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Showing 1 - 6 of 6 matches in All Departments

Managing Temperature Effects in Nanoscale Adaptive Systems (Paperback, 2012 ed.): David Wolpert, Paul Ampadu Managing Temperature Effects in Nanoscale Adaptive Systems (Paperback, 2012 ed.)
David Wolpert, Paul Ampadu
R2,957 Discovery Miles 29 570 Ships in 10 - 15 working days

This book discusses new techniques for detecting, controlling, and exploiting the impacts of temperature variations on nanoscale circuits and systems. A new sensor system is described that can determine the temperature dependence as well as the operating temperature to improve system reliability. A new method is presented to control a circuit's temperature dependence by individually tuning pull-up and pull-down networks to their temperature-insensitive operating points. This method extends the range of supply voltages that can be made temperature-insensitive, achieving insensitivity at nominal voltage for the first time.

Error Control for Network-on-Chip Links (Paperback, 2012 ed.): Bo Fu, Paul Ampadu Error Control for Network-on-Chip Links (Paperback, 2012 ed.)
Bo Fu, Paul Ampadu
R3,212 Discovery Miles 32 120 Ships in 10 - 15 working days

This book provides readers with a comprehensive review of the state of the art in error control for Network on Chip (NOC) links. Coverage includes detailed description of key issues in NOC error control faced by circuit and system designers, as well as practical error control techniques to minimize the impact of these errors on system performance.

Transient and Permanent Error Control for Networks-on-Chip (Paperback, 2012 ed.): Qiaoyan Yu, Paul Ampadu Transient and Permanent Error Control for Networks-on-Chip (Paperback, 2012 ed.)
Qiaoyan Yu, Paul Ampadu
R2,957 Discovery Miles 29 570 Ships in 10 - 15 working days

This book addresses reliability and energy efficiency of on-chip networks using cooperative error control. It describes an efficient way to construct an adaptive error control codec capable of tracking noise conditions and adjusting the error correction strength at runtime. Methods are also presented to tackle joint transient and permanent error correction, exploiting the redundant resources already available on-chip. A parallel and flexible network simulator is also introduced, which facilitates examining the impact of various error control methods on network-on-chip performance.

Transient and Permanent Error Control for Networks-on-Chip (Hardcover, 2012): Qiaoyan Yu, Paul Ampadu Transient and Permanent Error Control for Networks-on-Chip (Hardcover, 2012)
Qiaoyan Yu, Paul Ampadu
R2,952 Discovery Miles 29 520 Ships in 10 - 15 working days

This book addresses reliability and energy efficiency of on-chip networks using cooperative error control. It describes an efficient way to construct an adaptive error control codec capable of tracking noise conditions and adjusting the error correction strength at runtime. Methods are also presented to tackle joint transient and permanent error correction, exploiting the redundant resources already available on-chip. A parallel and flexible network simulator is also introduced, which facilitates examining the impact of various error control methods on network-on-chip performance.

Error Control for Network-on-Chip Links (Hardcover, 2012): Bo Fu, Paul Ampadu Error Control for Network-on-Chip Links (Hardcover, 2012)
Bo Fu, Paul Ampadu
R2,957 Discovery Miles 29 570 Ships in 10 - 15 working days

This book provides readers with a comprehensive review of the state of the art in error control for Network on Chip (NOC) links. Coverage includes detailed description of key issues in NOC error control faced by circuit and system designers, as well as practical error control techniques to minimize the impact of these errors on system performance.

Managing Temperature Effects in Nanoscale Adaptive Systems (Hardcover, 2012 ed.): David Wolpert, Paul Ampadu Managing Temperature Effects in Nanoscale Adaptive Systems (Hardcover, 2012 ed.)
David Wolpert, Paul Ampadu
R2,960 Discovery Miles 29 600 Ships in 10 - 15 working days

This book discusses new techniques for detecting, controlling, and exploiting the impacts of temperature variations on nanoscale circuits and systems. A new sensor system is described that can determine the temperature dependence as well as the operating temperature to improve system reliability. A new method is presented to control a circuit's temperature dependence by individually tuning pull-up and pull-down networks to their temperature-insensitive operating points. This method extends the range of supply voltages that can be made temperature-insensitive, achieving insensitivity at nominal voltage for the first time.

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