Preface |
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xvii | |
Author |
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xxv | |
Section I The Modern Optical Systems Engineering Landscape: Systems Engineering in Relation to the Enterprise, System-of-Systems, and Family-of-Systems |
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1 Introduction to Systems Engineering |
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3 | (46) |
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1.1 Systems Engineering in the Modern Age |
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3 | (18) |
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1.1.1 Short History of Systems Engineering |
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4 | (1) |
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1.1.2 Some Definitions of Systems Engineering |
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5 | (3) |
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1.1.3 Diverse Systems Engineer |
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8 | (2) |
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1.1.4 Introduction to the Enterprise and Its Architectural Description |
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10 | (1) |
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1.1.5 Introduction to SOS and FOS |
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11 | (1) |
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1.1.6 U.S. JCIDS and the DOD Acquisition System |
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12 | (4) |
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1.1.7 Introduction to Systems Engineering across the Life Cycle |
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16 | (4) |
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1.1.8 Transition to Optical Systems Building Blocks |
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20 | (1) |
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1.2 Optical Systems Building Blocks: Introduction, Systems of Units, Optical Systems Methodologies, and Terminology |
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21 | (16) |
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1.2.1 Introduction to Optical Systems |
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21 | (2) |
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1.2.2 Overview of Adopted Systems of Units |
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23 | (4) |
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1.2.3 Optical Systems Methodologies |
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27 | (6) |
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1.2.4 Fundamental Optical Systems Concepts and Terminology |
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33 | (4) |
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1.3 Integrated Case Study: Introduction to Our Optical Systems Engineering Case Study |
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37 | (8) |
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45 | (1) |
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46 | (3) |
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2 Enterprise Architecture Fundamentals |
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49 | (78) |
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2.1 High-Level Integrated Model |
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50 | (14) |
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2.1.1 Purpose of Enterprise Architecture |
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50 | (1) |
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2.1.2 Historical Background |
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51 | (1) |
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2.1.3 Types of Architectures |
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51 | (3) |
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2.1.3.1 Relative Comparisons |
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53 | (1) |
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2.1.4 Architecture Type Roles in Multiple-Entity Development Process |
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54 | (1) |
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2.1.5 Architectural Framework |
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55 | (8) |
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2.1.5.1 Enterprise Architecture Cube |
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55 | (1) |
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56 | (2) |
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2.1.5.3 The Open Group Architectural Framework |
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58 | (2) |
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2.1.5.4 Federal Enterprise Architectural Framework |
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60 | (2) |
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2.1.5.5 Ministry of Defense Architectural Framework |
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62 | (1) |
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63 | (1) |
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2.2 Optical Systems Model |
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64 | (44) |
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2.2.1 Fundamentals of Electromagnetic Propagation Theory |
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66 | (8) |
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2.2.2 Linear and Nonlinear Systems Models |
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74 | (14) |
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2.2.3 Sampling Considerations |
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88 | (5) |
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2.2.4 Statistical Optics Models |
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93 | (15) |
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2.3 Integrated Case Study: Introduction to Enterprise Architecture |
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108 | (14) |
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2.3.1 Defining the Enterprise Architecture for FIT |
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108 | (14) |
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122 | (1) |
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Appendix: Fourier Transform Pairs |
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123 | (1) |
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124 | (3) |
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3 Systems of Systems, Family of Systems, and Systems Engineering |
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127 | (34) |
