SOTAVerified

Multimodal Deep Learning

Multimodal deep learning is a type of deep learning that combines information from multiple modalities, such as text, image, audio, and video, to make more accurate and comprehensive predictions. It involves training deep neural networks on data that includes multiple types of information and using the network to make predictions based on this combined data.

One of the key challenges in multimodal deep learning is how to effectively combine information from multiple modalities. This can be done using a variety of techniques, such as fusing the features extracted from each modality, or using attention mechanisms to weight the contribution of each modality based on its importance for the task at hand.

Multimodal deep learning has many applications, including image captioning, speech recognition, natural language processing, and autonomous vehicles. By combining information from multiple modalities, multimodal deep learning can improve the accuracy and robustness of models, enabling them to perform better in real-world scenarios where multiple types of information are present.

Papers

Showing 141–150 of 213 papers

TitleStatusHype
Reducing Overtreatment of Indeterminate Thyroid Nodules Using a Multimodal Deep Learning Model—0
Research on Image Recognition Technology Based on Multimodal Deep Learning—0
Research on Optimization of Natural Language Processing Model Based on Multimodal Deep Learning—0
Scalable multimodal convolutional networks for brain tumour segmentation—0
Show me your NFT and I tell you how it will perform: Multimodal representation learning for NFT selling price prediction—0
SynthScribe: Deep Multimodal Tools for Synthesizer Sound Retrieval and Exploration—0
TabulaTime: A Novel Multimodal Deep Learning Framework for Advancing Acute Coronary Syndrome Prediction through Environmental and Clinical Data Integration—0
Temporal Multimodal Learning in Audiovisual Speech Recognition—0
TextAug: Test time Text Augmentation for Multimodal Person Re-identification—0
The Influence of Audio on Video Memorability with an Audio Gestalt Regulated Video Memorability System—0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1Two Branch Network (Text - Bert + Image - Nts-Net)Accuracy96.81—Unverified