Ultra-high Throughput Real-time Instruments for Capturing Fast Signals and Rare Events

Ultra-high Throughput Real-time Instruments for Capturing Fast Signals and Rare Events

Author: Brandon Walter Buckley

Publisher:

Published: 2013

Total Pages: 137

ISBN-13:

DOWNLOAD EBOOK

Wide-band signals play important roles in the most exciting areas of science, engineering, and medicine. To keep up with the demands of exploding internet traffic, modern data centers and communication networks are employing increasingly faster data rates. Wide-band techniques such as pulsed radar jamming and spread spectrum frequency hopping are used on the battlefield to wrestle control of the electromagnetic spectrum. Neurons communicate with each other using transient action potentials that last for only milliseconds at a time. And in the search for rare cells, biologists flow large populations of cells single file down microfluidic channels, interrogating them one-by-one, tens of thousands of times per second. Studying and enabling such high-speed phenomena pose enormous technical challenges. For one, parasitic capacitance inherent in analog electrical components limits their response time. Additionally, converting these fast analog signals to the digital domain requires enormous sampling speeds, which can lead to significant jitter and distortion. State-of-the-art imaging technologies, essential for studying biological dynamics and cells in flow, are limited in speed and sensitivity by finite charge transfer and read rates, and by the small numbers of photo-electrons accumulated in short integration times. And finally, ultra-high throughput real-time digital processing is required at the backend to analyze the streaming data. In this thesis, I discuss my work in developing real-time instruments, employing ultrafast optical techniques, which overcome some of these obstacles. In particular, I use broadband dispersive optics to slow down fast signals to speeds accessible to high-bit depth digitizers and signal processors. I also apply telecommunication multiplexing techniques to boost the speeds of confocal fluorescence microscopy. The photonic time stretcher (TiSER) uses dispersive Fourier transformation to slow down analog signals before digitization and processing. The act of time-stretching effectively boosts the performance of the back-end electronics and digital signal processors. The slowed down signals reach the back-end electronics with reduced bandwidth, and are therefore less affected by high-frequency roll-off and distortion. Time-stretching also increases the effective sampling rate of analog-to-digital converters and reduces aperture jitter, thereby improving resolution. Finally, the instantaneous throughputs of digital signal processors are enhanced by the stretch factor to otherwise unattainable speeds. Leveraging these unique capabilities, TiSER becomes the ideal tool for capturing high-speed signals and characterizing rare phenomena. For this thesis, I have developed techniques to improve the spectral efficiency, bandwidth, and resolution of TiSER using polarization multiplexing, all-optical modulation, and coherent dispersive Fourier transformation. To reduce the latency and improve the data handling capacity, I have also designed and implemented a real-time digital signal processing electronic backend, achieving 1.5 tera-bit per second instantaneous processing throughput. Finally, I will present results from experiments highlighting TiSER's impact in real-world applications. Confocal fluorescence microscopy is the most widely used method for unveiling the molecular composition of biological specimens. However, the weak optical emission of fluorescent probes and the tradeoff between imaging speed and sensitivity is problematic for acquiring blur-free images of fast phenomena and cells flowing at high speed. Here I introduce a new fluorescence imaging modality, which leverages techniques from wireless communication to reach record pixel and frame rates. Termed Fluorescence Imaging using Radio-frequency tagged Emission (FIRE), this new imaging modality is capable of resolving never before seen dynamics in living cells - such as action potentials in neurons and metabolic waves in astrocytes - as well as performing high-content image assays of cells and particles in high-speed flow.


Advances in Lasers and Electro Optics

Advances in Lasers and Electro Optics

Author: Nelson Costa

Publisher: BoD – Books on Demand

Published: 2010-04-01

Total Pages: 860

ISBN-13: 9533070889

DOWNLOAD EBOOK

Lasers and electro-optics is a field of research leading to constant breakthroughs. Indeed, tremendous advances have occurred in optical components and systems since the invention of laser in the late 50s, with applications in almost every imaginable field of science including control, astronomy, medicine, communications, measurements, etc. If we focus on lasers, for example, we find applications in quite different areas. We find lasers, for instance, in industry, emitting power level of several tens of kilowatts for welding and cutting; in medical applications, emitting power levels from few milliwatt to tens of Watt for various types of surgeries; and in optical fibre telecommunication systems, emitting power levels of the order of one milliwatt. This book is divided in four sections. The book presents several physical effects and properties of materials used in lasers and electro-optics in the first chapter and, in the three remaining chapters, applications of lasers and electro-optics in three different areas are presented


Time-Stretch Accelerated Instrumentation for High-Speed Signal Analysis and Ultra-fast Device Characterization

