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תחוםלמידה עמוקהלמידה עמוקה
משפחהMachine learningMachine learning
שנת המקור2015–20222019–2021
הוגה השיטהMultiple contributors (DeepMind, OpenAI, Google Brain, 2010s–2020s)Lu et al. (ViLBERT); Radford et al. (CLIP)
סוגMultimodal deep RL agentCross-modal attention-based deep learning model
מקור מכונןReed, S., Zolna, K., Parisotto, E., Colmenarejo, S. G., Novikov, A., Barth-Maron, G., ... & de Freitas, N. (2022). A Generalist Agent. Transactions on Machine Learning Research. link ↗Lu, J., Batra, D., Parikh, D., & Lee, S. (2019). ViLBERT: Pretraining Task-Agnostic Visiolinguistic Representations for Vision-and-Language Tasks. Advances in Neural Information Processing Systems (NeurIPS), 32. link ↗
כינוייםMultimodal RL, Multi-Sensory Reinforcement Learning, Vision-Language RL, Multi-Input RLmultimodal attention model, cross-modal transformer, vision-language transformer, multi-modal fusion transformer
קשורות65
תקצירMultimodal Reinforcement Learning trains agents to make sequential decisions by perceiving and integrating multiple input modalities — such as raw pixels, language instructions, audio, and proprioceptive sensors — simultaneously. Rather than acting on a single data stream, the agent fuses heterogeneous signals into a unified state representation and learns a policy through environmental reward feedback.A Multimodal Transformer extends the standard Transformer architecture to process and jointly reason over two or more input modalities — most commonly text and images, but also audio, video, or structured data. Cross-modal attention layers allow information from one modality to inform representations in another, enabling tasks such as visual question answering, image captioning, and multimodal sentiment analysis.
ScholarGateמערך נתונים
  1. v1
  2. 2 מקורות
  3. PUBLISHED
  1. v1
  2. 2 מקורות
  3. PUBLISHED

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ScholarGateהשוואת שיטות: Multimodal Reinforcement Learning · Multimodal Transformer. אוחזר בתאריך 2026-06-18 מתוך https://scholargate.app/he/compare