Remote Sensing Digital Image Analysis
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Author |
: John A. Richards |
Publisher |
: Springer Science & Business Media |
Total Pages |
: 297 |
Release |
: 2013-04-17 |
ISBN-10 |
: 9783662024621 |
ISBN-13 |
: 3662024624 |
Rating |
: 4/5 (21 Downloads) |
Synopsis Remote Sensing Digital Image Analysis by : John A. Richards
With the widespread availability of satellite and aircraft remote sensing image data in digital form, and the ready access most remote sensing practitioners have to computing systems for image interpretation, there is a need to draw together the range of digital image processing procedures and methodologies commonly used in this field into a single treatment. It is the intention of this book to provide such a function, at a level meaningful to the non-specialist digital image analyst, but in sufficient detail that algorithm limitations, alternative procedures and current trends can be appreciated. Often the applications specialist in remote sensing wishing to make use of digital processing procedures has had to depend upon either the mathematically detailed treatments of image processing found in the electrical engineering and computer science literature, or the sometimes necessarily superficial treatments given in general texts on remote sensing. This book seeks to redress that situation. Both image enhancement and classification techniques are covered making the material relevant in those applications in which photointerpretation is used for information extraction and in those wherein information is obtained by classification.
Author |
: John A. Richards |
Publisher |
: Springer Science & Business Media |
Total Pages |
: 503 |
Release |
: 2012-09-13 |
ISBN-10 |
: 9783642300622 |
ISBN-13 |
: 3642300626 |
Rating |
: 4/5 (22 Downloads) |
Synopsis Remote Sensing Digital Image Analysis by : John A. Richards
Remote Sensing Digital Image Analysis provides the non-specialist with an introduction to quantitative evaluation of satellite and aircraft derived remotely retrieved data. Since the first edition of the book there have been significant developments in the algorithms used for the processing and analysis of remote sensing imagery; nevertheless many of the fundamentals have substantially remained the same. This new edition presents material that has retained value since those early days, along with new techniques that can be incorporated into an operational framework for the analysis of remote sensing data. The book is designed as a teaching text for the senior undergraduate and postgraduate student, and as a fundamental treatment for those engaged in research using digital image processing in remote sensing. The presentation level is for the mathematical non-specialist. Since the very great number of operational users of remote sensing come from the earth sciences communities, the text is pitched at a level commensurate with their background. Each chapter covers the pros and cons of digital remotely sensed data, without detailed mathematical treatment of computer based algorithms, but in a manner conductive to an understanding of their capabilities and limitations. Problems conclude each chapter.
Author |
: Robert A. Schowengerdt |
Publisher |
: Elsevier |
Total Pages |
: 585 |
Release |
: 2012-12-02 |
ISBN-10 |
: 9780080516103 |
ISBN-13 |
: 0080516106 |
Rating |
: 4/5 (03 Downloads) |
Synopsis Remote Sensing by : Robert A. Schowengerdt
This book is a completely updated, greatly expanded version of the previously successful volume by the author. The Second Edition includes new results and data, and discusses a unified framework and rationale for designing and evaluating image processing algorithms.Written from the viewpoint that image processing supports remote sensing science, this book describes physical models for remote sensing phenomenology and sensors and how they contribute to models for remote-sensing data. The text then presents image processing techniques and interprets them in terms of these models. Spectral, spatial, and geometric models are used to introduce advanced image processing techniques such as hyperspectral image analysis, fusion of multisensor images, and digital elevationmodel extraction from stereo imagery.The material is suited for graduate level engineering, physical and natural science courses, or practicing remote sensing scientists. Each chapter is enhanced by student exercises designed to stimulate an understanding of the material. Over 300 figuresare produced specifically for this book, and numerous tables provide a rich bibliography of the research literature.
