CognitionCapturer: Decoding Visual Stimuli from Human EEG Signal with Multimodal Information
Kaifan Zhang, Lihuo He, Xin Jiang, Wen Lu, Di Wang, Xinbo Gao
Abstract
Electroencephalogram (EEG) signals have attracted significant attention from researchers due to their non-invasive nature and high temporal sensitivity in decoding visual stimuli. However, most recent studies have focused solely on the relationship between EEG and image data pairs, neglecting the valuable "beyond-image-modality" information embedded in EEG signals. This results in the loss of critical multimodal information in EEG. To address this limitation, we propose CognitionCapturer, a unified framework that fully leverages multimodal data to represent EEG signals. Specifically, CognitionCapturer trains Modality Expert Encoders for each modality to extract cross-modal information from the EEG modality. Then, it introduces a diffusion prior to map the EEG embedding space to the CLIP embedding space, followed by using a pretrained generative model, the proposed framework can reconstruct visual stimuli with high semantic and structural fidelity. Notably, the framework does not require any fine-tuning of the generative models and can be extended to incorporate more modalities. Through extensive experiments, we demonstrate that CognitionCapturer outperforms state-ofthe-art methods both qualitatively and quantitatively. Code: https://github.com/XiaoZhangYES/CognitionCapturer .
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Install the CLIlune papers fulltext 8083df48-b49b-454f-909e-9e2bc4169747Cited by top-tier papers13
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Builds on10
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- Reconstructing the Mind's Eye: fMRI-to-Image with Contrastive Learning and Diffusion PriorsPaul S. Scotti, Atmadeep Banerjee, Jimmie Goode, Stepan Shabalin et al.NeurIPS 2023 · 282 citations
- Visual Decoding and Reconstruction via EEG Embeddings with Guided DiffusionDongyang Li, Chen Wei, Shiying Li, Jiachen Zou et al.NeurIPS 2024 · 164 citations
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