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Spike Detection Based on Normalized Correlation with Automatic Template Generation

机译:基于归一化相关和自动模板生成的峰值检测

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摘要

A novel feedback-based spike detection algorithm for noisy spike trains is presented in this paper. It uses the information extracted from the results of spike classification for the enhancement of spike detection. The algorithm performs template matching for spike detection by a normalized correlator. The detected spikes are then sorted by the OSortalgorithm. The mean of spikes of each cluster produced by the OSort algorithm is used as the template of the normalized correlator for subsequent detection. The automatic generation and updating of templates enhance the robustness of the spike detection to input trains with various spike waveforms and noise levels. Experimental results show that the proposed algorithm operating in conjunction with OSort is an efficient design for attaining high detection and classification accuracy for spike sorting.
机译:提出了一种新颖的基于反馈的尖峰噪声尖峰检测算法。它使用从尖峰分类结果中提取的信息来增强尖峰检测。该算法执行模板匹配,以通过归一化相关器进行峰值检测。然后,通过OSortalgorithm对检测到的尖峰进行排序。由OSort算法产生的每个簇的峰值平均值被用作标准化相关器的模板,用于后续检测。模板的自动生成和更新增强了尖峰检测对具有各种尖峰波形和噪声水平的输入序列的鲁棒性。实验结果表明,所提出的算法与OSort结合使用是一种高效的设计,可实现针对尖峰分类的高检测和分类精度。

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