Challenges in Deep Learning for Multimodal Applications

Sayan Ghosh
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引用次数: 7

Abstract

This consortium paper outlines a research plan for investigating deep learning techniques as applied to multimodal multi-task learning and multimodal fusion. We discuss our prior research results in this area, and how these results motivate us to explore more in this direction. We also define concrete steps of enquiry we wish to undertake as a short-term goal, and further outline some other challenges of multimodal learning using deep neural networks, such as inter and intra-modality synchronization, robustness to noise in modality data acquisition, and data insufficiency.
深度学习在多模态应用中的挑战
这篇联合论文概述了一项研究计划,用于研究应用于多模态多任务学习和多模态融合的深度学习技术。我们讨论了我们之前在这一领域的研究成果,以及这些结果如何激励我们在这一方向上进行更多的探索。我们还定义了我们希望作为短期目标进行的具体调查步骤,并进一步概述了使用深度神经网络进行多模态学习的一些其他挑战,例如模态间和模态内同步,模态数据采集中对噪声的鲁棒性以及数据不足。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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