Introduction To The Physics and Techniques of Remote Sensing, 2/e (Hardcover)
暫譯: 遙感物理學與技術導論(第二版,精裝本)

Charles Elachi, Jakob J. van Zyl

  • 出版商: Wiley
  • 出版日期: 2006-03-01
  • 售價: $6,670
  • 貴賓價: 9.5$6,336
  • 語言: 英文
  • 頁數: 616
  • 裝訂: Hardcover
  • ISBN: 0471475696
  • ISBN-13: 9780471475699
  • 相關分類: 物理學 Physics
  • 已絕版

商品描述

Description

The science and engineering of remote sensing—theory and applications

 

The Second Edition of this authoritative book offers readers the essential science and engineering foundation needed to understand remote sensing and apply it in real-world situations. Thoroughly updated to reflect the tremendous technological leaps made since the publication of the first edition, this book covers the gamut of knowledge and skills needed to work in this dynamic field, including:

  • Physics involved in wave-matter interaction, the building blocks for interpreting data
  • Techniques used to collect data
  • Remote sensing applications

The authors have carefully structured and organized the book to introduce readers to the basics, and then move on to more advanced applications. Following an introduction, Chapter 2 sets forth the basic properties of electromagnetic waves and their interactions with matter. Chapters 3 through 7 cover the use of remote sensing in solid surface studies, including oceans. Each chapter covers one major part of the electromagnetic spectrum (e.g., visible/near infrared, thermal infrared, passive microwave, and active microwave).

Chapters 8 through 12 then cover remote sensing in the study of atmospheres and ionospheres. Each chapter first presents the basic interaction mechanism, followed by techniques to acquire, measure, and study the information, or waves, emanating from the medium under investigation. In most cases, a specific advanced sensor is used for illustration.

The book is generously illustrated with fifty percent new figures. Numerous illustrations are reproduced in a separate section of color plates. Examples of data acquired from spaceborne sensors are included throughout. Finally, a set of exercises, along with a solutions manual, is provided.

This book is based on an upper-level undergraduate and first-year graduate course taught by the authors at the California Institute of Technology. Because of the multidisciplinary nature of the field and its applications, it is appropriate for students in electrical engineering, applied physics, geology, planetary science, astronomy, and aeronautics. It is also recommended for any engineer or scientist interested in working in this exciting field.

 

 

Table of Contents

Preface.

1. Introduction.

1-1 Types and Classes of Remote Sensing Data.

1-2 Brief History of Remote Sensing.

1-3 Remote Sensing Space Platforms.

1-4 Transmission Through the Earth and Planetary Atmospheres.

References and Further Reading.

2. Nature and Properties of Electromagnetic Waves.

2-1 Fundamental Properties of Electromagnetic Waves.

2-2 Nomenclature and Definition of Radiation Quantities.

2-3 Generation of Electromagnetic Radiation.

2-4 Detection of Electromagnetic Radiation.

2-5 Interaction of Electromagnetic Waves with Matter: Quick Overview.

2-6 Interaction Mechanisms Throughout the Electromagnetic Spectrum.

Exercises.

References and Further Reading.

3. Solid Surfaces Sensing in the Visible and Near Infrared.

3-1 Source Spectral Characteristics.

3-2 Wave-Surface Interaction Mechanisms.

3-3 Signature of Solid Surface Materials.

3-4 Passive Imaging Sensors.

3-5 Types of Imaging Systems.

3-6 Description of Some Visible/Infrared Imaging Sensors.

3-7 Active Sensors.

3-8 Surface Sensing at Very Short Wavelengths.

3-9 Image Data Analysis.

Exercises.

References and Further Reading.

4. Solid-Surface Sensing: Thermal Infrared.

4-1 Thermal Radiation Laws.

4-2 Heat Conduction Theory.

4-3 Effect of Periodic Heating.

4-4 Use of Thermal Emission in Surface Remote Sensing.

4-5 Use of Thermal Infrared Spectral Signatures in Sensing.

