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Exa-scale computing needs to re-examine the existing hardware platform that can support intensive data-oriented computing. Since the main bottleneck is from memory, we aim to develop an energy-efficient in-memory computing platform in this book. First, the models of spin-transfer torque magnetic tunnel junction and racetrack memory are presented. Next, we show that the spintronics could be a candidate for future data-oriented computing for storage, logic, and interconnect. As a result, by utilizing spintronics, in-memory-based computing has been applied for data encryption and machine learning. The implementations of in-memory AES, Simon cipher, as well as interconnect are explained in details. In addition, in-memory-based machine learning and face recognition are also illustrated in this book.
Autorius: | Hao Yu, Yuhao Wang, Leibin Ni, |
Serija: | Synthesis Lectures on Emerging Engineering Technologies |
Leidėjas: | Springer Nature Switzerland |
Išleidimo metai: | 2016 |
Knygos puslapių skaičius: | 164 |
ISBN-10: | 3031009045 |
ISBN-13: | 9783031009044 |
Formatas: | 235 x 191 x 10 mm. Knyga minkštu viršeliu |
Kalba: | Anglų |
Parašykite atsiliepimą apie „Non-Volatile In-Memory Computing by Spintronics“