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Spike Train Decoding Without Spike Sorting

机译:不使用秒杀排序的秒杀列车解码

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摘要

We propose a novel paradigm for spike train decoding, which avoids entirely spike sorting based on waveform measurements. This paradigm directly uses the spike train collected at recording electrodes from thresholding the bandpassed voltage signal. Our approach is a paradigm, not an algorithm, since it can be used with any of the current decoding algorithms, such as population vector or likelihood-based algorithms. Based on analytical results and an extensive simulation study, we show that our paradigm is comparable to, and sometimes more efficient than, the traditional approach based on well-isolated neurons and that it remains efficient even when all electrodes are severely corrupted by noise, a situation that would render spike sorting particularly difficult. Our paradigm will also save time and computational effort, both of which are crucially important for successful operation of real-time brain-machine interfaces. Indeed, in place of the lengthy spike-sorting task of the traditional approach, it involves an exact expectation EM algorithm that is fast enough that it could also be left to run during decoding to capture potential slow changes in the states of the neurons.
机译:我们提出了一种用于尖峰序列解码的新颖范例,该范式完全避免了基于波形测量的尖峰排序。该范例直接使用在记录电极处收集的尖峰序列,该阈值是通过对带通电压信号进行阈值化而得出的。我们的方法是一种范式,而不是一种算法,因为它可以与任何当前解码算法一起使用,例如总体向量或基于似然的算法。根据分析结果和广泛的模拟研究,我们表明,我们的范例与基于完全隔离的神经元的传统方法具有可比性,有时甚至比传统方法更有效,并且即使所有电极都被噪声严重破坏,该方法仍然有效。这种情况会使尖峰分拣特别困难。我们的范例还将节省时间和计算量,这两者对于实时脑机接口的成功运行至关重要。确实,代替传统方法的冗长的尖峰排序任务,它涉及一种精确的期望EM算法,该算法足够快,以至于在解码期间也可以运行以捕获神经元状态的潜在缓慢变化。

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  • 期刊名称 other
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    Ventura Valérie;

  • 作者单位
  • 年(卷),期 -1(20),4
  • 年度 -1
  • 页码 923–963
  • 总页数 40
  • 原文格式 PDF
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