Speeding-Up Radio-Frequency Integrated Circuit Sizing with Neural Networks

Speeding-Up Radio-Frequency Integrated Circuit Sizing with Neural Networks
Author: João L. C. P. Domingues
Publisher: Springer Nature
Total Pages: 115
Release: 2023-03-20
Genre: Computers
ISBN: 3031250990

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In this book, innovative research using artificial neural networks (ANNs) is conducted to automate the sizing task of RF IC design, which is used in two different steps of the automatic design process. The advances in telecommunications, such as the 5th generation broadband or 5G for short, open doors to advances in areas such as health care, education, resource management, transportation, agriculture and many other areas. Consequently, there is high pressure in today’s market for significant communication rates, extensive bandwidths and ultralow-power consumption. This is where radiofrequency (RF) integrated circuits (ICs) come in hand, playing a crucial role. This demand stresses out the problem which resides in the remarkable difficulty of RF IC design in deep nanometric integration technologies due to their high complexity and stringent performances. Given the economic pressure for high quality yet cheap electronics and challenging time-to-market constraints, there is an urgent need for electronic design automation (EDA) tools to increase the RF designers’ productivity and improve the quality of resulting ICs. In the last years, the automatic sizing of RF IC blocks in deep nanometer technologies has moved toward process, voltage and temperature (PVT)-inclusive optimizations to ensure their robustness. Each sizing solution is exhaustively simulated in a set of PVT corners, thus pushing modern workstations’ capabilities to their limits. Standard ANNs applications usually exploit the model’s capability of describing a complex, harder to describe, relation between input and target data. For that purpose, ANNs are a mechanism to bypass the process of describing the complex underlying relations between data by feeding it a significant number of previously acquired input/output data pairs that the model attempts to copy. Here, and firstly, the ANNs disrupt from the most recent trials of replacing the simulator in the simulation-based sizing with a machine/deep learning model, by proposing two different ANNs, the first classifies the convergence of the circuit for nominal and PVT corners, and the second predicts the oscillating frequencies for each case. The convergence classifier (CCANN) and frequency guess predictor (FGPANN) are seamlessly integrated into the simulation-based sizing loop, accelerating the overall optimization process. Secondly, a PVT regressor that inputs the circuit’s sizing and the nominal performances to estimate the PVT corner performances via multiple parallel artificial neural networks is proposed. Two control phases prevent the optimization process from being misled by inaccurate performance estimates. As such, this book details the optimal description of the input/output data relation that should be fulfilled. The developed description is mainly reflected in two of the system’s characteristics, the shape of the input data and its incorporation in the sizing optimization loop. An optimal description of these components should be such that the model should produce output data that fulfills the desired relation for the given training data once fully trained. Additionally, the model should be capable of efficiently generalizing the acquired knowledge in newer examples, i.e., never-seen input circuit topologies.

Automated Hierarchical Synthesis of Radio-Frequency Integrated Circuits and Systems

Automated Hierarchical Synthesis of Radio-Frequency Integrated Circuits and Systems
Author: Fábio Passos
Publisher: Springer Nature
Total Pages: 198
Release: 2020-07-11
Genre: Technology & Engineering
ISBN: 3030472477

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This book describes a new design methodology that allows optimization-based synthesis of RF systems in a hierarchical multilevel approach, in which the system is designed in a bottom-up fashion, from the device level up to the (sub)system level. At each level of the design hierarchy, the authors discuss methods that increase the design robustness and increase the accuracy and efficiency of the simulations. The methodology described enables circuit sizing and layout in a complete and automated integrated manner, achieving optimized designs in significantly less time than with traditional approaches.

Using Artificial Neural Networks for Analog Integrated Circuit Design Automation

Using Artificial Neural Networks for Analog Integrated Circuit Design Automation
Author: João P. S. Rosa
Publisher: Springer Nature
Total Pages: 117
Release: 2019-12-11
Genre: Technology & Engineering
ISBN: 3030357430

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This book addresses the automatic sizing and layout of analog integrated circuits (ICs) using deep learning (DL) and artificial neural networks (ANN). It explores an innovative approach to automatic circuit sizing where ANNs learn patterns from previously optimized design solutions. In opposition to classical optimization-based sizing strategies, where computational intelligence techniques are used to iterate over the map from devices’ sizes to circuits’ performances provided by design equations or circuit simulations, ANNs are shown to be capable of solving analog IC sizing as a direct map from specifications to the devices’ sizes. Two separate ANN architectures are proposed: a Regression-only model and a Classification and Regression model. The goal of the Regression-only model is to learn design patterns from the studied circuits, using circuit’s performances as input features and devices’ sizes as target outputs. This model can size a circuit given its specifications for a single topology. The Classification and Regression model has the same capabilities of the previous model, but it can also select the most appropriate circuit topology and its respective sizing given the target specification. The proposed methodology was implemented and tested on two analog circuit topologies.

