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VGGIN-Net:用于不平衡乳腺癌数据集的深度迁移网络。

VGGIN-Net: Deep Transfer Network for Imbalanced Breast Cancer Dataset.

出版信息

IEEE/ACM Trans Comput Biol Bioinform. 2023 Jan-Feb;20(1):752-762. doi: 10.1109/TCBB.2022.3163277. Epub 2023 Feb 3.

Abstract

In this paper, we have presented a novel deep neural network architecture involving transfer learning approach, formed by freezing and concatenating all the layers till block4 pool layer of VGG16 pre-trained model (at the lower level) with the layers of a randomly initialized naïve Inception block module (at the higher level). Further, we have added the batch normalization, flatten, dropout and dense layers in the proposed architecture. Our transfer network, called VGGIN-Net, facilitates the transfer of domain knowledge from the larger ImageNet object dataset to the smaller imbalanced breast cancer dataset. To improve the performance of the proposed model, regularization was used in the form of dropout and data augmentation. A detailed block-wise fine tuning has been conducted on the proposed deep transfer network for images of different magnification factors. The results of extensive experiments indicate a significant improvement of classification performance after the application of fine-tuning. The proposed deep learning architecture with transfer learning and fine-tuning yields the highest accuracies in comparison to other state-of-the-art approaches for the classification of BreakHis breast cancer dataset. The articulated architecture is designed in a way that it can be effectively transfer learned on other breast cancer datasets.

摘要

在本文中,我们提出了一种新的基于迁移学习的深度神经网络架构,该架构由冻结和连接所有层组成,直到 VGG16 预训练模型的块 4 池层(在较低级别)与随机初始化的朴素 Inception 块模块的层(在较高级别)。此外,我们在提出的架构中添加了批量归一化、扁平化、辍学和密集层。我们的迁移网络称为 VGGIN-Net,它促进了从更大的 ImageNet 对象数据集到较小的不平衡乳腺癌数据集的领域知识转移。为了提高所提出模型的性能,我们以辍学和数据增强的形式使用了正则化。对所提出的深度迁移网络进行了详细的分块微调,以适应不同放大倍数的图像。广泛的实验结果表明,在进行微调后,分类性能有了显著提高。与其他用于 BreakHis 乳腺癌数据集分类的最先进方法相比,具有迁移学习和微调的深度学习架构可获得最高的准确率。所设计的体系结构可以有效地在其他乳腺癌数据集上进行转移学习。

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