Implemented Schema-Aware In-Session Caching to Optimize LLM Visualization Recommendations#69
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Hi @ojumah20, there are some conflicts that need to be addressed before the merge; can you investigate, please? |
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Summary
This PR introduces a robust in-session caching layer for the visualization recommendation pipeline.
It significantly improves performance, reduces duplicate LLM calls, and ensures deterministic, privacy-safe caching across sessions.
Key Changes
Added viz_cache.py:
Implements MemoryTTLCache (thread-safe, TTL, LRU, dogpile-safe).
Includes metrics (hits, misses, evictions, hit_rate, etc.).
Supports namespaced keys (model: / ensemble:).
Optional background cleanup and TTL jitter.
Updated recommender.py:
Integrated caching at model-response and ensemble-result levels.
Added version pins (code_version, prompt_version) to auto-invalidate old cache entries.
Added debug mode cache stats for visibility.
Introduced schema_signature()-based keys to ensure privacy (no row data stored).
Updated package-level init.py for clean imports and reusability.