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self-initiated-attention-shifts-eeg

Subject-specific analysis of self-initiated attention shifts from EEG with controlled internal and external attention conditions. Machine learning + SHAP feature attribution reveals that higher-frequency bands and frontal regions carry subject-specific discriminative information for distinguishing self-initiated vs externally-cued attention shifts (arXiv:2605.18251). Use for EEG attention decoding, self-initiated attention research, voluntary attention neural correlates, SHAP-based EEG interpretation.

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hiyenwong/ai_collection
最近来源活动
2026年7月8日 02:48
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英语
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