Zeus: Efficiently Localizing Actions in Videos using Reinforcement Learning
Pramod Chunduri, Jaeho Bang, Yao Lu, Joy Arulraj
Abstract
Detection and localization of actions in videos is an important problem in practice. State-of-the-art video analytics systems are unable to efficiently and effectively answer such action queries because actions often involve a complex interaction between objects and are spread across a sequence of frames; detecting and localizing them requires computationally expensive deep neural networks. It is also important to consider the entire sequence of frames to answer the query effectively.
In this paper, we present Zeus, a video analytics system tailored for answering action queries. We present a novel technique for efficiently answering these queries using deep reinforcement learning. Zeus trains a reinforcement learning agent that learns to adaptively modify the input video segments that are subsequently sent to an action classification network. The agent alters the input segments along three dimensions -sampling rate, segment length, and resolution. To meet the user-specified accuracy target, Zeus's query optimizer trains the agent based on an accuracy-aware, aggregate reward function. Evaluation on three diverse video datasets shows that Zeus outperforms state-of-the-art frame-and window-based filtering techniques by up to 22.1× and 4.7×, respectively. It also consistently meets the user-specified accuracy target across all queries.
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Install the CLIlune papers fulltext 94a48ea4-a7fa-485f-ab94-470b1165f2b5Cited by top-tier papers6
- SEIDEN: Revisiting Query Processing in Video Database SystemsJaeho Bang, Gaurav Tarlok Kakkar, Pramod Chunduri, Subrata Mitra et al.VLDB 2023 · 24 citations
- Extract-Transform-Load for Video StreamsFerdinand Kossmann, Ziniu Wu, Eugenie Lai, Nesime Tatbul et al.VLDB 2023 · 21 citations
- EQUI-VOCAL: Synthesizing Queries for Compositional Video Events from Limited User InteractionsEnhao Zhang, Maureen Daum, Dong He, Brandon Haynes et al.VLDB 2023 · 18 citations
- SketchQL: Video Moment Querying with a Visual Query InterfaceRenzhi Wu, Pramod Chunduri, Ali Payani, Xu Chu et al.SIGMOD 2025 · 6 citations
- Predictive and Near-Optimal Sampling for View Materialization in Video DatabasesYanchao Xu, Dongxiang Zhang, Shuhao Zhang, Sai Wu et al.SIGMOD 2024 · 5 citations
Builds on5
- BlazeIt: Optimizing Declarative Aggregation and Limit Queries for Neural Network-Based Video AnalyticsDaniel Kang, Peter Bailis, Matei ZahariaVLDB 2020 · 103 citations
- MIRIS: Fast Object Track Queries in VideoFavyen Bastani, Songtao He, Arjun Balasingam, Karthik Gopalakrishnan et al.SIGMOD 2020 · 68 citations
- GOGGLES: Automatic Image Labeling with Affinity CodingNilaksh Das, Sanya Chaba, Renzhi Wu, Sakshi Gandhi et al.SIGMOD 2020 · 22 citations
- ODIN: Automated Drift Detection and Recovery in Video AnalyticsAbhijit Suprem, Joy Arulraj, Calton Pu, João Eduardo FerreiraVLDB 2020
- Straight to the Point: Fast-Forwarding Videos via Reinforcement Learning Using Textual DataWashington L. S. Ramos, Michel Melo Silva, Edson R. Araujo, Leandro Soriano Marcolino et al.CVPR 2020
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