection of embeddings and want to discover natural groupings. Clustering reveals themes, identifies outliers, and helps organize large vector collections.
## Steps
1. **Ensure ruvector@0.2.25 is available**:
```bash
npm ls ruvector 2>/dev/null | grep '0.2.25' || npm install ruvector@0.2.25
```
2. **Run clustering** — in ruvector@0.2.25 the only working clustering is via `hooks graph-cluster` (spectral/Louvain over a code graph). The top-level `cluster` command is reserved for distributed cluster ops and is currently "Coming Soon" upstream.
```bash
npx -y ruvector@0.2.25 hooks graph-cluster <files...>
npx -y ruvector@0.2.25 hooks graph-mincut <files...>
```
3. **Review output** — JSON with cluster assignments, community labels, and edges. If you see `"graph.nodes is not iterable"`, run `hooks init` first to seed the graph state.
4. **Store results**:
`mcp__claude-flow__memory_store({ key: "clusters-PROJECT-TIMESTAMP", value: "CLUSTER_ASSIGNMENTS", namespace: "vector-clusters" })`
## Interpreting results
- **High cohesion** (>0.85): tight, well-defined cluster
- **Medium cohesion** (0.6-0.85): related but diverse content
- **Low cohesion** (<0.6): loose grouping, try higher resolution
- **Outliers**: novel or anomalous files worth investigating
## Caveats
- `cluster --namespace ... --k N` and `cluster --density` are **not** valid in ruvector@0.2.25 — those flags fall through to the distributed-cluster command, which only accepts `--status`, `--join`, `--leave`, `--nodes`, `--leader`, `--info`.
- For namespaced k-means over arbitrary embeddings, run k-means in your own code against vectors stored in AgentDB.
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