Detecting prostate cancer using deep learning convolution neural network with transfer learning approach

被引:0
|
作者
Adeel Ahmed Abbasi
Lal Hussain
Imtiaz Ahmed Awan
Imran Abbasi
Abdul Majid
Malik Sajjad Ahmed Nadeem
Quratul-Ain Chaudhary
机构
[1] The University of Azad Jammu and Kashmir,Department of Computer Science and IT
来源
Cognitive Neurodynamics | 2020年 / 14卷
关键词
Prostate cancer; Deep learning (DL); Convolutional neural network (CNN); GoogleNet; Transfer learning;
D O I
暂无
中图分类号
学科分类号
摘要
Prostate Cancer in men has become one of the most diagnosed cancer and also one of the leading causes of death in United States of America. Radiologists cannot detect prostate cancer properly because of complexity in masses. In recent past, many prostate cancer detection techniques were developed but these could not diagnose cancer efficiently. In this research work, robust deep learning convolutional neural network (CNN) is employed, using transfer learning approach. Results are compared with various machine learning strategies (Decision Tree, SVM different kernels, Bayes). Cancer MRI database are used to train GoogleNet model and to train Machine Learning classifiers, various features such as Morphological, Entropy based, Texture, SIFT (Scale Invariant Feature Transform), and Elliptic Fourier Descriptors are extracted. For the purpose of performance evaluation, various performance measures such as specificity, sensitivity, Positive predictive value, negative predictive value, false positive rate and receive operating curve are calculated. The maximum performance was found with CNN model (GoogleNet), using Transfer learning approach. We have obtained reasonably good results with various Machine Learning Classifiers such as Decision Tree, Support Vector Machine RBF kernel and Bayes, however outstanding results were obtained by using deep learning technique.
引用
收藏
页码:523 / 533
页数:10
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