VOCALExplore: Pay-as-You-Go Video Data Exploration and Model Building

Author:

Daum Maureen1,Zhang Enhao1,He Dong1,Mussmann Stephen1,Haynes Brandon2,Krishna Ranjay1,Balazinska Magdalena1

Affiliation:

1. University of Washington

2. Microsoft Gray Systems Lab

Abstract

We introduce VOCALExplore, a system designed to support users in building domain-specific models over video datasets. VOCALExplore supports interactive labeling sessions and trains models using user-supplied labels. VOCALExplore maximizes model quality by automatically deciding how to select samples based on observed skew in the collected labels. It also selects the optimal video representations to use when training models by casting feature selection as a rising bandit problem. Finally, VOCALExplore implements optimizations to achieve low latency without sacrificing model performance. We demonstrate that VOCALExplore achieves close to the best possible model quality given candidate acquisition functions and feature extractors, and it does so with low visible latency (~1 second per iteration) and no expensive preprocessing.

Publisher

Association for Computing Machinery (ACM)

Subject

General Earth and Planetary Sciences,Water Science and Technology,Geography, Planning and Development

Reference54 articles.

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3. 2022. Forager: Rapid Data Exploration and Model Development. https://cs.stanford.edu/~fpoms/. 2022. Forager: Rapid Data Exploration and Model Development. https://cs.stanford.edu/~fpoms/.

4. 2022. Google Cloud Video Intelligence API. https://cloud.google.com/video-intelligence. 2022. Google Cloud Video Intelligence API. https://cloud.google.com/video-intelligence.

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