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Fault-Tolerance Techniques for SRAM-Based FPGAs (Hardcover, 2006 ed.): Fernanda Lima Kastensmidt, Ricardo Reis Fault-Tolerance Techniques for SRAM-Based FPGAs (Hardcover, 2006 ed.)
Fernanda Lima Kastensmidt, Ricardo Reis
R2,842 Discovery Miles 28 420 Ships in 10 - 15 working days

Fault-tolerance in integrated circuits is not an exclusive concern regarding space designers or highly-reliable application engineers. Rather, designers of next generation products must cope with reduced margin noises due to technological advances. The continuous evolution of the fabrication technology process of semiconductor components, in terms of transistor geometry shrinking, power supply, speed, and logic density, has significantly reduced the reliability of very deep submicron integrated circuits, in face of the various internal and external sources of noise. The very popular Field Programmable Gate Arrays, customizable by SRAM cells, are a consequence of the integrated circuit evolution with millions of memory cells to implement the logic, embedded memories, routing, and more recently with embedded microprocessors cores. These re-programmable systems-on-chip platforms must be fault-tolerant to cope with present days requirements. This book discusses fault-tolerance techniques for SRAM-based Field Programmable Gate Arrays (FPGAs). It starts by showing the model of the problem and the upset effects in the programmable architecture. to protect integrated circuits against errors. A large set of methods for designing fault tolerance systems in SRAM-based FPGAs is described. Some presented techniques are based on developing a new fault-tolerant architecture with new robustness FPGA elements. Other techniques are based on protecting the high-level hardware description before the synthesis in the FPGA. The reader has the flexibility of choosing the most suitable fault-tolerance technique for its project and to compare a set of fault tolerant techniques for programmable logic applications.

Higher Education for All. From Challenges to Novel Technology-Enhanced Solutions - First International Workshop on Social,... Higher Education for All. From Challenges to Novel Technology-Enhanced Solutions - First International Workshop on Social, Semantic, Adaptive and Gamification Techniques and Technologies for Distance Learning, HEFA 2017, Maceio, Brazil, March 20-24, 2017, Revised Selected Papers (Paperback, 1st ed. 2018)
Alexandra I. Cristea, Ig Ibert Bittencourt, Fernanda Lima
R2,048 Discovery Miles 20 480 Ships in 10 - 15 working days

This book constitutes the thoroughly refereed proceedings of the Researcher Links Workshop: Higher Education for All, held in Maceio, Brazil, in March 2017. The 12 full papers presented were carefully reviewed and selected from 31 submissions. The papers deal with a large spectrum of topics, including higher education, technology-enhanced solutions, user modelling, user grouping, gamification, educational games, MOOCs, e-learning, open educational resources, collaborative learning, student modelling, serious games, language analysis.

Fault-Tolerance Techniques for SRAM-Based FPGAs (Paperback, Softcover reprint of hardcover 1st ed. 2006): Fernanda Lima... Fault-Tolerance Techniques for SRAM-Based FPGAs (Paperback, Softcover reprint of hardcover 1st ed. 2006)
Fernanda Lima Kastensmidt, Ricardo Reis
R2,789 Discovery Miles 27 890 Ships in 10 - 15 working days

Fault-tolerance in integrated circuits is not an exclusive concern regarding space designers or highly-reliable application engineers. Rather, designers of next generation products must cope with reduced margin noises due to technological advances. The continuous evolution of the fabrication technology process of semiconductor components, in terms of transistor geometry shrinking, power supply, speed, and logic density, has significantly reduced the reliability of very deep submicron integrated circuits, in face of the various internal and external sources of noise. The very popular Field Programmable Gate Arrays, customizable by SRAM cells, are a consequence of the integrated circuit evolution with millions of memory cells to implement the logic, embedded memories, routing, and more recently with embedded microprocessors cores. These re-programmable systems-on-chip platforms must be fault-tolerant to cope with present days requirements. This book discusses fault-tolerance techniques for SRAM-based Field Programmable Gate Arrays (FPGAs). It starts by showing the model of the problem and the upset effects in the programmable architecture. In the sequence, it shows the main fault tolerance techniques used nowadays to protect integrated circuits against errors. A large set of methods for designing fault tolerance systems in SRAM-based FPGAs is described. Some presented techniques are based on developing a new fault-tolerant architecture with new robustness FPGA elements. Other techniques are based on protecting the high-level hardware description before the synthesis in the FPGA. The reader has the flexibility of choosing the most suitable fault-tolerance technique for its project and to compare a set of fault tolerant techniques for programmable logic applications.

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