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Learn to Combine Modalities in Multimodal Deep Learning - 2018

Learn To Combine Modalities In Multimodal Deep Learning

Research Paper on Learn To Combine Modalities In Multimodal Deep Learning

Research Area:  Machine Learning

Abstract:

Combining complementary information from multiple modalities is intuitively appealing for improving the performance of learning-based approaches. However, it is challenging to fully leverage different modalities due to practical challenges such as varying levels of noise and conflicts between modalities. Existing methods do not adopt a joint approach to capturing synergies between the modalities while simultaneously filtering noise and resolving conflicts on a per sample basis. In this work we propose a novel deep neural network based technique that multiplicatively combines information from different source modalities. Thus the model training process automatically focuses on information from more reliable modalities while reducing emphasis on the less reliable modalities. Furthermore, we propose an extension that multiplicatively combines not only the single-source modalities, but a set of mixtured source modalities to better capture cross-modal signal correlations. We demonstrate the effectiveness of our proposed technique by presenting empirical results on three multimodal classification tasks from different domains. The results show consistent accuracy improvements on all three tasks.

Keywords:  
Multimodal
Deep Learning
Machine Learning

Author(s) Name:  Kuan Liu, Yanen Li, Ning Xu, Prem Natarajan

Journal name:  Statistics

Conferrence name:  

Publisher name:  arXiv:1805.11730

DOI:   https://doi.org/10.48550/arXiv.1805.11730

Volume Information:  1805.11730