Literature DB >> 23860257

A finite rate of innovation algorithm for fast and accurate spike detection from two-photon calcium imaging.

Jon Oñativia1, Simon R Schultz, Pier Luigi Dragotti.   

Abstract

OBJECTIVE: Inferring the times of sequences of action potentials (APs) (spike trains) from neurophysiological data is a key problem in computational neuroscience. The detection of APs from two-photon imaging of calcium signals offers certain advantages over traditional electrophysiological approaches, as up to thousands of spatially and immunohistochemically defined neurons can be recorded simultaneously. However, due to noise, dye buffering and the limited sampling rates in common microscopy configurations, accurate detection of APs from calcium time series has proved to be a difficult problem. APPROACH: Here we introduce a novel approach to the problem making use of finite rate of innovation (FRI) theory (Vetterli et al 2002 IEEE Trans. SIGNAL PROCESS: 50 1417-28). For calcium transients well fit by a single exponential, the problem is reduced to reconstructing a stream of decaying exponentials. Signals made of a combination of exponentially decaying functions with different onset times are a subclass of FRI signals, for which much theory has recently been developed by the signal processing community. Main results. We demonstrate for the first time the use of FRI theory to retrieve the timing of APs from calcium transient time series. The final algorithm is fast, non-iterative and parallelizable. Spike inference can be performed in real-time for a population of neurons and does not require any training phase or learning to initialize parameters. SIGNIFICANCE: The algorithm has been tested with both real data (obtained by simultaneous electrophysiology and multiphoton imaging of calcium signals in cerebellar Purkinje cell dendrites), and surrogate data, and outperforms several recently proposed methods for spike train inference from calcium imaging data.

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Year:  2013        PMID: 23860257      PMCID: PMC4038919          DOI: 10.1088/1741-2560/10/4/046017

Source DB:  PubMed          Journal:  J Neural Eng        ISSN: 1741-2552            Impact factor:   5.379


  27 in total

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3.  Fast nonnegative deconvolution for spike train inference from population calcium imaging.

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7.  Detecting action potentials in neuronal populations with calcium imaging.

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8.  In vivo dendritic calcium dynamics in deep-layer cortical pyramidal neurons.

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  20 in total

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2.  Generalized analog thresholding for spike acquisition at ultralow sampling rates.

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3.  Decoding cortical brain states from widefield calcium imaging data using visibility graph.

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4.  Advances in two photon scanning and scanless microscopy technologies for functional neural circuit imaging.

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5.  Benchmarking Spike Rate Inference in Population Calcium Imaging.

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Review 6.  Sparse sampling: theory, methods and an application in neuroscience.

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7.  Simultaneous Denoising, Deconvolution, and Demixing of Calcium Imaging Data.

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Journal:  Neuron       Date:  2016-01-07       Impact factor: 17.173

8.  Information-Theoretic Approach and Fundamental Limits of Resolving Two Closely Timed Neuronal Spikes in Mouse Brain Calcium Imaging.

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9.  ABLE: An Activity-Based Level Set Segmentation Algorithm for Two-Photon Calcium Imaging Data.

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Review 10.  Closed-loop and activity-guided optogenetic control.

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Journal:  Neuron       Date:  2015-04-08       Impact factor: 17.173

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