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127 | (13) |
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128 | (2) |
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130 | (1) |
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3.1.3 Systems Engineering Processes across the Systems Development Life-Cycle Phases |
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131 | (30) |
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3.1.3.1 Overall Systems Engineering Development Process |
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131 | (2) |
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3.1.3.2 Systems Engineering Waterfall Process |
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133 | (7) |
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3.2 Optical Systems Building Block: Optical System of Systems Model |
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140 | (13) |
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3.3 Integrated Case Study: Implementing a System of Systems Optical Model |
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153 | (6) |
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159 | (1) |
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159 | (2) |
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4 Model-Based Systems Engineering |
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161 | (40) |
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161 | (7) |
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4.1.1 Introduction to MBSE |
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162 | (3) |
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165 | (2) |
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4.1.3 Transition to Optical Systems Building Blocks |
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167 | (1) |
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4.2 Optical Systems Building Block: The Basic Optical System |
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168 | (19) |
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4.2.1 Basic Optical Principles |
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169 | (13) |
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169 | (3) |
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172 | (1) |
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173 | (2) |
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175 | (7) |
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4.2.1.5 Antireflective Coating |
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182 | (1) |
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4.2.2 Achromatic Principle |
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182 | (2) |
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184 | (2) |
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186 | (1) |
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4.2.5 Optical Design Software |
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186 | (1) |
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4.3 Integrated Case Study: MBSE, MATLAB®, and Rapid Prototyping at FIT (Basic Optical Components) |
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187 | (9) |
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196 | (1) |
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196 | (5) |
Section II Application of Systems Engineering Tools, Methods, and Techniques to Optical Systems |
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201 | (66) |
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5.1 Systems Engineering Principles and Methods for Problem Definition |
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201 | (17) |
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5.1.1 Stakeholder Identification |
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203 | (5) |
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208 | (2) |
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5.1.3 Stakeholder Requirements |
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210 | (3) |
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5.1.4 Concept of Operations |
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213 | (2) |
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215 | (2) |
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216 | (1) |
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216 | (1) |
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5.1.5.3 Scope Verification |
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216 | (1) |
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216 | (1) |
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5.1.6 Goals and Objectives |
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217 | (1) |
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5.1.7 Transition to Optical Systems Building Blocks |
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217 | (1) |
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5.2 Optical Systems Building Blocks: Optical Sources |
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218 | (34) |
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5.2.1 Visible and IR Parts of the Electromagnetic Spectrum |
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218 | (3) |
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5.2.1.1 IR Sources: Thermal and Selective Radiators |
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220 | (1) |
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5.2.2 Absorption and Emission Spectra |
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221 | (1) |
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5.2.3 Thermal Radiation in the IR Spectrum |
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221 | (1) |
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222 | (1) |
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5.2.5 Stefan-Boltzmann Law |
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223 | (1) |
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5.2.6 Kirchhoff's Law of Radiative Transfer |
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224 | (1) |
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225 | (1) |
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5.2.8 Emissivity of Common Materials |
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226 | (1) |
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5.2.9 Sources That Approximate Blackbody Radiators |
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226 | (5) |
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5.2.10 Tools for Radiation Calculations |
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231 | (1) |
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5.2.11 Scale Choice in Plotting |
