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Updated: Jan 7, 2026

Single-unit In vivo Recordings from the Optic Chiasm of Rat
Published on: April 2, 2010
Procesamiento optoelectrónico analógico en el sensor de señales concurrentes de eventos y memoria para la detección
Yelim Kim1, Hyeonsu Park1, Minjoo Kim1
1Division of Materials Science and Engineering, Hanyang University, Seoul, Republic of Korea.
Abstract:
Efficient dynamic vision requires capturing instantaneous changes and temporal context, yet existing image and event sensors rely on power-hungry digital processing. Here, we introduce an in-sensor dual-response architecture that concurrently generates analog event spikes and persistent memory tails. A prototype sensor integrates phosphor pairs with silicon photodiodes and transimpedance amplifiers to achieve microsecond- and millisecond-scale dual kinetics. Measurements during light-emitting diode replay reconstruct event frames that match software frame differences, while the slow channel behaves as a linear reservoir of motion history. A single memory frame fed to a convolutional neural network enables accurate classification of human actions (93.1%) and vehicle trajectories (98.0%), as well as speed estimation with errors of 2.15 km/h. Integration with a compressive optical neural network front end mapping 4900 inputs to 16 per frame yields 93.3% action classification accuracy. By eliminating analog-to-digital conversion and digital accumulation, this approach enables ultralow-latency, ultralow-power neuromorphic vision.
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