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Attribute-Based Classification for Zero-Shot Visual Object Categorization

Published: 01 March 2014 Publication History

Abstract

We study the problem of object recognition for categories for which we have no training examples, a task also called zero--data or zero-shot learning. This situation has hardly been studied in computer vision research, even though it occurs frequently; the world contains tens of thousands of different object classes, and image collections have been formed and suitably annotated for only a few of them. To tackle the problem, we introduce attribute-based classification: Objects are identified based on a high-level description that is phrased in terms of semantic attributes, such as the object's color or shape. Because the identification of each such property transcends the specific learning task at hand, the attribute classifiers can be prelearned independently, for example, from existing image data sets unrelated to the current task. Afterward, new classes can be detected based on their attribute representation, without the need for a new training phase. In this paper, we also introduce a new data set, Animals with Attributes, of over 30,000 images of 50 animal classes, annotated with 85 semantic attributes. Extensive experiments on this and two more data sets show that attribute-based classification indeed is able to categorize images without access to any training images of the target classes.

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  • (2025)Evidential dissonance measure in robust multi-view classification to resist adversarial attackInformation Fusion10.1016/j.inffus.2024.102605113:COnline publication date: 1-Jan-2025
  • (2024)A Progressive Skip Reasoning Fusion Method for Multi-Modal ClassificationProceedings of the 32nd ACM International Conference on Multimedia10.1145/3664647.3681437(429-437)Online publication date: 28-Oct-2024
  • (2024)Robust Variational Contrastive Learning for Partially View-unaligned ClusteringProceedings of the 32nd ACM International Conference on Multimedia10.1145/3664647.3681331(4167-4176)Online publication date: 28-Oct-2024
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Information & Contributors

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Published In

cover image IEEE Transactions on Pattern Analysis and Machine Intelligence
IEEE Transactions on Pattern Analysis and Machine Intelligence  Volume 36, Issue 3
March 2014
207 pages

Publisher

IEEE Computer Society

United States

Publication History

Published: 01 March 2014

Author Tags

  1. Object recognition
  2. vision and scene understanding

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Cited By

View all
  • (2025)Evidential dissonance measure in robust multi-view classification to resist adversarial attackInformation Fusion10.1016/j.inffus.2024.102605113:COnline publication date: 1-Jan-2025
  • (2024)A Progressive Skip Reasoning Fusion Method for Multi-Modal ClassificationProceedings of the 32nd ACM International Conference on Multimedia10.1145/3664647.3681437(429-437)Online publication date: 28-Oct-2024
  • (2024)Robust Variational Contrastive Learning for Partially View-unaligned ClusteringProceedings of the 32nd ACM International Conference on Multimedia10.1145/3664647.3681331(4167-4176)Online publication date: 28-Oct-2024
  • (2024)Visual-Semantic Decomposition and Partial Alignment for Document-based Zero-Shot LearningProceedings of the 32nd ACM International Conference on Multimedia10.1145/3664647.3680829(4581-4590)Online publication date: 28-Oct-2024
  • (2024)Learning Graph Embeddings for Open World Compositional Zero-Shot LearningIEEE Transactions on Pattern Analysis and Machine Intelligence10.1109/TPAMI.2022.316366746:3(1545-1560)Online publication date: 1-Mar-2024
  • (2024)Semantics-Guided Contrastive Network for Zero-Shot Object DetectionIEEE Transactions on Pattern Analysis and Machine Intelligence10.1109/TPAMI.2021.314007046:3(1530-1544)Online publication date: 1-Mar-2024
  • (2024)ATZSL: Defensive Zero-Shot Recognition in the Presence of AdversariesIEEE Transactions on Multimedia10.1109/TMM.2023.325862426(15-27)Online publication date: 1-Jan-2024
  • (2024)UVaT: Uncertainty Incorporated View-Aware Transformer for Robust Multi-View ClassificationIEEE Transactions on Image Processing10.1109/TIP.2024.345193133(5129-5143)Online publication date: 1-Jan-2024
  • (2024)PAMK: Prototype Augmented Multi-Teacher Knowledge Transfer Network for Continual Zero-Shot LearningIEEE Transactions on Image Processing10.1109/TIP.2024.340305333(3353-3368)Online publication date: 24-May-2024
  • (2024)Synthesizing Knowledge-Enhanced Features for Real-World Zero-Shot Food DetectionIEEE Transactions on Image Processing10.1109/TIP.2024.336089933(1285-1298)Online publication date: 1-Jan-2024
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