In-Memory Logic Operations and Neuromorphic Computing in Non-Volatile Random Access Memory

Recent progress in the development of artificial intelligence technologies, aided by deep learning algorithms, has led to an unprecedented revolution in neuromorphic circuits, bringing us ever closer to brain-like computers. However, the vast majority of advanced algorithms still have to run on conv...

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Vydáno v:Materials Ročník 13; číslo 16; s. 3532
Hlavní autoři: Ou, Qiao-Feng, Xiong, Bang-Shu, Yu, Lei, Wen, Jing, Wang, Lei, Tong, Yi
Médium: Journal Article
Jazyk:angličtina
Vydáno: Basel MDPI AG 10.08.2020
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ISSN:1996-1944, 1996-1944
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Shrnutí:Recent progress in the development of artificial intelligence technologies, aided by deep learning algorithms, has led to an unprecedented revolution in neuromorphic circuits, bringing us ever closer to brain-like computers. However, the vast majority of advanced algorithms still have to run on conventional computers. Thus, their capacities are limited by what is known as the von-Neumann bottleneck, where the central processing unit for data computation and the main memory for data storage are separated. Emerging forms of non-volatile random access memory, such as ferroelectric random access memory, phase-change random access memory, magnetic random access memory, and resistive random access memory, are widely considered to offer the best prospect of circumventing the von-Neumann bottleneck. This is due to their ability to merge storage and computational operations, such as Boolean logic. This paper reviews the most common kinds of non-volatile random access memory and their physical principles, together with their relative pros and cons when compared with conventional CMOS-based circuits (Complementary Metal Oxide Semiconductor). Their potential application to Boolean logic computation is then considered in terms of their working mechanism, circuit design and performance metrics. The paper concludes by envisaging the prospects offered by non-volatile devices for future brain-inspired and neuromorphic computation.
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ISSN:1996-1944
1996-1944
DOI:10.3390/ma13163532