EgoCITE: Context-Augmented Indexing and Time-Aware Retrieval for Long-Horizon Egocentric Memory
Long-horizon egocentric memory transforms continuous first-person video and audio into a searchable record of past experiences. We demonstrate two bottlenecks in existing systems: indices built from context-poor captions are unreliable for agentic search, while retrieval ignores a question's temporal intent. To address both bottlenecks, we introduce EgoCITE (Egocentric Context-augmented Indexing and Time-aware Evidence retrieval), a long-horizon agentic memory framework for egocentric QA. EgoCIT
Record details
Published: 12 August 2026
Source: arXiv cs.HC
Category: Research
Topics: Agents & autonomy
Retrieved: 14 August 2026
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ethics.ai (12 August 2026), “EgoCITE: Context-Augmented Indexing and Time-Aware Retrieval for Long-Horizon Egocentric Memory,” evidence record 19456, https://ethics.ai/record/19456 (originally published by arXiv cs.HC).
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