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232 | (1) |
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5.2.12 Radiation Efficiency |
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233 | (1) |
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5.2.13 Making Blackbody Sources |
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233 | (3) |
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5.2.14 Sources, Standards, and NIST |
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236 | (6) |
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239 | (1) |
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5.2.14.2 Sources of Ultraviolet Radiation |
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239 | (1) |
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5.2.14.3 Light-Emitting Diodes |
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239 | (1) |
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239 | (1) |
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5.2.14.5 UV/Visible/IR Lasers |
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239 | (1) |
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5.2.14.6 Visible Light Sources |
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240 | (1) |
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241 | (1) |
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241 | (1) |
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242 | (1) |
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242 | (1) |
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242 | (1) |
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242 | (1) |
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5.2.15 Conventional Target Characteristics |
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242 | (4) |
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5.2.15.1 Aircraft: Turbojet |
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243 | (1) |
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5.2.15.2 Aircraft: Turbofan Engine |
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244 | (1) |
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5.2.15.3 Aircraft: Afterburning |
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245 | (1) |
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5.2.15.4 Aircraft: Ramjet |
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245 | (1) |
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245 | (1) |
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5.2.15.6 Atmospheric Heating |
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246 | (1) |
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246 | (1) |
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5.2.15.8 Ground-Based Vehicles |
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246 | (1) |
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246 | (1) |
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5.2.16 Background Radiation and Clutter |
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246 | (2) |
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247 | (1) |
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5.2.16.2 Atmosphere and Beyond |
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247 | (1) |
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5.2.17 Emissivity of Common Materials |
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248 | (1) |
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5.2.18 Common Nonmetallic Material Emissivities |
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248 | (1) |
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249 | (3) |
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5.2.19.1 Use Case 1: The Sun |
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250 | (1) |
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5.2.19.2 Use Case 2: Iron Furnace |
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251 | (1) |
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5.2.19.3 Use Case 3: Person in the Desert |
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251 | (1) |
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5.2.20 Practical Detection Applications |
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252 | (1) |
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5.2.21 Transition to a Dialog to Develop Stakeholders, Requirements, and Scope |
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252 | (1) |
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5.3 Integrated Case Study: Introduction |
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252 | (11) |
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263 | (1) |
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264 | (3) |
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6 Feasibility Studies, Trade Studies, and Alternative Analysis |
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267 | (58) |
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6.1 Understanding What Is Feasible |
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268 | (25) |
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268 | (1) |
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6.1.2 Uses of Feasibility Studies |
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269 | (1) |
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6.1.3 Application of the Feasibility Study |
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269 | (1) |
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6.1.4 Need for Feasibility Studies |
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270 | (3) |
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6.1.5 Establishing the Feasibility of Requirements |
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273 | (3) |
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6.1.6 Conducting Trade Studies |
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276 | (4) |
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6.1.7 Evaluating Alternatives: The Analytic Hierarchy Process |
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280 | (12) |
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6.1.8 Connection between Feasibility and Risk |
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292 | (1) |
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6.1.9 Transition to Optical Systems Building Blocks: Propagation of Radiation |
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293 | (1) |
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6.2 Optical Systems Building Block: Optical Radiation and Its Propagation |
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293 | (14) |
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294 | (2) |
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296 | (1) |
