2021年度 人工知能学会全国大会(第35回)

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IEEE CYBCONF

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[1M3-CC] Machine Learning Application to Medical Engineering

2021年6月8日(火) 15:20 〜 17:00 M会場 (CybConf会場)

Kento Morita, Yuki Shinomiya

16:10 〜 16:35

[1M3-CC-03] Automatic benign and malignant estimation of bone tumors using deep learning

Kaito Furuo 1, Kento Morita 1, Tomohito Hagi 2, Tomoki Nakamura 2, Tetsushi Wakabayashi 1 (1. Mie University, 2. Mie University Hospital)

The bone tumor causes the bone pain and swelling, and is firstly diagnosed in a local hospital in many cases. This has become a problem in recent years, and also the benign and malignant nature of bone tumors is difficult and requires a great deal of effort even for medical specialists. Therefore, the development of a system to automatically estimate the benign or malignant nature of bone tumors is required. In this study, we propose a method for automatically estimating the benignity or malignancy of bone tumors using deep learning. We fine-tuned VGG16 and ResNet152 trained on ImageNet using image patches extracted from 38 plain X-ray images of 3 patients. Results on patch-level classification showed that VGG16 achieved higher estimation accuracy (f1-score of 0.790) than ResNet152 (f1- score of 0.784). We also performed the tumor-level classification experiment in which 4 benign and 6 malignant tumors were correctly classified to the appropriate class.

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