Automatic breast tumor detection in ABVS images based on convolutional neural network and superpixel patterns (original) (raw)
Abstract
Breast cancer is one of the most common female malignancies, as well as the second leading cause of mortality for women. Early detection and treatment can dramatically decrease the mortality rate. Recently, automated breast volume scanner (ABVS) has become one of the most frequently used diagnose methods for breast tumor screening because of its operator-independent and reproducible advantages. However, it is a challenging job to obtain the tumors’ accurate locations and shapes by reviewing hundreds of ABVS slices. In this paper, a novel computer-aided detection (CADe) system is developed to reduce clinicians’ reading time and improve the efficiency. The CADe system mainly contains three parts: tumor candidate acquisition, false-positive reduction and tumor segmentation. Firstly, a local phase-based approach is built to obtain breast tumor candidates for further recognition. Subsequently, a convolutional neural network (CNN) is applied to reduce false positives (FPs). The introduction of CNN can help to avoid complicated feature extraction as well as elevate the accuracy and efficiency. Finally, superpixel-based segmentation is used to outline the breast tumor. Here, superpixel-based local binary pattern (SLBP) is proposed to assist the segmentation, which improves the performance. The methods were evaluated on a clinical ABVS dataset whose abnormal cases were manually labeled by an experienced radiologist. The experiment results were mainly composed of two parts. At the FP reduction stage, the proposed CNN achieved 100% and 78.12% sensitivity with FPs/case of 2.16 and 0. At the segmentation stage, our SLBP obtained 82.34% true positive, 15.79% false positive and 83.59% Dice similarity. In summary, the proposed CADe system demonstrated promising potential to detect and outline breast tumors in ABVS images.
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Acknowledgement
This work is supported by the National Basic Research Program of China (2015CB755500) and the National Natural Science Foundation of China (61271071, 61401102, 81627804).
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Authors and Affiliations
- Department of Electronic Engineering, Fudan University, Shanghai, 200032, China
Xin Wang, Yi Guo, Yuanyuan Wang & Jinhua Yu - Key Laboratory of Medical Imaging Computing and Computer Assisted Intervention of Shanghai, Shanghai, 200032, China
Yi Guo, Yuanyuan Wang & Jinhua Yu
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- Xin Wang
- Yi Guo
- Yuanyuan Wang
- Jinhua Yu
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Correspondence toYi Guo or Yuanyuan Wang.
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Wang, X., Guo, Y., Wang, Y. et al. Automatic breast tumor detection in ABVS images based on convolutional neural network and superpixel patterns.Neural Comput & Applic 31, 1069–1081 (2019). https://doi.org/10.1007/s00521-017-3138-x
- Received: 09 December 2016
- Accepted: 27 June 2017
- Published: 07 July 2017
- Issue date: 01 April 2019
- DOI: https://doi.org/10.1007/s00521-017-3138-x