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6.2.3 Gaseous Absorption Spectra |
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297 | (1) |
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6.2.4 Liquid and Gas Absorption Spectra |
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298 | (1) |
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299 | (1) |
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300 | (1) |
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6.2.7 Radiation in the Visible and Infrared Parts of the Electromagnetic Spectrum |
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300 | (7) |
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6.3 Integrated Case Study: Establishing Technical Feasibility through Optical Propagation Analysis |
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307 | (13) |
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6.3.1 Part 1: An Unexpected Meeting |
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308 | (4) |
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6.3.2 Part 2: Lunch and Learn |
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312 | (4) |
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6.3.3 Part 3: The Trade-Offs Begin |
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316 | (1) |
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317 | (3) |
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320 | (1) |
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321 | (1) |
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322 | (3) |
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7 Systems and Requirements |
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325 | (38) |
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7.1 Requirements Generation Process |
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327 | (10) |
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7.1.1 Determining the "Whats!" |
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327 | (2) |
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329 | (3) |
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7.1.3 Techniques for Writing Good Requirements |
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332 | (2) |
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7.1.4 Importance of the Requirements Document |
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334 | (1) |
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7.1.5 Managing Requirements and Change: Model-Based Systems Engineering Requirements Tools |
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335 | (2) |
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7.1.6 Transition to Optical Systems Building Block: Optical Modulation |
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337 | (1) |
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7.2 Optical Systems Building Block: Optical Modulation |
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337 | (17) |
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7.2.1 Early History of Optical Modulation |
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338 | (1) |
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339 | (3) |
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7.2.3 Background and Clutter Suppression |
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342 | (1) |
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7.2.4 Chopping Frequency Equation |
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343 | (1) |
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7.2.5 Simple Reticle System |
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343 | (2) |
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7.2.6 Optical Modulation and Coding |
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345 | (1) |
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7.2.7 Reticle Applications |
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346 | (1) |
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7.2.8 Reticle Considerations |
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346 | (1) |
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7.2.9 Reticles for Directional Information |
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347 | (1) |
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347 | (1) |
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7.2.11 Background Rejection |
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348 | (2) |
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7.2.12 Acousto-Optic Modulator |
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350 | (1) |
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7.2.13 Electro-Optic Modulator |
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350 | (1) |
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7.2.14 Two-Color Reticles |
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350 | (2) |
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7.2.15 Guide Star Systems and Reticles |
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352 | (1) |
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353 | (1) |
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7.2.17 Optical Modulation Summary |
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354 | (1) |
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7.3 Integrated Case Study: Systems Requirements and the Need for Optical Modulation |
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354 | (7) |
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361 | (2) |
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8 Maintenance and Support Planning |
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363 | (36) |
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8.1 Introduction to Maintenance and Support Planning |
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364 | (15) |
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8.1.1 Importance of Early Consideration of Maintenance and Support Elements |
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364 | (1) |
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365 | (11) |
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365 | (6) |
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371 | (4) |
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375 | (1) |
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8.1.3 SRMA Methods throughout the Systems Development Life Cycle |
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376 | (3) |
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8.1.3.1 SRMA in Conceptual Design |
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377 | (1) |
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8.1.3.2 SRMA in Preliminary Design |
