Jakob J. Zyl - Introduction to the Physics and Techniques of Remote Sensing

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Discover cutting edge theory and applications of modern remote sensing in geology, oceanography, atmospheric science, ionospheric studies, and more  The thoroughly revised third edition of the 
delivers a comprehensive update to the authoritative textbook, offering readers new sections on radar interferometry, radar stereo, and planetary radar. It explores new techniques in imaging spectroscopy and large optics used in Earth orbiting, planetary, and astrophysics missions. It also describes remote sensing instruments on, as well as data acquired with, the most recent Earth and space missions. 
Readers will benefit from the brand new and up-to-date concept examples and full-color photography, 50% of which is new to the series. You’ll learn about the basic physics of wave/matter interactions, techniques of remote sensing across the electromagnetic spectrum (from ultraviolet to microwave), and the concepts behind the remote sensing techniques used today and those planned for the future. 
The book also discusses the applications of remote sensing for a wide variety of earth and planetary atmosphere and surface sciences, like geology, oceanography, resource observation, atmospheric sciences, and ionospheric studies. This new edition also incorporates: 
A fulsome introduction to the nature and properties of electromagnetic waves An exploration of sensing solid surfaces in the visible and near infrared spectrums, as well as thermal infrared, microwave, and radio frequencies A treatment of ocean surface sensing, including ocean surface imaging and the mapping of ocean topography A discussion of the basic principles of atmospheric sensing and radiative transfer, including the radiative transfer equation Perfect for senior undergraduate and graduate students in the field of remote sensing instrument development, data analysis, and data utilization, 
 will also earn a place in the libraries of students, faculty, researchers, engineers, and practitioners in fields like aerospace, electrical engineering, and astronomy.

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12 Chapter 12Figure 12.1 Ionospheric electron density profiles for Venus, Earth, Jupiter,...Figure 12.2 Simple example illustrating the plasma oscillation.Figure 12.3 Behavior of the group velocity and phase velocity as a function ...Figure 12.4 Motion of an electron in a magnetic field and forces acting on t...Figure 12.5 Simple sketch illustrating the depth penetration in the ionosphe...Figure 12.6 Sketch showing how an ionospheric profile is approximated by a s...Figure 12.7 Latitude variations of the electron concentrations at different ...Figure 12.8 Geometry for a dual‐frequency occultation measurement using a GP...

13 1Figure A.1 Images of Death Valley, California, acquired in the three major r...Figure A.2 False illumination image derived by computer processing from the ...Figure A.3 Two perspective views generated from a combination of Landsat ima...Figure A.4 Surface perspective view generated from a combination of the Land...

14 2Figure B.1 Orbital velocity and period function of altitude for a circular o...Figure B.2 . Orientation of the orbit in space.Figure B.3 Satellite orbit precession as a function of orbital altitude h an...Figure B.4 Surface trace of a circular geosynchronous orbit with 45° inclina...Figure B.5 Surface trace of an elliptical geosynchronous orbit with 45° incl...Figure B.6 (a) Orbit nadir trace on a nonrotating planet. (b) Orbit trace on...Figure B.7 Periodic coverage patterns as a function of altitude for sun‐sync...Figure B.8 Coverage scenario of four different orbital altitudes that provid...Figure B.9 Elliptical orbit.Figure B.10 Ground trace for a 12‐hour elliptical orbit with an ellipticity ...

15 4Figure D.1 The relationship between the pulse and its replica for the case i...Figure D.2 The relationship between the pulse and its replica for the case i...

Guide

1 Cover Page

2 Series Page WILEY SERIES IN REMOTE SENSING Jin Au Kong, Editor Asrar • THEORY AND APPLICATIONS OF OPTICAL REMOTE SENSING Crane • ELECTROMAGNETIC WAVE PROPAGATION THROUGH RAIN Curlander and McDonough • SYNTHETIC APERTURE RADAR: SYSTEMS AND SIGNAL PROCESSING Elachi and van Zyl • INTRODUCTION TO THE PHYSICS AND TECHNIQUES OF REMOTE SENSING, Second Edition Haykin, Lewis, Raney, and Rossiter • REMOTE SENSING OF SEA ICE AND ICEBERGS Haykin and Steinhardt • ADAPTIVE RADAR DETECTION AND ESTIMATION Janssen • ATMOSPHERIC REMOTE SENSING BY MICROWAVE RADIOMETRY Landgrebe • SIGNAL THEORY METHODS IN MULTISPECTRAL REMOTE SENSING Liang • QUANTITATIVE REMOTE SENSING OF LAND SURFACES Maffett • TOPICS FOR A STATISTICAL DESCRIPTION OF RADAR CROSS SECTIONS Steinberg and Subbaram • MICROWAVE IMAGING TECHNIQUES Szekielda • SATELLITE MONITORING OF THE EARTH Tsang, Kong, and Ding • SCATTERING OF ELECTROMAGNETIC WAVES: THEORIES AND APPLICATIONS Tsang, Kong, Ding, and Ao • SCATTERING OF ELECTROMAGNETIC WAVES: NUMERICAL SIMULATIONS Tsang and Kong • SCATTERING OF ELECTROMAGNETIC WAVES: ADVANCED TOPICS Udd • FIBER OPTIC SMART STRUCTURES

3 Title Page Introduction to the Physics and Techniques of Remote Sensing Third Edition Charles Elachi and Jakob van Zyl California Institute of TechnologyPasadena, California, USA

4 Copyright Page

5 Dedication Page

6 Preface

7 Table of Contents

8 Begin Reading

9 Appendix A Use of Multiple Sensors for Surface Observations

10 Appendix B Summary of Orbital Mechanics Relevant to Remote Sensing

11 Appendix C Simplified Weighting Functions

12 Appendix D Compression of a Linear FM Chirp Signal

13 Index

14 Wiley End User License Agreement

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