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Investigating the role of firing-rate normalization and dimensionality reduction in brain-machine interface robustness

机译:研究射击速率归一化和降维在脑机接口鲁棒性中的作用

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The intraday robustness of brain-machine interfaces (BMIs) is important to their clinical viability. In particular, BMIs must be robust to intraday perturbations in neuron firing rates, which may arise from several factors including recording loss and external noise. Using a state-of-the-art decode algorithm, the Recalibrated Feedback Intention Trained Kalman filter (ReFIT-KF) [1] we introduce two novel modifications: (1) a normalization of the firing rates, and (2) a reduction of the dimensionality of the data via principal component analysis (PCA). We demonstrate in online studies that a ReFIT-KF equipped with normalization and PCA (NPC-ReFIT-KF) (1) achieves comparable performance to a standard ReFIT-KF when at least 60% of the neural variance is captured, and (2) is more robust to the undetected loss of channels. We present intuition as to how both modifications may increase the robustness of BMIs, and investigate the contribution of each modification to robustness. These advances, which lead to a decoder achieving state-of-the-art performance with improved robustness, are important for the clinical viability of BMI systems.
机译:脑机接口(BMI)的日间健壮性对其临床生存能力至关重要。特别是,BMI必须对神经元放电速率的日内扰动具有鲁棒性,这可能由多种因素引起,包括记录损失和外部噪声。使用最新的解码算法,经过重新校准的反馈意图训练卡尔曼滤波器(ReFIT-KF)[1],我们引入了两个新颖的修改:(1)触发率的标准化,以及(2)降低通过主成分分析(PCA)确定数据的维度。我们在在线研究中证明,配备归一化和PCA的ReFIT-KF(NPC-ReFIT-KF)(1)当捕获了至少60%的神经变异时,可以达到与标准ReFIT-KF相当的性能,以及(2)对于未检测到的信道丢失更健壮。我们提出了关于两种修饰如何增加BMI健壮性的直觉,并研究了每种修饰对健壮性的贡献。这些进步导致解码器以更先进的性能实现了最先进的性能,对于BMI系统的临床可行性至关重要。

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