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Open Vocabulary Scene Parsing
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Recognizing arbitrary objects in the wild has been a challenging problem due to the limitations of existing classification models and datasets. In this paper, we propose a new task that aims at parsing scenes with a large and open vocabulary, and several evaluation metrics are explored for this problem. Our proposed approach to this problem is a joint image pixel and word concept embeddings framework, where word concepts are connected by semantic relations. We validate the open vocabulary prediction ability of our framework on ADE20K dataset which covers a wide variety of scenes and objects. We further explore the trained joint embedding space to show its interpretability.
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Cited by 1 Pith paper
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Open-Vocabulary Object Detection in UAV Imagery: A Review and Future Perspectives
A structured review that divides aerial open-vocabulary detection methods into pseudo-labeling and CLIP-driven integration families and catalogs the missing benchmarks in the field.
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