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brain-cliplm-semantic-compression-eeg

Brain-CLIPLM semantic compression framework for EEG-to-text decoding. Two-stage methodology: semantic anchor recovery via contrastive learning + anchor-guided sentence reconstruction with retrieval-grounded LLM. Key principle: granularity matching - aligns decoding complexity with recoverable neural information scale. Use when: (1) EEG language decoding tasks, (2) brain-to-text translation, (3) neural signal semantic extraction, (4) cognitive state reconstruction from EEG, (5) sentence-level EEG decoding benchmarks (ZuCo), (6) semantic anchor-based neural decoding. Activation: EEG decoding, brain-to-text, semantic compression, neural anchor recovery, CLIP alignment, retrieval-grounded LLM, granularity matching, ZuCo benchmark.

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Repository
hiyenwong/ai_collection
Last source activity
July 12, 2026 at 23:06
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English
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2
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0

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