Description

Book Synopsis

This easy-to-follow textbook presents an engaging introduction to the fascinating world of medical image analysis. Avoiding an overly mathematical treatment, the text focuses on intuitive explanations, illustrating the key algorithms and concepts in a way which will make sense to students from a broad range of different backgrounds.

Topics and features: explains what light is, and how it can be captured by a camera and converted into an image, as well as how images can be compressed and stored; describes basic image manipulation methods for understanding and improving image quality, and a useful segmentation algorithm; reviews the basic image processing methods for segmenting or enhancing certain features in an image, with a focus on morphology methods for binary images; examines how to detect, describe, and recognize objects in an image, and how the nature of color can be used for segmenting objects; introduces a statistical method to determine what class of object the pixels in an image represent; describes how to change the geometry within an image, how to align two images so that they are as similar as possible, and how to detect lines and paths in images; provides further exercises and other supplementary material at an associated website.

This concise and accessible textbook will be invaluable to undergraduate students of computer science, engineering, medicine, and any multi-disciplinary courses that combine topics on health with data science. Medical practitioners working with medical imaging devices will also appreciate this easy-to-understand explanation of the technology.



Table of Contents

Introduction

Image Acquisition

Image Storage and Compression

Point Processing

Neighborhood Processing

Morphology

BLOB Analysis

Color Images

Pixel Classification

Geometric Transformations

Image Registration

Line and Path Detection

Appendix A: Bits, Bytes and Binary Numbers

Appendix B: Mathematical Definitions

Introduction to Medical Image Analysis

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    £23.51

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    Order before 4pm today for delivery by Wed 17 Jun 2026.

    A Paperback by Rasmus R. Paulsen, Thomas B. Moeslund

    15 in stock


      View other formats and editions of Introduction to Medical Image Analysis by Rasmus R. Paulsen

      Publisher: Springer Nature Switzerland AG
      Publication Date: 27/05/2020
      ISBN13: 9783030393632, 978-3030393632
      ISBN10: 3030393631

      Description

      Book Synopsis

      This easy-to-follow textbook presents an engaging introduction to the fascinating world of medical image analysis. Avoiding an overly mathematical treatment, the text focuses on intuitive explanations, illustrating the key algorithms and concepts in a way which will make sense to students from a broad range of different backgrounds.

      Topics and features: explains what light is, and how it can be captured by a camera and converted into an image, as well as how images can be compressed and stored; describes basic image manipulation methods for understanding and improving image quality, and a useful segmentation algorithm; reviews the basic image processing methods for segmenting or enhancing certain features in an image, with a focus on morphology methods for binary images; examines how to detect, describe, and recognize objects in an image, and how the nature of color can be used for segmenting objects; introduces a statistical method to determine what class of object the pixels in an image represent; describes how to change the geometry within an image, how to align two images so that they are as similar as possible, and how to detect lines and paths in images; provides further exercises and other supplementary material at an associated website.

      This concise and accessible textbook will be invaluable to undergraduate students of computer science, engineering, medicine, and any multi-disciplinary courses that combine topics on health with data science. Medical practitioners working with medical imaging devices will also appreciate this easy-to-understand explanation of the technology.



      Table of Contents

      Introduction

      Image Acquisition

      Image Storage and Compression

      Point Processing

      Neighborhood Processing

      Morphology

      BLOB Analysis

      Color Images

      Pixel Classification

      Geometric Transformations

      Image Registration

      Line and Path Detection

      Appendix A: Bits, Bytes and Binary Numbers

      Appendix B: Mathematical Definitions

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