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マルチモーダルGRU×マルチモーダルLSTM×
分野深層学習深層学習
系統Machine learningMachine learning
提唱年2014–20172016
提唱者Cho, K. et al. (GRU); adapted to multimodal settings by multiple research groupsRajagopalan et al. and various concurrent works (2016–2018)
種類Recurrent neural network (multimodal variant)Recurrent neural network architecture
原典Cho, K., van Merriënboer, B., Gulcehre, C., Bahdanau, D., Bougares, F., Schwenk, H., & Bengio, Y. (2014). Learning Phrase Representations using RNN Encoder-Decoder for Statistical Machine Translation. Proceedings of EMNLP 2014, 1724–1734. link ↗Rajagopalan, S., Tran, L., Rozgic, V., Narayanan, S., Kumar, A., & Ramakrishna, S. (2016). Extending Long Short-Term Memory for Multi-View Structured Learning. In Proceedings of ECCV 2016. Springer. link ↗
別名MM-GRU, Multimodal Gated Recurrent Unit, Cross-modal GRU, Multi-input GRUMM-LSTM, multimodal recurrent network, multi-input LSTM, multimodal sequence model
関連64
概要Multimodal GRU extends the Gated Recurrent Unit architecture to jointly process sequential data from multiple input modalities — such as text, audio, and video frames — within a single recurrent framework. By fusing modality-specific encodings at the input or hidden-state level, it captures temporal dependencies across heterogeneous data streams and is widely used in multimodal sentiment analysis, video understanding, and audio-visual speech recognition.Multimodal LSTM extends the standard Long Short-Term Memory network to jointly process sequential data from multiple input modalities — such as text, audio, and video — within a unified recurrent architecture. By fusing representations from different sources before or within the LSTM cells, it captures temporal dependencies that span and cross modalities, making it a foundational approach for tasks like sentiment analysis, video captioning, and affective computing.
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ScholarGate手法を比較: Multimodal GRU · Multimodal LSTM. 2026-06-18に以下より取得 https://scholargate.app/ja/compare