Error Function Optimization to Compare Neural Activity and Train Blended Rhythmic Networks
Jassem Bourahmah,
Akira Sakurai,
Paul Katz
et al.
Abstract:We present a novel set of quantitative measures for “likeness” (error function) designed to alleviate the time-consuming and subjective nature of manually comparing biological recordings from electrophysiological experiments with the outcomes of their mathematical models. Our innovative “blended” system approach offers an objective, high-throughput, and computationally efficient method for comparing biological and mathematical models. This approach involves using voltage recordings of biological neurons to dri… Show more
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