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MAiVAR-T: Multimodal Audio-image and Video Action Recognizer using Transformers (2308.03741v1)

Published 1 Aug 2023 in cs.CV, cs.AI, cs.LG, and cs.MM

Abstract: In line with the human capacity to perceive the world by simultaneously processing and integrating high-dimensional inputs from multiple modalities like vision and audio, we propose a novel model, MAiVAR-T (Multimodal Audio-Image to Video Action Recognition Transformer). This model employs an intuitive approach for the combination of audio-image and video modalities, with a primary aim to escalate the effectiveness of multimodal human action recognition (MHAR). At the core of MAiVAR-T lies the significance of distilling substantial representations from the audio modality and transmuting these into the image domain. Subsequently, this audio-image depiction is fused with the video modality to formulate a unified representation. This concerted approach strives to exploit the contextual richness inherent in both audio and video modalities, thereby promoting action recognition. In contrast to existing state-of-the-art strategies that focus solely on audio or video modalities, MAiVAR-T demonstrates superior performance. Our extensive empirical evaluations conducted on a benchmark action recognition dataset corroborate the model's remarkable performance. This underscores the potential enhancements derived from integrating audio and video modalities for action recognition purposes.

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Authors (4)
  1. Muhammad Bilal Shaikh (3 papers)
  2. Douglas Chai (3 papers)
  3. Syed Mohammed Shamsul Islam (4 papers)
  4. Naveed Akhtar (77 papers)
Citations (4)