Mind-the-Gap! Unsupervised Domain Adaptation for Text-Video Retrieval
Qingchao Chen, Yang Liu, Samuel Albanie
摘要
When can we expect a text-video retrieval system to work effectively on datasets that differ from its training domain? In this work, we investigate this question through the lens of unsupervised domain adaptation in which the objective is to match natural language queries and video content in the presence of domain shift at query-time. Such systems have significant practical applications since they are capable generalising to new data sources without requiring corresponding text annotations. We make the following contributions:
(1) We propose the UDAVR (Unsupervised Domain Adaptation for Video Retrieval) benchmark and employ it to study the performance of text-video retrieval in the presence of domain shift. (2) We propose Concept-Aware-Pseudo-Query (CAPQ), a method for learning discriminative and transferable features that bridge these cross-domain discrepancies to enable effective target domain retrieval using source domain supervision. (3) We show that CAPQ outperforms alternative domain adaptation strategies on UDAVR.
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- HowTo100M: Learning a Text-Video Embedding by Watching Hundred Million Narrated Video ClipsAntoine Miech, Dimitri Zhukov, Jean-Baptiste Alayrac, Makarand Tapaswi 等ICCV 2019 · 被引用 1,437 次
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- Structure-Aware Feature Fusion for Unsupervised Domain AdaptationQingchao Chen, Yang LiuAAAI 2020 · 被引用 26 次
- Multi-Modal Domain Adaptation for Fine-Grained Action RecognitionJonathan Munro, Dima DamenCVPR 2020
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