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Part I: Review
Chapter 1. Deep Learning and Computer-Aided Diagnosis for Medical Image Processing: A Personal Perspective
Chapter 2. Review of Deep Learning Methods in Mammography, Cardiovascular and Microscopy Image Analysis
Part II: Detection and Localization
Chapter 3. Efficient False-Positive Reduction in Computer-Aided Detection Using Convolutional Neural Networks and Random View Aggregation
Chapter 4. Robust Landmark Detection in Volumetric Data with Efficient 3D Deep Learning
Chapter 5. A Novel Cell Detection Method Using Deep Convolutional Neural Network and Maximum-Weight Independent Set
Chapter 6. Deep Learning for Histopathological Image Analysis: Towards Computerized Diagnosis on Cancers
Chapter 7. Interstitial Lung Diseases via Deep Convolutional Neural Networks: Segmentation Label Propagation, Unordered Pooling and Cross-Dataset Learning
Chapter 8. Three Aspects on Using Convolutional Neural Networks for Computer-Aided Detection in Medical Imaging
Chapter 9. Cell Detection with Deep Learning Accelerated by Sparse Kernel
Chapter 10. Fully Convolutional Networks in Medical Imaging: Applications to Image Enhancement and Recognition
Chapter 11. On the Necessity of Fine-Tuned Convolutional Neural Networks for Medical Imaging
Part III: Segmentation
Chapter 12. Fully Automated Segmentation Using Distance Regularized Level Set and Deep-Structured Learning and Inference
Chapter 13. Combining Deep Learning and Structured Prediction for Segmenting Masses in Mammograms
Chapter 14. Deep Learning Based Automatic Segmentation of Pathological Kidney in CT: Local vs. Global Image Context
Chapter 15. Robust Cell Detection and Segmentation in Histopathological Images using Sparse Reconstruction and Stacked Denoising Autoencoders
Chapter 16. Automatic Pancreas Segmentation Using Coarse-to-Fine Superpixel Labeling
Part IV: Big Dataset and Text-Image Deep Mining
Chapter 17. Interleaved Text/Image Deep Mining on a Large-Scale Radiology Image Database.

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