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377 | (1) |
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8.1.3.3 SRMA in Detailed Design and Development |
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378 | (1) |
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8.1.3.4 SRMA in Production |
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378 | (1) |
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8.1.3.5 SRMA in Operations and Support |
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378 | (1) |
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8.1.4 Optical Detectors and Associated Maintenance and Support Concepts |
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379 | (1) |
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8.2 Fundamentals of Optical Detectors |
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379 | (11) |
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8.2.1 Types of Optical Detectors |
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380 | (1) |
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381 | (3) |
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382 | (1) |
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382 | (1) |
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8.2.2.3 Thermocouples and Thermopiles |
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383 | (1) |
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383 | (1) |
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8.2.2.5 Pyroelectric Detectors |
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383 | (1) |
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384 | (2) |
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8.2.3.1 Charge-Coupled Device |
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385 | (1) |
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8.2.3.2 Complementary Metal-Oxide Semiconductor Detector |
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385 | (1) |
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8.2.4 Detector Performance |
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386 | (2) |
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8.2.5 Detector Comparison |
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388 | (1) |
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8.2.6 Application to Integrated Case Study |
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388 | (2) |
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8.3 Integrated Case Study: Maintenance and Support in Context of the Enterprise |
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390 | (6) |
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396 | (3) |
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9 Technical Performance Measures and Metrics |
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399 | (54) |
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9.1 Introduction to Technical Performance Measures and Metrics |
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399 | (11) |
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9.1.1 Role of Technical Performance Measures in the Systems Engineering Process |
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402 | (1) |
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9.1.2 Types of Measurements |
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402 | (4) |
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9.1.3 Connection of Technical Performance Measures to Requirements |
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406 | (2) |
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9.1.4 Systems Engineering Approach to Optical Systems |
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408 | (1) |
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9.1.5 Transition to Optical Systems Building Blocks |
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409 | (1) |
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9.2 Optical Systems Building Block: Detector Noise, Characteristics, Performance Limits, and Testing |
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410 | (32) |
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9.2.1 Introduction to Detector Noise |
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410 | (1) |
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9.2.2 Statistical Description of Noise |
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411 | (2) |
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9.2.3 System Noise and Figures of Merit |
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413 | (1) |
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9.2.4 Three-Dimensional Noise Model |
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413 | (2) |
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415 | (2) |
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417 | (7) |
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9.2.6.1 Johnson-Nyquist Thermal Noise (Johnson Noise) |
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417 | (3) |
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420 | (1) |
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421 | (1) |
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9.2.6.4 Generation and Recombination Noise |
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421 | (1) |
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421 | (1) |
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9.2.6.6 Radiation or Photon Noise |
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422 | (1) |
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9.2.6.7 Quantization Noise |
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423 | (1) |
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9.2.7 Equivalent Noise Bandwidth |
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424 | (1) |
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9.2.8 Detector Figures of Merit and Performance Characteristics |
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424 | (9) |
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9.2.8.1 Detector Figures of Merit |
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425 | (2) |
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9.2.8.2 Basic Equipment for Measuring Detector Figures of Merit |
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427 | (6) |
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9.2.9 Examples of Measuring Detector Attributes, Characteristics, and Figures of Merit |
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433 | (5) |
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9.2.9.1 Measuring the Active Area of the Detector |
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433 | (1) |
