A Real-Time Neural Decoder for Decoding Perceived Odor Identity Within a Single Sniff.

Wang, Panke; Wang, Liyang; Li, Ben-Zheng; Chen, Changhao; Lin, Qin; Li, Anan; Lei, Tim C · IEEE Trans Biomed Eng · 2026

basic_science · Level V

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Abstract

Neural decoding is a pivotal technique in neuroscience for reconstructing sensory stimuli from neural responses. This study presents a real-time neural decoder hardware implemented using field-programmablegate array, designed to classify inhaled odorants with minimal latency. Tested in awake mice, the system effectively sorts neural spikes from the mitral/tufted cells in the olfactory bulb. It predicts the perceived odorant based on sniff-wise population activities with a processing latency of just 2.36 $\mu$s and achieves accuracy comparable to traditional offline neural decoding methods. This advancement holds significant potential for applications in real-time neural decoding, including the closed-loop neural control experiment, offering deeper insights into the neural mechanisms underlying sensory systems.

Medical subject headings