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卷积神经网络和胶囊神经网络在分类酵母细胞分裂微流控图像上的互补性能。

Complementary performances of convolutional and capsule neural networks on classifying microfluidic images of dividing yeast cells.

机构信息

SimCenter, Department of Computer Science and Engineering, University of Tennessee at Chattanooga, Chattanooga, Tennessee, United States of America.

Huffington Center on Aging, Baylor College of Medicine, Houston, Texas, United States of America.

出版信息

PLoS One. 2021 Mar 17;16(3):e0246988. doi: 10.1371/journal.pone.0246988. eCollection 2021.

Abstract

Microfluidic-based assays have become effective high-throughput approaches to examining replicative aging of budding yeast cells. Deep learning may offer an efficient way to analyze a large number of images collected from microfluidic experiments. Here, we compare three deep learning architectures to classify microfluidic time-lapse images of dividing yeast cells into categories that represent different stages in the yeast replicative aging process. We found that convolutional neural networks outperformed capsule networks in terms of accuracy, precision, and recall. The capsule networks had the most robust performance in detecting one specific category of cell images. An ensemble of three best-fitted single-architecture models achieves the highest overall accuracy, precision, and recall due to complementary performances. In addition, extending classification classes and data augmentation of the training dataset can improve the predictions of the biological categories in our study. This work lays a useful framework for sophisticated deep-learning processing of microfluidic-based assays of yeast replicative aging.

摘要

基于微流控的分析方法已成为研究出芽酵母细胞复制性衰老的有效高通量方法。深度学习可能是分析从微流控实验中收集的大量图像的有效方法。在这里,我们比较了三种深度学习架构,以将微流体延时图像中的分裂酵母细胞分为代表酵母复制性衰老过程中不同阶段的类别。我们发现,在准确性、精度和召回率方面,卷积神经网络优于胶囊网络。胶囊网络在检测特定类别的细胞图像方面表现最为稳健。由于性能互补,三个最佳拟合的单一体系结构模型的集合实现了最高的整体准确性、精度和召回率。此外,扩展分类类和训练数据集的数据增强可以提高我们研究中生物类别的预测。这项工作为基于微流控的酵母复制性衰老分析的复杂深度学习处理奠定了有用的框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7e27/7968698/8346e84349ef/pone.0246988.g001.jpg

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