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APM-Bench: Benchmarking Cross-session Persistent Memory for Egocentric Streaming Video Assistants

This paper introduces APM-Bench, a benchmark for evaluating persistent memory in egocentric streaming video assistants. It focuses on cross-session memory retention, featuring 549 sessions, 104 trajectories, and 2,719 candidates with both objective and open-ended questions. The benchmark highlights challenges in storing, retaining, and retrieving information across intermittent interactions while maintaining real-time performance.

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PublishedSeptember 29, 2026Jianguo Huang, Jinming Liu, Qiyao Wang
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WHY IT MAY MATTER

This benchmark helps evaluate how well models can retain and use past interactions across different sessions, which is crucial for real-world personal assistants that need to remember previous context.

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