Author |
: D. Jude Hemanth |
Publisher |
: Springer Nature |
Total Pages |
: 277 |
Release |
: 2019-11-13 |
ISBN-10 |
: 9783030241780 |
ISBN-13 |
: 3030241785 |
Rating |
: 4/5 (80 Downloads) |
Synopsis Artificial Intelligence Techniques for Satellite Image Analysis by : D. Jude Hemanth
The main objective of this book is to provide a common platform for diverse concepts in satellite image processing. In particular it presents the state-of-the-art in Artificial Intelligence (AI) methodologies and shares findings that can be translated into real-time applications to benefit humankind. Interdisciplinary in its scope, the book will be of interest to both newcomers and experienced scientists working in the fields of satellite image processing, geo-engineering, remote sensing and Artificial Intelligence. It can be also used as a supplementary textbook for graduate students in various engineering branches related to image processing.
Author |
: Thomas Blaschke |
Publisher |
: Springer Science & Business Media |
Total Pages |
: 804 |
Release |
: 2008-08-09 |
ISBN-10 |
: 9783540770589 |
ISBN-13 |
: 3540770585 |
Rating |
: 4/5 (89 Downloads) |
Synopsis Object-Based Image Analysis by : Thomas Blaschke
This book brings together a collection of invited interdisciplinary persp- tives on the recent topic of Object-based Image Analysis (OBIA). Its c- st tent is based on select papers from the 1 OBIA International Conference held in Salzburg in July 2006, and is enriched by several invited chapters. All submissions have passed through a blind peer-review process resulting in what we believe is a timely volume of the highest scientific, theoretical and technical standards. The concept of OBIA first gained widespread interest within the GIScience (Geographic Information Science) community circa 2000, with the advent of the first commercial software for what was then termed ‘obje- oriented image analysis’. However, it is widely agreed that OBIA builds on older segmentation, edge-detection and classification concepts that have been used in remote sensing image analysis for several decades. Nevert- less, its emergence has provided a new critical bridge to spatial concepts applied in multiscale landscape analysis, Geographic Information Systems (GIS) and the synergy between image-objects and their radiometric char- teristics and analyses in Earth Observation data (EO).
Author |
: Jian Guo Liu |
Publisher |
: John Wiley & Sons |
Total Pages |
: 484 |
Release |
: 2016-03-21 |
ISBN-10 |
: 9781118724200 |
ISBN-13 |
: 1118724208 |
Rating |
: 4/5 (00 Downloads) |
Synopsis Image Processing and GIS for Remote Sensing by : Jian Guo Liu
Following the successful publication of the 1st edition in 2009, the 2nd edition maintains its aim to provide an application-driven package of essential techniques in image processing and GIS, together with case studies for demonstration and guidance in remote sensing applications. The book therefore has a “3 in 1” structure which pinpoints the intersection between these three individual disciplines and successfully draws them together in a balanced and comprehensive manner. The book conveys in-depth knowledge of image processing and GIS techniques in an accessible and comprehensive manner, with clear explanations and conceptual illustrations used throughout to enhance student learning. The understanding of key concepts is always emphasised with minimal assumption of prior mathematical experience. The book is heavily based on the authors’ own research. Many of the author-designed image processing techniques are popular around the world. For instance, the SFIM technique has long been adopted by ASTRIUM for mass-production of their standard “Pan-sharpen” imagery data. The new edition also includes a completely new chapter on subpixel technology and new case studies, based on their recent research.
Author |
: John R. Jensen |
Publisher |
: |
Total Pages |
: 584 |
Release |
: 2005 |
ISBN-10 |
: MINN:31951D02061825M |
ISBN-13 |
: |
Rating |
: 4/5 (5M Downloads) |
Synopsis Introductory Digital Image Processing by : John R. Jensen
For junior/graduate-level courses in Remote Sensing in Geography, Geology, Forestry, and Biology. This revision of Introductory Digital Image Processing: A Remote Sensing Perspective continues to focus on digital image processing of aircraft- and satellite-derived, remotely sensed data for Earth resource management applications. Extensively illustrated, it explains how to extract biophysical information from remote sensor data for almost all multidisciplinary land-based environmental projects. Part of the Prentice Hall Series Geographic Information Science.
