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从荧光钙记录中进行神经元分割,超越实时处理。

Segmentation of Neurons from Fluorescence Calcium Recordings Beyond Real-time.

作者信息

Bao Yijun, Soltanian-Zadeh Somayyeh, Farsiu Sina, Gong Yiyang

机构信息

Department of Biomedical Engineering, Duke University, Durham, NC 27708.

Department of Ophthalmology, Duke University Medical Center, Durham, NC 27710, USA.

出版信息

Nat Mach Intell. 2021 Jul;3(7):590-600. doi: 10.1038/s42256-021-00342-x. Epub 2021 May 20.

Abstract

Fluorescent genetically encoded calcium indicators and two-photon microscopy help understand brain function by generating large-scale recordings in multiple animal models. Automatic, fast, and accurate active neuron segmentation is critical when processing these videos. In this work, we developed and characterized a novel method, Shallow U-Net Neuron Segmentation (SUNS), to quickly and accurately segment active neurons from two-photon fluorescence imaging videos. We used temporal filtering and whitening schemes to extract temporal features associated with active neurons, and used a compact shallow U-Net to extract spatial features of neurons. Our method was both more accurate and an order of magnitude faster than state-of-the-art techniques when processing multiple datasets acquired by independent experimental groups; the difference in accuracy was enlarged when processing datasets containing few manually marked ground truths. We also developed an online version, potentially enabling real-time feedback neuroscience experiments.

摘要

荧光基因编码钙指示剂和双光子显微镜通过在多种动物模型中进行大规模记录,有助于理解大脑功能。在处理这些视频时,自动、快速且准确的活跃神经元分割至关重要。在这项工作中,我们开发并表征了一种新颖的方法——浅U-Net神经元分割(SUNS),用于从双光子荧光成像视频中快速准确地分割活跃神经元。我们使用时间滤波和白化方案来提取与活跃神经元相关的时间特征,并使用紧凑的浅U-Net来提取神经元的空间特征。在处理由独立实验组获取的多个数据集时,我们的方法比现有技术更准确,速度快一个数量级;在处理包含少量手动标记真值的数据集时,准确性差异会扩大。我们还开发了一个在线版本,有可能实现实时反馈神经科学实验。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0bb6/8415119/b569eb3b7311/nihms-1697872-f0005.jpg

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