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El. knyga: Coherent Optical LiDAR: Theory, Modeling and Design Optimization

  • Formatas: PDF+DRM
  • Išleidimo metai: 05-Feb-2025
  • Leidėjas: Springer International Publishing AG
  • Kalba: eng
  • ISBN-13: 9783031800054
  • Formatas: PDF+DRM
  • Išleidimo metai: 05-Feb-2025
  • Leidėjas: Springer International Publishing AG
  • Kalba: eng
  • ISBN-13: 9783031800054

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This book provides an insight into the coherent optical LiDAR system, starting from the fundamental operation of the polarization diversity coherent optical transceiver, widely used in field deployed Terabit optical communication systems. The author first defines LiDAR, i.e., Light Detection and Ranging, as a complex machine designed to measure the distance and the velocity of the target object in a two-dimensional imaging. The book provides a detailed analysis of the electrical engineering aspects of the Code-Modulated (CM) LiDAR, developing a thorough theory and modeling of coherent optical signals and noise sources involved in the detection of the received signal by means of the integrated coherent optical receiver. The author then shows that the target detection of the CM LiDAR is based on the cross-correlation process between the transmitted and received coded signals after the target reflection. To this end, large part of the book is devoted to the theory of the cross-correlation process with noise and the related probability of detection. The intent of this book is to provide a reference to the reader for the inside understanding of the coherent optical LiDAR toward an optimum design approach.









Presents coherent optical LiDAR systems, which measure distance and velocity of the target in a two-dimensional imaging. Illustrates how LiDAR offers an ideal solution for low-cost and large-scale integration. Merges LiDAR specifications and optical coherent technology through a unique approach.
Chapter 1: Signal Theory of the Coherent Optical Receiver.
Chapter
2: Burst-mode pseudo-random PAM signals.
Chapter 3: Noise theory of coherent
optical receivers.
Chapter 4: Cross-correlation of signal and noise.-
Chapter 5: Statistical modeling of the cross-correlation gain.
Chapter
6: Probability of Detection.
Chapter 7: Advanced Topics in Detection
Probability.
Chapter 8: Light quantization and Probability of Detection.-
Chapter 9: Optical Link Loss and LiDAR Performance Simulations.
Stefano Bottacchi currently works as Scientific Consultant for Scantinel Photonics AG, Germany. Previously, he served as Optical Scientist at Baraja Pty. Ltd. To develop the Code-Modulated optical coherent LiDAR. He has previously worked for several leading telecom companies and research organizations, including Lumentum, USA, Polytechnic of Milan, Heinrich Hertz Institute, Berlin, Imperial College, London, MACOM Technologies, USA, and Huawei Research Center, Munich, DE. Dr. Bottacchi has published four books in the field of Optical Communication Engineering and one book on the Theory and Modeling of Cylindrical Nanostructures for high-Resolution coverage Spectroscopy. He authored many Optica peer-reviewed articles. He is a senior member of IEEE and Optica.