Circadian Rhythms for Future Resilient Electronic Systems: Accelerated Active Self-Healing for Integrated Circuits
This book describes methods to address wearout/aging degradations in electronic chips and systems, caused by several physical mechanisms at the device level. The authors introduce a novel technique called accelerated active self-healing, which fixes wearout issues by enabling accelerated recovery. Coverage includes recovery theory, experimental results, implementations and applications, across multiple nodes ranging from planar, FD-SOI to FinFET, based on both foundry provided models and predictive models.
• Presents novel techniques, tested with experiments on real hardware;
• Discusses circuit and system level wearout recovery implementations, many of these designs are portable and friendly to the standard design flow;
• Provides circuit-architecture-system infrastructures that enable the accelerated self-healing for future resilient systems;
• Discusses wearout issues at both transistor and interconnect level, providing solutions that apply to both;
• Includes coverage of resilient aspects of emerging applications such as IoT.
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• Presents novel techniques, tested with experiments on real hardware;
• Discusses circuit and system level wearout recovery implementations, many of these designs are portable and friendly to the standard design flow;
• Provides circuit-architecture-system infrastructures that enable the accelerated self-healing for future resilient systems;
• Discusses wearout issues at both transistor and interconnect level, providing solutions that apply to both;
• Includes coverage of resilient aspects of emerging applications such as IoT.
Circadian Rhythms for Future Resilient Electronic Systems: Accelerated Active Self-Healing for Integrated Circuits
This book describes methods to address wearout/aging degradations in electronic chips and systems, caused by several physical mechanisms at the device level. The authors introduce a novel technique called accelerated active self-healing, which fixes wearout issues by enabling accelerated recovery. Coverage includes recovery theory, experimental results, implementations and applications, across multiple nodes ranging from planar, FD-SOI to FinFET, based on both foundry provided models and predictive models.
• Presents novel techniques, tested with experiments on real hardware;
• Discusses circuit and system level wearout recovery implementations, many of these designs are portable and friendly to the standard design flow;
• Provides circuit-architecture-system infrastructures that enable the accelerated self-healing for future resilient systems;
• Discusses wearout issues at both transistor and interconnect level, providing solutions that apply to both;
• Includes coverage of resilient aspects of emerging applications such as IoT.
• Presents novel techniques, tested with experiments on real hardware;
• Discusses circuit and system level wearout recovery implementations, many of these designs are portable and friendly to the standard design flow;
• Provides circuit-architecture-system infrastructures that enable the accelerated self-healing for future resilient systems;
• Discusses wearout issues at both transistor and interconnect level, providing solutions that apply to both;
• Includes coverage of resilient aspects of emerging applications such as IoT.
109.99
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Circadian Rhythms for Future Resilient Electronic Systems: Accelerated Active Self-Healing for Integrated Circuits
208
Circadian Rhythms for Future Resilient Electronic Systems: Accelerated Active Self-Healing for Integrated Circuits
208Hardcover(1st ed. 2020)
$109.99
109.99
In Stock
Product Details
| ISBN-13: | 9783030200503 |
|---|---|
| Publisher: | Springer International Publishing |
| Publication date: | 06/13/2019 |
| Edition description: | 1st ed. 2020 |
| Pages: | 208 |
| Product dimensions: | 6.10(w) x 9.25(h) x (d) |
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