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使用 ZeroCostDL4Mic 实现显微镜深度学习民主化。

Democratising deep learning for microscopy with ZeroCostDL4Mic.

机构信息

MRC-Laboratory for Molecular Cell Biology, University College London, London, UK.

The Francis Crick Institute, London, UK.

出版信息

Nat Commun. 2021 Apr 15;12(1):2276. doi: 10.1038/s41467-021-22518-0.

Abstract

Deep Learning (DL) methods are powerful analytical tools for microscopy and can outperform conventional image processing pipelines. Despite the enthusiasm and innovations fuelled by DL technology, the need to access powerful and compatible resources to train DL networks leads to an accessibility barrier that novice users often find difficult to overcome. Here, we present ZeroCostDL4Mic, an entry-level platform simplifying DL access by leveraging the free, cloud-based computational resources of Google Colab. ZeroCostDL4Mic allows researchers with no coding expertise to train and apply key DL networks to perform tasks including segmentation (using U-Net and StarDist), object detection (using YOLOv2), denoising (using CARE and Noise2Void), super-resolution microscopy (using Deep-STORM), and image-to-image translation (using Label-free prediction - fnet, pix2pix and CycleGAN). Importantly, we provide suitable quantitative tools for each network to evaluate model performance, allowing model optimisation. We demonstrate the application of the platform to study multiple biological processes.

摘要

深度学习(DL)方法是显微镜分析的强大工具,其性能优于传统的图像处理管道。尽管 DL 技术激发了人们的热情和创新,但访问强大且兼容的资源来训练 DL 网络的需求带来了一个访问障碍,新手用户往往难以克服。在这里,我们介绍 ZeroCostDL4Mic,这是一个入门级平台,通过利用谷歌 Colab 的免费、基于云的计算资源来简化 DL 的访问。ZeroCostDL4Mic 允许没有编码专业知识的研究人员训练和应用关键的 DL 网络来执行任务,包括分割(使用 U-Net 和 StarDist)、目标检测(使用 YOLOv2)、去噪(使用 CARE 和 Noise2Void)、超分辨率显微镜(使用 Deep-STORM)和图像到图像转换(使用无标签预测 - fnet、pix2pix 和 CycleGAN)。重要的是,我们为每个网络提供了合适的定量工具来评估模型性能,从而实现模型优化。我们展示了该平台在研究多个生物学过程中的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2912/8050272/22420b5feddb/41467_2021_22518_Fig1_HTML.jpg

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