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Omni-Modeler: Rapid Adaptive Visual Recognition with Dynamic Learning

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Author :  Michael Karnes and Alper Yilmaz

Affiliation :  The Ohio State University

Country :  USA

Category :  Computer Science & Information Technology

Volume, Issue, Month, Year :  14, 2, October, 2024

Abstract :


Deep neural network (DNN) image classification has grown rapidly as a general pattern detection tool for an extremely diverse set of applications; yet dataset accessibility remains a major limiting factor for many applications. This paper presents a novel dynamic learning approach to leverage pretrained knowledge to novel image spaces in the effort to extend the algorithm knowledge domain and reduce dataset collection requirements. The proposed Omni-Modeler generates a dynamic knowledge set by reshaping known concepts to create dynamic representation models of unknown concepts. The Omni-Modeler embeds images with a pretrained DNN and formulates compressed language encoder. The language encoded feature space is then used to rapidly generate a dynamic dictionary of concept appearance models. The results of this study demonstrate the Omni-Modeler capability to rapidly adapt across a range of image types enabling the usage of dynamically learning image classification with limited data availability

Keyword :  Dynamic Learning, Few-shot Learning, Generalized Visual Classification

Journal/ Proceedings Name :  SIPIJ

URL :  https://aircconline.com/sipij/V14N5/14523sipij01.pdf

User Name : Devin
Posted 23-09-2026 on 22:10:51 AEDT



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