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A feature-based algorithm for spike sorting involving intelligent feature-weighting mechanism.

机译:一种基于特征的尖峰排序算法,涉及智能特征加权机制。

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摘要

Spike sorting of neural data from multiple electrodes is a difficult problem that depends heavily on inputs from human experts. It is an important processing step in the study of various brain functions and to detect various neural disorders based on the activity of neurons. Here, we propose a novel, unsupervised, feature-based spike sorting method based on the K-means clustering algorithm to distinguish these spikes. It involves weighing the various features of the neural data based on their information content as well as the eigenvalues of their projections on the lower-dimensional space and clustering them in the absence of ground truth. We illustrate the method on simulated data and real data recorded from retinal degeneration (rd) mice. We also compared our method against previously reported algorithms such as principal component analysis (PCA) based spike sorting and the results found are very encouraging for determining the activity of each neuron and early detection of various neural disorders including blindness (Retinitis Pigmentosa).
机译:对来自多个电极的神经数据进行尖峰排序是一个困难的问题,在很大程度上取决于人类专家的输入。这是研究各种大脑功能并根据神经元活动检测各种神经疾病的重要处理步骤。在这里,我们提出了一种新颖的,无监督的,基于特征的尖峰排序方法,该方法基于K均值聚类算法来区分这些尖峰。它涉及根据神经数据的信息内容以及它们在低维空间上的投影的特征值对神经数据的各种特征进行加权,并在没有地面真理的情况下对它们进行聚类。我们说明了从视网膜变性(rd)小鼠记录的模拟数据和真实数据上的方法。我们还将我们的方法与先前报道的算法(例如基于主成分分析(PCA)的峰排序)进行了比较,发现的结果对于确定每个神经元的活性以及早期发现包括失明(视网膜色素变性)在内的各种神经疾病非常令人鼓舞。

著录项

  • 作者

    Patwardhan, Kaustubh Anil.;

  • 作者单位

    The University of Iowa.;

  • 授予单位 The University of Iowa.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 M.S.
  • 年度 2011
  • 页码 101 p.
  • 总页数 101
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:44:33

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