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CaImAn an open source tool for scalable calcium imaging data analysis. | LitMetric

AI Article Synopsis

  • Advances in fluorescence microscopy allow for real-time monitoring of larger brain areas with improved time resolution, producing high data rates that necessitate efficient analysis methods.
  • CaImAn is an open-source library designed for calcium imaging data analysis, providing automated solutions for common preprocessing tasks like motion correction and neural activity identification with minimal user input.
  • Testing shows CaImAn performs nearly as well as human labelers in detecting active neurons, making it effective for both one-photon and two-photon imaging and suitable for various computing environments.

Article Abstract

Advances in fluorescence microscopy enable monitoring larger brain areas in-vivo with finer time resolution. The resulting data rates require reproducible analysis pipelines that are reliable, fully automated, and scalable to datasets generated over the course of months. We present CaImAn, an open-source library for calcium imaging data analysis. CaImAn provides automatic and scalable methods to address problems common to pre-processing, including motion correction, neural activity identification, and registration across different sessions of data collection. It does this while requiring minimal user intervention, with good scalability on computers ranging from laptops to high-performance computing clusters. CaImAn is suitable for two-photon and one-photon imaging, and also enables real-time analysis on streaming data. To benchmark the performance of CaImAn we collected and combined a corpus of manual annotations from multiple labelers on nine mouse two-photon datasets. We demonstrate that CaImAn achieves near-human performance in detecting locations of active neurons.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6342523PMC
http://dx.doi.org/10.7554/eLife.38173DOI Listing

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