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DTLR-CS: Deep tensor low rank channel cross fusion neural network for reproductive cell segmentation

Author

Listed:
  • Xia Zhao
  • Jiahui Wang
  • Jing Wang
  • Jing Wang
  • Renyun Hong
  • Tao Shen
  • Yi Liu
  • Yuanjiao Liang

Abstract

In recent years, with the development of deep learning technology, deep neural networks have been widely used in the field of medical image segmentation. U-shaped Network(U-Net) is a segmentation network proposed for medical images based on full-convolution and is gradually becoming the most commonly used segmentation architecture in the medical field. The encoder of U-Net is mainly used to capture the context information in the image, which plays an important role in the performance of the semantic segmentation algorithm. However, it is unstable for U-Net with simple skip connection to perform unstably in global multi-scale modelling, and it is prone to semantic gaps in feature fusion. Inspired by this, in this work, we propose a Deep Tensor Low Rank Channel Cross Fusion Neural Network (DTLR-CS) to replace the simple skip connection in U-Net. To avoid space compression and to solve the high rank problem, we designed a tensor low-ranking module to generate a large number of low-rank tensors containing context features. To reduce semantic differences, we introduced a cross-fusion connection module, which consists of a channel cross-fusion sub-module and a feature connection sub-module. Based on the proposed network, experiments have shown that our network has accurate cell segmentation performance.

Suggested Citation

  • Xia Zhao & Jiahui Wang & Jing Wang & Jing Wang & Renyun Hong & Tao Shen & Yi Liu & Yuanjiao Liang, 2023. "DTLR-CS: Deep tensor low rank channel cross fusion neural network for reproductive cell segmentation," PLOS ONE, Public Library of Science, vol. 18(11), pages 1-17, November.
  • Handle: RePEc:plo:pone00:0294727
    DOI: 10.1371/journal.pone.0294727
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