Neural Networks for RF and Microwave Design

Neural Networks for RF and Microwave Design
Author: Q. J. Zhang
Publisher: Artech House Publishers
Total Pages: 396
Release: 2000
Genre: Computers
ISBN:

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Discover the new, unconventional alternatives for conquering RF and microwave design and modeling problems using neural networks -- information processing systems that can learn, generalize, and even allow model development when component formulas are missing -- with this book and software package. It shows you the ease of creating models with neural networks, and how quick model evaluation can be done, plus other opportunities presented by neural networks for conquering the toughest RF and microwave CAD problems.

Radio Frequency Integrated Circuit Design for Cognitive Radio Systems

Radio Frequency Integrated Circuit Design for Cognitive Radio Systems
Author: Amr Fahim
Publisher:
Total Pages: 0
Release: 2015
Genre:
ISBN: 9783319110127

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This book fills a disconnect in the literature between Cognitive Radio systems and a detailed account of the circuit implementation and architectures required to implement such systems. Throughout the book, requirements and constraints imposed by cognitive radio systems are emphasized when discussing the circuit implementation details. In addition, this book details several novel concepts that advance state-of-the-art cognitive radio systems. This is a valuable reference for anybody with background in analog and radio frequency (RF) integrated circuit design, needing to learn more about integrated circuits requirements and implementation for cognitive radio systems. · Describes in detail cognitive radio systems, as well as the circuit implementation and architectures required to implement them; · Serves as an excellent reference to state-of-the-art wideband transceiver design; · Emphasizes practical requirements and constraints imposed by cognitive radio systems, when discussing circuit implementation details. .

Use of Machine Learning in Radio Frequency Integrated Circuits (RFIC) Development

Use of Machine Learning in Radio Frequency Integrated Circuits (RFIC) Development
Author: Qiang Cui (Computer engineer)
Publisher:
Total Pages: 0
Release: 2015
Genre:
ISBN:

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This Master's Thesis starts with an introduction to the radio frequency integrated circuits (RFICs) industry and a discussion on the key problem of the existing RFIC development process: the need for multiple trial and error iterations due to inaccurate simulations. This simulation inaccuracy happens because the existing electronic design automation (EDA) software, and the underlying physics-based IC models, fail to fully capture the nonlinear, frequency-dependent RF parasitic effects. To overcome this problem, in this thesis we propose the use of machine learning in RFIC development. Machine learning uses statistical models to recognize hidden patterns from sample data points, known as "training"; generalize patterns; and make predictions based on new data. In theory, machine learning can capture the nonlinear, frequency-dependent RF parasitic effects very well thanks to the large variety of nonlinear modelling techniques at its disposal, such as polynomial regressions and neural networks. Therefore, this thesis investigates for the first time the feasibility of using machine learning in RFIC development to solve the problem of inaccurate RFIC simulation

NASA Tech Briefs

NASA Tech Briefs
Author:
Publisher:
Total Pages: 494
Release: 1991
Genre: Technology
ISBN:

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NASA Technical Memorandum

NASA Technical Memorandum
Author:
Publisher:
Total Pages: 236
Release: 1990
Genre: Aeronautics
ISBN:

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Analog Integrated Circuit Design Automation

Analog Integrated Circuit Design Automation
Author: Ricardo Martins
Publisher: Springer
Total Pages: 220
Release: 2016-07-20
Genre: Technology & Engineering
ISBN: 3319340603

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This book introduces readers to a variety of tools for analog layout design automation. After discussing the placement and routing problem in electronic design automation (EDA), the authors overview a variety of automatic layout generation tools, as well as the most recent advances in analog layout-aware circuit sizing. The discussion includes different methods for automatic placement (a template-based Placer and an optimization-based Placer), a fully-automatic Router and an empirical-based Parasitic Extractor. The concepts and algorithms of all the modules are thoroughly described, enabling readers to reproduce the methodologies, improve the quality of their designs, or use them as starting point for a new tool. All the methods described are applied to practical examples for a 130nm design process, as well as placement and routing benchmark sets.