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    Time-varying $\ell_0$ optimization for Spike Inference from Multi-Trial Calcium Recordings

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    Type
    Preprint
    Authors
    Shen, Tong
    Johnston, Kevin
    Lur, Gyorgy
    Guindani, Michele
    Ombao, Hernando cc
    Yu, Zhaoxia
    Xiangmin Xu
    KAUST Department
    Biostatistics Group
    Computer, Electrical and Mathematical Science and Engineering (CEMSE) Division
    Statistics Program
    Date
    2021-03-02
    Permanent link to this record
    http://hdl.handle.net/10754/668020
    
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    Abstract
    Optical imaging of genetically encoded calcium indicators is a powerful tool to record the activity of a large number of neurons simultaneously over a long period of time from freely behaving animals. However, determining the exact time at which a neuron spikes and estimating the underlying firing rate from calcium fluorescence data remains challenging, especially for calcium imaging data obtained from a longitudinal study. We propose a multi-trial time-varying $\ell_0$ penalized method to jointly detect spikes and estimate firing rates by robustly integrating evolving neural dynamics across trials. Our simulation study shows that the proposed method performs well in both spike detection and firing rate estimation. We demonstrate the usefulness of our method on calcium fluorescence trace data from two studies, with the first study showing differential firing rate functions between two behaviors and the second study showing evolving firing rate function across trials due to learning.
    Publisher
    arXiv
    arXiv
    2103.03818
    Additional Links
    https://arxiv.org/pdf/2103.03818.pdf
    Collections
    Preprints; Statistics Program; Computer, Electrical and Mathematical Science and Engineering (CEMSE) Division

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