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automated-neural-characterization-language

Automated neural characterization using natural language and digital twins. Closed-loop framework that translates neuron activation patterns into concise semantic descriptions, generates hypothesis images, and verifies them in silico. Use when studying: neural selectivity characterization, digital twin neuroscience, semantic hypothesis testing, V1/V4 visual cortex encoding, generative models for neural decoding, or combining language models with neural data. arXiv: 2605.12485 (q-bio.NC, q-bio.QM). Lad, Franke, Rott Shaham, Ganguli, Tolias, Sanborn, Karantzas.

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Repository
hiyenwong/ai_collection
Last source activity
July 13, 2026 at 02:00
Detected SKILL.md language
English
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2
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0

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