Author |
: Morton John Canty |
Publisher |
: CRC Press |
Total Pages |
: 445 |
Release |
: 2019-03-11 |
ISBN-10 |
: 9780429875342 |
ISBN-13 |
: 0429875347 |
Rating |
: 4/5 (42 Downloads) |
Synopsis Image Analysis, Classification and Change Detection in Remote Sensing by : Morton John Canty
Image Analysis, Classification and Change Detection in Remote Sensing: With Algorithms for Python, Fourth Edition, is focused on the development and implementation of statistically motivated, data-driven techniques for digital image analysis of remotely sensed imagery and it features a tight interweaving of statistical and machine learning theory of algorithms with computer codes. It develops statistical methods for the analysis of optical/infrared and synthetic aperture radar (SAR) imagery, including wavelet transformations, kernel methods for nonlinear classification, as well as an introduction to deep learning in the context of feed forward neural networks. New in the Fourth Edition: An in-depth treatment of a recent sequential change detection algorithm for polarimetric SAR image time series. The accompanying software consists of Python (open source) versions of all of the main image analysis algorithms. Presents easy, platform-independent software installation methods (Docker containerization). Utilizes freely accessible imagery via the Google Earth Engine and provides many examples of cloud programming (Google Earth Engine API). Examines deep learning examples including TensorFlow and a sound introduction to neural networks, Based on the success and the reputation of the previous editions and compared to other textbooks in the market, Professor Canty’s fourth edition differs in the depth and sophistication of the material treated as well as in its consistent use of computer codes to illustrate the methods and algorithms discussed. It is self-contained and illustrated with many programming examples, all of which can be conveniently run in a web browser. Each chapter concludes with exercises complementing or extending the material in the text.
Author |
: Qihao Weng |
Publisher |
: CRC Press |
Total Pages |
: 264 |
Release |
: 2020-06-30 |
ISBN-10 |
: 036757179X |
ISBN-13 |
: 9780367571795 |
Rating |
: 4/5 (9X Downloads) |
Synopsis Remote Sensing Time Series Image Processing by : Qihao Weng
This book explores the current state of knowledge on remote sensing time series image processing and addresses all major aspects and components of time series image analysis with ample examples and applications.
Author |
: Morton J. Canty |
Publisher |
: CRC Press |
Total Pages |
: 575 |
Release |
: 2014-06-06 |
ISBN-10 |
: 9781466570375 |
ISBN-13 |
: 1466570377 |
Rating |
: 4/5 (75 Downloads) |
Synopsis Image Analysis, Classification and Change Detection in Remote Sensing by : Morton J. Canty
Image Analysis, Classification and Change Detection in Remote Sensing: With Algorithms for ENVI/IDL and Python, Third Edition introduces techniques used in the processing of remote sensing digital imagery. It emphasizes the development and implementation of statistically motivated, data-driven techniques. The author achieves this by tightly interweaving theory, algorithms, and computer codes. See What’s New in the Third Edition: Inclusion of extensive code in Python, with a cloud computing example New material on synthetic aperture radar (SAR) data analysis New illustrations in all chapters Extended theoretical development The material is self-contained and illustrated with many programming examples in IDL. The illustrations and applications in the text can be plugged in to the ENVI system in a completely transparent fashion and used immediately both for study and for processing of real imagery. The inclusion of Python-coded versions of the main image analysis algorithms discussed make it accessible to students and teachers without expensive ENVI/IDL licenses. Furthermore, Python platforms can take advantage of new cloud services that essentially provide unlimited computational power. The book covers both multispectral and polarimetric radar image analysis techniques in a way that makes both the differences and parallels clear and emphasizes the importance of choosing appropriate statistical methods. Each chapter concludes with exercises, some of which are small programming projects, intended to illustrate or justify the foregoing development, making this self-contained text ideal for self-study or classroom use.