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9.2.9.2 Characterizing a Detector's Operating Point |
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433 | (2) |
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9.2.9.3 Characterizing a Detector's Operating Point That Requires Bias |
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435 | (1) |
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9.2.9.4 Introducing a Calibrated Voltage into the Test Configuration |
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436 | (1) |
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9.2.9.5 Determining the Effects of the Chopping Frequency on the Detector Output Signal |
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437 | (1) |
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9.2.9.6 Measuring Spectral Noise Characteristics |
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437 | (1) |
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9.2.9.7 Determining the Detector Time Constant |
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437 | (1) |
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9.2.10 High-End Photon Detectors |
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438 | (2) |
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9.2.10.1 Shielding the Detector against Radiation |
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439 | (1) |
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9.2.11 Thermal Detectors and Haven's Limit |
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440 | (1) |
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9.2.12 Important Considerations in Selecting a Detector |
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441 | (1) |
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9.3 UAV Case Study Application |
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442 | (6) |
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448 | (1) |
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449 | (1) |
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449 | (4) |
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10 Functional Analysis and Detector Cooling |
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453 | (48) |
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10.1 Functional Analyses and Their Requirements |
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454 | (18) |
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10.1.1 Model-Based Systems Engineering Tools for Creating Functional Analyses |
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455 | (2) |
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10.1.1.1 Rational Tool Suite |
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456 | (1) |
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456 | (1) |
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10.1.1.3 Theory of Inventive Problem Solving |
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457 | (1) |
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10.1.1.4 Simulink® and MATLAB® |
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457 | (1) |
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10.1.2 Functional Analysis Tools |
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457 | (4) |
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10.1.2.1 Concept Diagrams |
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458 | (1) |
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10.1.2.2 Functional Flow Block Diagrams |
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459 | (2) |
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10.1.2.3 Integrated Definition Diagrams |
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461 | (1) |
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10.1.3 Functional Analysis Application to a Lenticular Optical Imaging System |
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461 | (11) |
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10.1.3.1 Lenticular Optical Imaging System |
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461 | (4) |
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10.1.3.2 Functional Analysis of the System |
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465 | (7) |
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10.2 Detector Cooling Methods |
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472 | (15) |
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10.2.1 Introduction to Detector Cooling |
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472 | (1) |
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10.2.2 Detector Cooling Vessels: The Dewar |
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473 | (1) |
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10.2.3 Typical Coolants Properties |
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474 | (1) |
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10.2.4 Cooling with Open-Cycle Refrigerators |
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475 | (5) |
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10.2.4.1 Cooling with Liquefied Gas |
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475 | (1) |
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10.2.4.2 Cooling with the Joule Thomson Effect |
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476 | (2) |
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10.2.4.3 Cooling with Solids |
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478 | (1) |
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10.2.4.4 Cooling by Radiating Heat |
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478 | (2) |
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10.2.5 Cooling with Closed-Cycle Refrigerators |
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480 | (4) |
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10.2.5.1 Cooling with the Joule Thomson Closed Cycle |
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480 | (1) |
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10.2.5.2 Cooling with the Claude Cycle |
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481 | (1) |
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10.2.5.3 Cooling with the Stirling Cycle |
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482 | (2) |
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10.2.6 Cooling with Electric or Magnetic Effects |
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484 | (17) |
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10.2.6.1 Cooling with Thermoelectric Properties |
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484 | (1) |
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10.2.6.2 Cooling with Thermomagnetic Properties |
