BiX-NAS: Searching Efficient Bi-directional Architecture for Medical Image Segmentation

被引:14
|
作者
Wang, Xinyi [1 ]
Xiang, Tiange [1 ]
Zhang, Chaoyi [1 ]
Song, Yang [2 ]
Liu, Dongnan [1 ]
Huang, Heng [3 ,4 ]
Cai, Weidong [1 ]
机构
[1] Univ Sydney, Sch Comp Sci, Camperdown, NSW, Australia
[2] Univ New South Wales, Sch Comp Sci & Engn, Sydney, NSW, Australia
[3] Univ Pittsburgh, Elect & Comp Engn, Pittsburgh, PA USA
[4] JD Finance Amer Corp, Mountain View, CA USA
关键词
Semantic segmentation; Recursive neural networks; Neural architecture search;
D O I
10.1007/978-3-030-87193-2_22
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
The recurrent mechanism has recently been introduced into U-Net in various medical image segmentation tasks. Existing studies have focused on promoting network recursion via reusing building blocks. Although network parameters could be greatly saved, computational costs still increase inevitably in accordance with the pre-set iteration time. In this work, we study a multi-scale upgrade of a bi-directional skip connected network and then automatically discover an efficient architecture by a novel two-phase Neural Architecture Search (NAS) algorithm, namely BiX-NAS. Our proposed method reduces the network computational cost by sifting out ineffective multi-scale features at different levels and iterations. We evaluate BiX-NAS on two segmentation tasks using three different medical image datasets, and the experimental results show that our BiX-NAS searched architecture achieves the state-of-theart performance with significantly lower computational cost. Our project page is available at: https://bionets.github.io .
引用
收藏
页码:229 / 238
页数:10
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