Time-Stretch Accelerated Instrumentation for High-Speed Signal Analysis and Ultra-fast Device Characterization

Author: Cejo Konuparamban Lonappan

Publisher:

Published: 2018

Total Pages: 170

ISBN-13:

DOWNLOAD EBOOK

Internet traffic has been growing exponentially due to the increasing popularity of bandwidth-hungry applications among mobile and cloud platforms, as well as the increased penetration of broadband technologies. The advancements in fiber optic communication technology has enabled the scaling of data rates to very high bandwidths to support the increasing global data traffic growth. This has come at the cost of making the optical network infrastructure too rigid to changes in demand, difficult to service and maintain, and energy inefficient. The next-generation of optical networks needs to be more agile so that it can dynamically scale network resources based on demand, identify and locate impairments in the network automatically, be resilient to network disaster and cybersecurity attacks, and be more energy efficient. This necessitates the development of software-defined networking at the physical layer of optical networks with rapid optical performance monitoring capabilities to be able to dynamically modify the network and its parameters to ensure high quality of service and energy efficiency. Rapid optical performance monitoring requires high-throughput instruments that can analyze high-speed optical signals accurately with low power consumption. The increasing demand for higher data bandwidth is leading the communication industry to increase the operating frequency of components and systems. Performing accurate and rapid measurements of the various characteristics of electronic, electro-optic, and opto-electronic devices, modules, and systems at these high bandwidths is very challenging. With increasing operating frequencies, the conventional test equipment cost, size and power consumption also scales up proportionately. Longer test times to achieve increased accuracy would result in significantly higher test costs, hence innovations in faster testing of high bandwidth components and systems is a breakthrough that the test engineering community is anxiously awaiting for. Electronic digitizers are an integral part of modern digital instrumentation systems. The resolution and speed limits of analog-to-digital converters presents the bottleneck in the development of high-throughput, high bandwidth instruments. Photonic time-stretch technology boosts effective bandwidth and sampling rate of the conventional electronic digitizers by 50 to 100 times by slowing down the high bandwidth signals prior to digitization and signal processing. Time-stretch technology is a fundamentally different approach to broadband digitization technology. Instead of increasing the speed of back-end analog-to-digital converters and digital signal processors to keep up with ever accelerating data rates, time-stretch slows down incoming signals before digitization, reducing the analog bandwidth of the signal. By employing this technique, lower speed, higher resolution, more energy efficient digitizers and signal processors can be used to capture and process full wide-band signals in real-time. In addition, the time-stretch architecture scales with digitizer and signal processor technology, continually improving in resolution, speed, and energy efficiency as the electronic back-end technology progresses. In the first part of this dissertation, I discuss my work in the development of a novel photonic time-stretch accelerated processor for in-service, real-time burst-mode optical performance monitoring to enable the implementation of agile optical networks. This instrument with an equivalent 2 Terabit/s burst mode processing capability measures the bit-error rate, an important metric for the quality of transmission, of 40 Gigabit/s data with a 28 microsecond acquisition time. With a low power consumption of 50 W, this instrument has a real-time burst sampling throughput of 250 Giga-samples/s using an electronic digitizer with only 2.5 Giga-samples/s sampling rate at 2 GHz analog bandwidth. The measured bit-error rate is transmitted as a feedback to the software-defined networking controller to automatically take corrective actions in case of impairments or network disasters. I also discuss the various demonstrations using this instrument such as in-service analysis of streaming video packets at 10 Gigabit/s on a commercial optical networking platform, characterization of various non-linear effects in optical fiber networks, and an ultra-fast instantaneous frequency measurement system. In the second part of this dissertation, I discuss the development of an innovative high-performance single-shot network analyzer employing photonic time-stretch for extremely fast frequency response measurement of high bandwidth electronic, opto-electronic, and electro-optic devices, modules, and systems. This single-shot network analyzer has an effective sampling throughput of 2.5 Tera-samples/s at 40 GHz analog bandwidth. This instrument also features an extremely fast acquisition time of 27 nanosecond, a measurement jitter of 5.4 femtosecond, and power consumption of 50 W.


Digital Timing Measurements

Digital Timing Measurements

Author: Wolfgang Maichen

Publisher: Springer Science & Business Media

Published: 2006-10-03

Total Pages: 250

ISBN-13: 0387314199

DOWNLOAD EBOOK

As many circuits and applications now enter the Gigahertz frequency range, accurate digital timing measurements have become crucial in the design, verification, characterization, and application of electronic circuits. To be successful in this field an engineer needs to understand instrumentation, measurement techniques, signal integrity, jitter and timing concepts, and statistics. This book gives a compact, practice-oriented overview on all these subjects with emphasis on useable concepts and real-life guidelines.