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484 | (3) |
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10.3 UAV Integrated Case Study: Integrating the Detector and the Cooler |
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|
487 | (11) |
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|
498 | (3) |
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11 Requirements Allocation |
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|
501 | (38) |
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11.1 Requirements Allocation Process |
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|
501 | (14) |
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11.1.1 Derivation, Allocation, and Apportionment |
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|
503 | (1) |
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11.1.2 Levels of Requirements (Leveling) and Requirements Allocation |
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|
504 | (3) |
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11.1.3 Commercial Off-the-Shelf Considerations and TPM Allocation |
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|
507 | (1) |
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11.1.4 Connection with Functional Analysis |
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|
508 | (7) |
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11.2 Optical Systems Building Block: Representative TPMs and KPPs |
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|
515 | (13) |
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11.3 Integrated Case Study |
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|
528 | (8) |
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|
536 | (1) |
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|
536 | (3) |
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12 Introduction to Systems Design |
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|
539 | (48) |
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12.1 Systems Engineering Design Process |
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540 | (28) |
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12.1.1 Systems Engineering and the Systems Life-Cycle Process |
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|
541 | (1) |
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12.1.2 Systems Documentation and Baseline |
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|
542 | (3) |
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12.1.3 Three-Stage Design Process: Conceptual Design, Preliminary Design, and Detailed Design and Development |
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|
545 | (19) |
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12.1.3.1 Conceptual Design Phase |
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545 | (14) |
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12.1.3.2 Preliminary Design Phase |
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|
559 | (3) |
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12.1.3.3 Detailed Design and Development Phase |
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562 | (2) |
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12.1.4 Alternative Design Processes |
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564 | (4) |
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565 | (1) |
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12.1.4.2 Agile Development Cycle |
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565 | (1) |
|
12.1.4.3 Specific Agile Development Methodologies |
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|
566 | (1) |
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12.1.4.4 Agile Methodologies Applied to Full Systems |
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567 | (1) |
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12.1.5 Transition to Optical Systems Building Blocks |
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568 | (1) |
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12.2 Optical Systems Building Block: Analyzing Optical Systems |
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568 | (9) |
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12.2.1 Understanding the Analytical Problem |
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568 | (1) |
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12.2.2 Choosing the Modeling Framework |
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|
568 | (2) |
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12.2.3 Developing the Model: An Application-Specific Example |
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|
570 | (7) |
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12.3 Integrated Case Study: Application of Optical Analytical Model to FIT'S System |
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577 | (6) |
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|
583 | (1) |
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|
583 | (2) |
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|
585 | (2) |
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13 Quality Production and Manufacturing |
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|
587 | (66) |
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13.1 Introduction to Manufacturing and Production |
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|
588 | (4) |
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13.1.1 Manufacturing and Production Process |
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|
589 | (3) |
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13.2 Engineering and Manufacturing Optical Devices |
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|
592 | (27) |
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13.2.1 Total Quality Management |
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|
595 | (4) |
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13.2.2 Taguchi Quality Engineering |
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|
599 | (8) |
|
13.2.2.1 Taguchi Quality Loss |
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|
599 | (5) |
|
13.2.2.2 Taguchi Robust Design |
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|
604 | (3) |
|
13.2.3 Statistical Process Control |
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|
607 | (12) |
|
13.2.3.1 Variable Control Charts |
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|
610 | (4) |
|
13.2.3.2 Attribute Control Charts |
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|
614 | (3) |
|
13.2.3.3 Process Capability |
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|
617 | (2) |
|
13.3 Integrated Case Study and Application: UAV Optical System Project |
|
|
619 | (23) |
|
