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author:

Qiu, Y. (Qiu, Y..) [1] | Chang, C.S. (Chang, C.S..) [2] | Yan, J.L. (Yan, J.L..) [3] | Ko, L. (Ko, L..) [4] | Chang, T.S. (Chang, T.S..) [5]

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Abstract:

This paper presents a semantic segmentation method that can distinguish six different types of intracranial hemorrhage and calculate the amount of blood loss. The major challenge of medical image segmentation are the lack of enough data due to the difficulty of data collection and labeling. In this paper, we propose to adopt a pretrained U-Net model with fine tuning to solve this problem. The best final test accuracy can reach 94.1%, which is 10.5% higher than the model training from scratch, proving its advantages in dealing with relatively complex datasets with a small amount of data, and the success of the proposed segmentation method. © 2019 IEEE.

Keyword:

Blood loss; Intracranial hemorrhage; Pretrained; Segmentation; U-Net

Community:

  • [ 1 ] [Qiu, Y.]Electronic Information Engineering Fuzhou Univ, Fuzhou, Fujian, China
  • [ 2 ] [Chang, C.S.]Institute of Electronics Nat'l Chiao Tung Univ, Taiwan
  • [ 3 ] [Yan, J.L.]Chang Gung Memorial Hospital, Dept. of Neurosurgery, Taiwan
  • [ 4 ] [Ko, L.]Chang Gung Memorial Hospital, Dept. of Neurosurgery, Taiwan
  • [ 5 ] [Chang, T.S.]Institute of Electronics Nat'l Chiao Tung Univ, Taiwan

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Source :

Proceedings of the IEEE International Conference on Software Engineering and Service Sciences, ICSESS

ISSN: 2327-0586

Year: 2019

Volume: 2019-October

Page: 112-115

Language: English

Cited Count:

WoS CC Cited Count: 0

SCOPUS Cited Count: 38

ESI Highly Cited Papers on the List: 0 Unfold All

WanFang Cited Count:

Chinese Cited Count:

30 Days PV: 9

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