A Signal Integrity Engineer's Companion

A Signal Integrity Engineer's Companion

Author: Geoff Lawday

Publisher: Pearson Education

Published: 2008-06-12

Total Pages: 573

ISBN-13: 0132797232

DOWNLOAD EBOOK

A Signal Integrity Engineer’s Companion Real-Time Test and Measurement and Design Simulation Geoff Lawday David Ireland Greg Edlund Foreword by Chris Edwards, Editor, IET Electronics Systems and Software magazine Prentice Hall Modern Semiconductor Design Series Prentice Hall Signal Integrity Library Use Real-World Test and Measurement Techniques to Systematically Eliminate Signal Integrity Problems This is the industry’s most comprehensive, authoritative, and practical guide to modern Signal Integrity (SI) test and measurement for high-speed digital designs. Three of the field’s leading experts guide you through systematically detecting, observing, analyzing, and rectifying both modern logic signal defects and embedded system malfunctions. The authors cover the entire life cycle of embedded system design from specification and simulation onward, illuminating key techniques and concepts with easy-to-understand illustrations. Writing for all electrical engineers, signal integrity engineers, and chip designers, the authors show how to use real-time test and measurement to address today’s increasingly difficult interoperability and compliance requirements. They also present detailed, start-to-finish case studies that walk you through commonly encountered design challenges, including ensuring that interfaces consistently operate with positive timing margins without incurring excessive cost; calculating total jitter budgets; and managing complex tradeoffs in high-speed serial interface design. Coverage includes Understanding the complex signal integrity issues that arise in today’s high-speed designs Learning how eye diagrams, automated compliance tests, and signal analysis measurements can help you identify and solve SI problems Reviewing the electrical characteristics of today’s most widely used CMOS IO circuits Performing signal path analyses based on intuitive Time-Domain Reflectometry (TDR) techniques Achieving more accurate real-time signal measurements and avoiding probe problems and artifacts Utilizing digital oscilloscopes and logic analyzers to make accurate measurements in high-frequency environments Simulating real-world signals that stress digital circuits and expose SI faults Accurately measuring jitter and other RF parameters in wireless applications About the Authors: Dr. Geoff Lawday is Tektronix Professor in Measurement at Buckinghamshire New University, England. He delivers courses in signal integrity engineering and high performance bus systems at the University Tektronix laboratory, and presents signal integrity seminars throughout Europe on behalf of Tektronix. David Ireland, European and Asian design and manufacturing marketing manager for Tektronix, has more than 30 years of experience in test and measurement. He writes regularly on signal integrity for leading technical journals. Greg Edlund, Senior Engineer, IBM Global Engineering Solutions division, has participated in development and testing for ten high-performance computing platforms. He authored Timing Analysis and Simulation for Signal Integrity Engineers (Prentice Hall).


Real-Time Systems

Real-Time Systems

Author: Hermann Kopetz

Publisher: Springer Nature

Published: 2022-09-22

Total Pages: 411

ISBN-13: 3031119924

DOWNLOAD EBOOK

"This book is a comprehensive text for the design of safety critical, hard real-time embedded systems. It offers a splendid example for the balanced, integrated treatment of systems and software engineering, helping readers tackle the hardest problems of advanced real-time system design, such as determinism, compositionality, timing and fault management. This book is an essential reading for advanced undergraduates and graduate students in a wide range of disciplines impacted by embedded computing and software. Its conceptual clarity, the style of explanations and the examples make the abstract concepts accessible for a wide audience." Janos Sztipanovits, Director E. Bronson Ingram Distinguished Professor of Engineering Institute for Software Integrated Systems Vanderbilt University Real-Time Systems focuses on hard real-time systems, which are computing systems that must meet their temporal specification in all anticipated load and fault scenarios. The book stresses the system aspects of distributed real-time applications, treating the issues of real-time, distribution and fault-tolerance from an integral point of view. A unique cross-fertilization of ideas and concepts between the academic and industrial worlds has led to the inclusion of many insightful examples from industry to explain the fundamental scientific concepts in a real-world setting. Compared to the Second Edition, new developments in communication standards for time-sensitive networks, such as TSN and Time-Triggered Ethernet are addressed. Furthermore, this edition includes a new chapter on real-time aspects in cloud and fog computing. The book is written as a standard textbook for a high-level undergraduate or graduate course on real-time embedded systems or cyber-physical systems. Its practical approach to solving real-time problems, along with numerous summary exercises, makes it an excellent choice for researchers and practitioners alike.