4-6 Thermal Infrared Sensors.

Exercises.

References and Further Reading.

5. Solid-Surface Sensing: Microwave Emission.

5-1 Power-Temperature Correspondence.

5-2 Simple Microwave Radiometry Models.

5-3 Applications and Use in Surface Sensing.

5-4 Description of Microwave Radiometers.

5-5 Examples of Developed Radiometers.

Exercises.

References and Further Reading.

6. Solid-Surface Sensing: Microwave and Radio Frequencies.

6-1 Surface Interaction Mechanism.

6-2 Basic Principles of Radar Sensors.

6-3 Imaging Sensors: Real-Aperture Radars.

6-4 Imaging Sensors: Synthetic-Aperture Radars.

6-5 Nonimaging Radar Sensors: Scatterometers.

6-6 Nonimaging Radar Sensors: Altimeters.

6-7 Nonconventional Radar Sensors.

6-8 Subsurface Sounding.

Exercises.

References and Further Readings.

7 Ocean Surface Sensing.

7-1 Physical Properties of the Ocean Surface.

7-2 Mapping of the Ocean Topography.

7-3 Surface Wind Mapping.

7-4 Ocean Surface Imaging .

Exercises.

References and Further Reading.

8. Basic Principles of Atmospheric Sensing and Radiative Transfer.

8-1 Physical Properties of the Atmosphere.

8-2 Atmospheric Composition.

8-3 Particulates and Clouds.

8-4 Wave Interaction Mechanisms in Planetary Atmospheres.

8-5 Optical Thickness.

8-6 Radiative Transfer Equation.

8-7 Case of a Nonscattering Plane Parallel Atmosphere.

8-8 Basic Concepts of Atmospheric Remote Sounding.

Exercises.

References and Further Reading.

9. Atmospheric Remote Sensing in the Microwave Region.

9-1 Microwave Interactions with Atmospheric Gases.

9-2 Basic Concept of Downlooking Sensors.

9-3 Basic Concept for Uplooking Sensors.

9-4 Basic Concept for Limblooking Sensors.

9-5 Inversion Concepts.

9-6 Basic Elements of Passive Microwave Sensors.

9-7 Surface Pressure Sensing.

9-8 Atmospheric Sounding by Occultation.

9-9 Microwave Scattering by Atmospheric Particles.

9-10 Radar Sounding of Rain.

9-11 Radar Equation for Precipitation Measurement.

9-12 The Tropical Rainfall Measuring Mission (TRMM).

Exercises.

References and Further Reading.

10. Millimeter and Submillimeter Sensing of Atmospheres.

10-1 Interaction with Atmospheric Constituents.

10-2 Downlooking Sounding.

10-3 Limb Sounding.

10-4 Elements of a Millimeter Sounder.

Exercises.

References and Further Reading.

11. Atmospheric Remote Sensing in the Visible and Infrared.

11-1 Interaction of Visible and Infrared Radiation with the Atmosphere.

11-2 Downlooking Sounding.

11-3 Limb Sounding.

11-4 Sounding of Atmospheric Motion.

11-5 Atmospheric Sensing at Very Short Wavelengths.

Exercises.

References and Further Reading.

12. Ionospheric Sensing.

12-1 Properties of Planetary Ionospheres.

12-2 Wave Propagation in Ionized Media.

12-3 Ionospheric Profile Sensing by Topside Sounding.

12-4 Ionospheric Profile by Radio Occultation.

Exercises.

References and Further Reading.

Appendix A. Use of Multiple Sensors For Surface Observations.

Appendix B. Summary of Orbital Mechanics Relevant to Remote Sensing.

B-1 Circular Orbits.

B-1-1 General Characteristics.

B-1-2 Geosynchronous Orbits.

B-1-3 Sun-Synchronous Orbits.

B-1-4 Coverage.

B-2 Elliptical Orbits.

B-3 Orbit Selection.

Exercises.

Appendix C. Simplified Weighting Functions.