13.3.1 Case Study Background |
|
|
620 | (1) |
|
13.3.2 Initial Customer Meeting |
|
|
621 | (2) |
|
13.3.3 FIT Executive Team Meeting |
|
|
623 | (3) |
|
13.3.4 Second Customer Meeting |
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|
626 | (1) |
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|
626 | (9) |
|
13.3.6 First Quality Meeting |
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|
635 | (5) |
|
13.3.7 Second Quality Meeting |
|
|
640 | (2) |
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|
642 | (1) |
|
Appendix: Variable Descriptions |
|
|
642 | (2) |
|
Appendix: Control Charts and Taguchi Robust Design Data |
|
|
644 | (6) |
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|
650 | (3) |
|
14 Optical Systems Testing and Evaluation |
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|
653 | (38) |
|
14.1 General Concepts in Testing and Characterizing Optical Systems |
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|
654 | (14) |
|
14.1.1 Systems Life Cycle and Test |
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|
655 | (2) |
|
14.1.2 Test Verification versus Validation |
|
|
657 | (1) |
|
14.1.3 Test Often, Test Early: Integrated Testing |
|
|
658 | (1) |
|
14.1.4 Categories of Systems Test and Evaluation |
|
|
658 | (2) |
|
14.1.5 Systems Test Methodologies and Problem-Solving Tools |
|
|
660 | (2) |
|
14.1.6 Planning and Preparation for Systems Test |
|
|
662 | (2) |
|
14.1.7 Reporting and Feedback |
|
|
664 | (1) |
|
14.1.8 Clean Test Environment |
|
|
665 | (1) |
|
14.1.9 Static-Free Test Environment |
|
|
666 | (1) |
|
|
667 | (1) |
|
14.1.11 Optical Calibration Standards |
|
|
667 | (1) |
|
14.1.12 General Concepts in Testing and Characterizing Optical Systems Summary |
|
|
668 | (1) |
|
14.2 Optical Systems Testing Methods |
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|
668 | (13) |
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|
668 | (4) |
|
14.2.1.1 Multiple-Beam Interferometers |
|
|
672 | (1) |
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|
672 | (2) |
|
14.2.2.1 Interferometer-Based Optical Spectrum Analyzer |
|
|
673 | (1) |
|
14.2.2.2 Diffraction-Grating-Based Optical Spectrum Analyzer |
|
|
674 | (1) |
|
|
674 | (1) |
|
14.2.4 Radiometric Testing |
|
|
675 | (17) |
|
14.2.4.1 Application of Optical Systems Testing |
|
|
676 | (3) |
|
14.2.4.2 Optical Systems Test Equipment |
|
|
679 | (1) |
|
14.2.4.3 Optical Systems Testing Methods Summary |
|
|
680 | (1) |
|
14.3 Integrated Case Study: Testing the FIT Optical Systems |
|
|
681 | (6) |
|
|
687 | (1) |
|
|
688 | (3) |
|
15 Optical System Use and Support |
|
|
691 | (46) |
|
15.1 Introduction to System Use and Support |
|
|
692 | (25) |
|
15.1.1 Background and Definitions |
|
|
692 | (2) |
|
15.1.2 Using, Modifying, Supporting, and Maintaining Systems |
|
|
694 | (1) |
|
15.1.3 Modifying Systems with the Engineering Change Proposal |
|
|
694 | (3) |
|
15.1.4 Planned Improvements |
|
|
697 | (3) |
|
15.1.4.1 Evolutionary Acquisition |
|
|
697 | (1) |
|
15.1.4.2 Preplanned Product Improvement |
|
|
698 | (1) |
|
15.1.4.3 Open Systems Approach |
|
|
699 | (1) |
|
15.1.5 Integrated Logistics Support |
|
|
700 | (4) |
|
15.1.5.1 Systems Support and Servicing Background |
|
|
702 | (1) |
|
15.1.5.2 Integrated Logistics Support from Past to Present |
|
|
702 | (1) |
|
15.1.5.3 Integrated Logistics Support Definitions |
|
|
703 | (1) |
|
15.1.6 Elements of Support |
|
|
704 | (8) |
|
15.1.6.1 Maintenance and Support Planning |
|
|
706 | (3) |
|
15.1.6.2 Logistics, Maintenance, and Support Personnel |
|
|
709 | (1) |
|
|
709 | (2) |
|
15.1.6.4 Training and Training Support |
|
|
711 | (1) |
|
15.1.6.5 Test, Measurement, Handling, and Support Equipment |
|
|
711 | (1) |
|
15.1.6.6 Maintenance Facilities |
|
|
711 | (1) |
|
15.1.6.7 Packaging, Handling, Storage, and Transportation |
|
|
712 | (1) |
|
15.1.6.8 Computer Resources |
|
|
712 | (1) |
|
15.1.6.9 Technical Data and Information Systems |
|
|
712 | (1) |
|
15.1.7 Logistics Support in the Overall System Life Cycle |
|
|
712 | (3) |
|
15.1.7.1 System Support Requirements |
|
|
713 | (1) |
|
15.1.7.2 Supportability Analysis and Requirements Allocation |
|
|
714 | (1) |
|
15.1.7.3 Supportability Review |
|
|
714 | (1) |
|
15.1.7.4 Test and Evaluation |
|
|
715 | (1) |
|
15.1.8 Support and Maintenance Summary |
|
|
715 | (1) |
|
15.1.9 Transition to Optical Systems Building Blocks |
|
|
716 | (1) |
|
15.2 Optical Systems Building Block: Using the Detected Signal-Signal Processing |
|
|
717 | (12) |
|
15.2.1 Definition of Signal Processing |
|
|
717 | (3) |
|
15.2.2 Signal Processing for Optical Systems |
|
|
720 | (5) |
|
|
721 | (1) |
|
|
721 | (4) |
|
|
725 | (1) |
|
15.2.4 Signal Conditioning |
|
|
725 | (1) |
|
|
726 | (1) |
|
15.2.6 Systems Engineering Tools and Techniques |
|
|
727 | (1) |
|
15.2.7 Example of Signal Processing for an Optical System |
|
|
727 | (2) |
|
15.2.7.1 Gain Calculations for the Detector |
|
|
727 | (2) |
|
15.2.8 Optical Systems Block Summary |
|
|
729 | (1) |
|
15.3 Integrated Case Study: Signal Processing on the FIT Optical System |
|
|
729 | (4) |
|
|
733 | (1) |
|
|
733 | (4) |
|
16 Disposal and Retirement of Optical Systems |
|
|
737 | (34) |
|
|
737 | (8) |
|
16.1.1 System Retirement and Disposal |
|
|
737 | (2) |
|
16.1.2 Methods of System Disposal |
|
|
739 | (1) |
|
|
739 | (1) |
|
16.1.2.2 Long-Term Storage |
|
|
739 | (1) |
|
|
740 | (1) |
|
|
740 | (1) |
|
|
740 | (1) |
|
16.1.3 Considerations at the End of the Systems Life |
|
|
740 | (5) |
|
|
741 | (1) |
|
16.1.3.2 Electronic Components |
|
|
741 | (1) |
|
16.1.3.3 Liquid Metal Penetration |
|
|
741 | (1) |
|
16.1.3.4 Structural Problems |
|
|
742 | (1) |
|
16.1.3.5 Low-Pressure Environment |
|
|
742 | (1) |
|
16.1.3.6 Hazardous Materials and Special Handling |
|
|
743 | (1) |
|
|
744 | (1) |
|
16.1.3.8 Security Considerations |
|
|
745 | (1) |
|
16.1.3.9 Historical Database |
|
|
745 | (1) |
|
16.1.3.10 Transition to Optical Systems Building Blocks |
|
|
745 | (1) |
|
16.2 Optical Systems Building Block: Optical Systems in Space |
|
|
745 | (14) |
|
16.2.1 Background for Optical Space Systems |
|
|
747 | (2) |
|
16.2.2 Systems Engineering Principles in Space Projects |
|
|
749 | (1) |
|
16.2.3 Space System Life Cycle |
|
|
749 | (7) |
|
16.2.3.1 Space System Phaseout and Disposal |
|
|
750 | (6) |
|
16.2.4 Environmental Effects on Optical System Satellites |
|
|
756 | (3) |
|
16.2.4.1 Plasmas and Spacecraft Charging |
|
|
756 | (1) |
|
16.2.4.2 Trapped Radiation |
|
|
757 | (1) |
|
16.2.4.3 Solar Particle Event |
|
|
757 | (1) |
|
16.2.4.4 Galactic Cosmic Rays |
|
|
758 | (1) |
|
16.3 Integrated Case Study: FIT Special Customer |
|
|
759 | (10) |
|
|
769 | (1) |
|
|
769 | (2) |
Appendix: Mathematical Formulas |
|
771 | (14) |
Index |
|
785 | |