Run a full static OpenLore analysis and summarize architecture, call graph, refactoring issues, and duplicate code. Use when asked to analyze, map, or assess a codebase without LLM inference.
Scanned 9/4/2026
Install to Claude Code
npx -y skills add clay-good/spec-gen --skill openlore-analyze-codebase --agent claude-codeInstalls into .claude/skills of the current project.
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---
name: openlore-analyze-codebase
description: Run a full static OpenLore analysis and summarize architecture, call graph, refactoring issues, and duplicate code. Use when asked to analyze, map, or assess a codebase without LLM inference.
---
# openlore: Analyze Codebase
## When to use this skill
Trigger this skill whenever the user asks to **analyze a codebase** with openlore, with phrasings like:
- "analyze my project / my code"
- "give me a code quality report"
- "what are the structural issues in my codebase"
- "find duplicates in my code"
- explicit command `/openlore-analyze-codebase`
This skill is **read-only** — it modifies no files. It produces a report and suggests next steps.
---
## Step 1 — Confirm the project directory
Ask the user which project to analyze, or confirm the current workspace root.
```
Which project directory should I analyze?
Options: current workspace root | enter a different path
```
---
## Step 2 — Run static analysis
Call the openlore MCP tool `analyze_codebase` with `{"directory": "$DIRECTORY"}`.
---
## Step 3 — Summarize the results
Present a concise summary:
- Project type and detected frameworks
- File count, function count, internal call count
- Top 5 refactoring issues (function name, file, issue type, priority score)
- Detected domains
Also report stack inventory (read directly from `.openlore/analysis/` — no extra MCP call needed):
- **HTTP routes**: N routes across M files — if `route-inventory.json` exists
- **ORM tables**: N tables — if `schema-inventory.json` exists
- **Env vars**: N total, X required without default — if `env-inventory.json` exists
- **UI components**: N components — if `ui-inventory.json` exists
If none of these files exist, skip this section and suggest running `openlore analyze --force`.
---
## Step 4 — Show the call graph
Call the openlore MCP tool `get_call_graph` with `{"directory": "$DIRECTORY"}`.
Highlight:
- **Hub functions** (fanIn ≥ 8) — over-solicited functions, high coupling risk
- **Layer violations** detected (e.g. a UI layer calling the database directly)
---
## Step 5 — Show duplicate code report
Call the openlore MCP tool `get_duplicate_report` with `{"directory": "$DIRECTORY"}`.
Present a concise summary:
- Overall duplication ratio (e.g. "12% of functions are duplicated")
- Top 3 clone groups sorted by impact (instances × line count):
- Clone type (exact / structural / near) and similarity score
- List of instances (file + function name + line range)
- If no duplicates found, note this as a positive signal
---
## Step 6 — Suggest next steps
Based on the analysis, guide the user through the natural next actions in order:
1. Call `get_minimal_context` on the highest-priority function — returns callers, callees, body, and test coverage in one call (~300 tokens). Use instead of `get_subgraph` + `get_signatures` separately.
2. Call `get_cluster` on any function to see its full community (tightly coupled neighbors across directories).
3. Call `detect_changes` to rank recently changed functions by blast radius — spot riskiest commits before reviewing.
3. If significant duplication was found, suggest consolidating clone groups **before** refactoring
4. Suggest running `/openlore-plan-refactor` once the user has enough context to act, then `/openlore-execute-refactor` to apply the plan
5. If the project has OpenSpec specs, call `list_spec_domains` then `search_specs` to enable
spec-first reasoning (question → requirements → linked source files). To activate `search_specs`,
run `openlore analyze --embed` or `openlore analyze --reindex-specs`.
---
## Absolute constraints
- **No code modifications** in this workflow
- Never skip the duplication step — it determines the order of subsequent actions
- Always present call graph and duplicate report results even if numbers are low
- Next steps (Step 6) are suggestions, not automatic actions
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