C-1 Case of Downlooking Sensors (Exponential Atmosphere).

C-2 Case of Downlooking Sensors (Linear Atmosphere).

C-3 Case of Upward Looking Sensors.

Appendix D. Compression of a Linear FM Chirp Signal.

Index.

商品描述(中文翻譯)

**描述**

遙感的科學與工程——理論與應用

本書的第二版為讀者提供了理解遙感及其在現實世界中應用所需的基本科學與工程基礎。此書經過全面更新,以反映自第一版出版以來所取得的巨大技術進步,涵蓋了在這個動態領域工作所需的知識和技能,包括:

- 涉及波與物質相互作用的物理學,這是解釋數據的基礎
- 用於收集數據的技術
- 遙感應用

作者精心結構和組織本書,以引導讀者從基礎知識開始,然後進入更高級的應用。在介紹之後,第二章闡述了電磁波的基本特性及其與物質的相互作用。第三至第七章涵蓋了遙感在固體表面研究中的應用,包括海洋。每章涵蓋電磁光譜的一個主要部分(例如,可見光/近紅外、熱紅外、被動微波和主動微波)。

第八至第十二章則涵蓋了遙感在大氣和電離層研究中的應用。每章首先介紹基本的相互作用機制,然後介紹獲取、測量和研究來自所研究介質的信息或波的技術。在大多數情況下,使用特定的高級傳感器進行說明。

本書配有大量插圖,其中有百分之五十的新圖。許多插圖在單獨的彩色圖版部分中重現。書中還包含了從太空傳感器獲取的數據示例。最後,提供了一組練習題及其解答手冊。

本書基於作者在加州理工學院教授的高年級本科生和一年級研究生課程。由於該領域及其應用的多學科特性,適合電機工程、應用物理、地質學、行星科學、天文學和航空學的學生。也推薦給任何有興趣在這個令人興奮的領域工作的工程師或科學家。

**目錄**

前言

1. 介紹
- 1-1 遙感數據的類型與分類
- 1-2 遙感的簡史
- 1-3 遙感空間平台
- 1-4 穿透地球和行星大氣的傳輸
- 參考文獻與進一步閱讀

2. 電磁波的性質與特性
- 2-1 電磁波的基本特性
- 2-2 輻射量的命名法與定義
- 2-3 電磁輻射的產生
- 2-4 電磁輻射的檢測
- 2-5 電磁波與物質的相互作用:快速概述
- 2-6 電磁光譜中的相互作用機制
- 練習題
- 參考文獻與進一步閱讀

3. 可見光與近紅外中的固體表面感測
- 3-1 源光譜特性
- 3-2 波與表面相互作用機制
- 3-3 固體表面材料的特徵
- 3-4 被動成像傳感器
- 3-5 成像系統的類型
- 3-6 一些可見/紅外成像傳感器的描述
- 3-7 主動傳感器
- 3-8 在非常短波長下的表面感測
- 3-9 圖像數據分析
- 練習題
- 參考文獻與進一步閱讀

4. 固體表面感測:熱紅外
- 4-1 熱輻射定律
- 4-2 熱傳導理論
- 4-3 週期性加熱的影響
- 4-4 在表面遙感中使用熱輻射
- 4-5 在感測中使用熱紅外光譜特徵
- 4-6 熱紅外傳感器
- 練習題
- 參考文獻與進一步閱讀

5. 固體表面感測:微波輻射
- 5-1 功率-溫度對應
- 5-2 簡單的微波輻射計模型
- 5-3 在表面感測中的應用與使用
- 5-4 微波輻射計的描述
- 5-5 已開發的輻射計示例
- 練習題
- 參考文獻與進一步閱讀

6. 固體表面感測:微波與無線電頻率
- 6-1 表面相互作用機制
- 6-2 雷達傳感器的基本原理
- 6-3 成像傳感器:實 aperture 雷達
- 6-4 成像傳感器:合成 aperture 雷達
- 6-5 非成像雷達傳感器:散射計