Graph Analysis with Multifunctional Self-Rectifying Memristive Crossbar Array

被引:26
作者
Jang, Yoon Ho [1 ,2 ]
Han, Janguk [1 ,2 ]
Kim, Jihun [1 ,2 ]
Kim, Woohyun [1 ,2 ]
Woo, Kyung Seok [1 ,2 ]
Kim, Jaehyun [1 ,2 ]
Hwang, Cheol Seong [1 ,2 ]
机构
[1] Seoul Natl Univ, Dept Mat Sci & Engn, Seoul 08826, South Korea
[2] Seoul Natl Univ, Coll Engn, Inter univ Semicond Res Ctr, Seoul 08826, South Korea
基金
新加坡国家研究基金会;
关键词
crossbar-arrays; graph algorithms; process-in-memory; self-rectifying memristor; sneak current; RESISTIVE MEMORY; NETWORKS; SYSTEM; RECOMMENDATION; MODEL;
D O I
10.1002/adma.202209503
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Many big data have interconnected and dynamic graph structures growing over time. Analyzing these graphical data requires the hidden relationship between the nodes in the graphs to be identified, which has conventionally been achieved by finding the effective similarity. However, graphs are generally non-Euclidean, which does not allow finding it. In this study, the non-Euclidean graphs are mapped to a specific crossbar array (CBA) composed of self-rectifying memristors and metal cells at the diagonal positions. The sneak current, an intrinsic physical property in the CBA, allows for the identification of the similarity function. The sneak-current-based similarity function indicates the distance between the nodes, which can be used to predict the probability that unconnected nodes will be connected in the future, connectivity between communities, and neural connections in a brain. When all bit lines of the CBA are connected to the ground, the sneak current is suppressed, and the CBA can be used to search for adjacent nodes. This work demonstrates the physical calculation methods applied to various graphical problems using the CBA composed of the self-rectifying memristor based on the HfO2 switching layer. Moreover, such applications suffer less from the memristors' inherent issues related to their stochastic nature.
引用
收藏
页数:13
相关论文
共 55 条
[1]   Application of network link prediction in drug discovery [J].
Abbas, Khushnood ;
Abbasi, Alireza ;
Dong, Shi ;
Niu, Ling ;
Yu, Laihang ;
Chen, Bolun ;
Cai, Shi-Min ;
Hasan, Qambar .
BMC BIOINFORMATICS, 2021, 22 (01)
[2]   Friends and neighbors on the Web [J].
Adamic, LA ;
Adar, E .
SOCIAL NETWORKS, 2003, 25 (03) :211-230
[3]   Graph-based methods for analysing networks in cell biology [J].
Aittokallio, Tero ;
Schwikowski, Benno .
BRIEFINGS IN BIOINFORMATICS, 2006, 7 (03) :243-255
[4]   Internet -: Diameter of the World-Wide Web [J].
Albert, R ;
Jeong, H ;
Barabási, AL .
NATURE, 1999, 401 (6749) :130-131
[5]   GRAPH-THEORY IN NETWORK ANALYSIS [J].
BARNES, JA ;
HARARY, F .
SOCIAL NETWORKS, 1983, 5 (02) :235-244
[6]  
Bj??rnsson Y., 2006, P 2 ART INT INT DIG, P9
[7]   Fast unfolding of communities in large networks [J].
Blondel, Vincent D. ;
Guillaume, Jean-Loup ;
Lambiotte, Renaud ;
Lefebvre, Etienne .
JOURNAL OF STATISTICAL MECHANICS-THEORY AND EXPERIMENT, 2008,
[8]   A fully integrated reprogrammable memristor-CMOS system for efficient multiply-accumulate operations [J].
Cai, Fuxi ;
Correll, Justin M. ;
Lee, Seung Hwan ;
Lim, Yong ;
Bothra, Vishishtha ;
Zhang, Zhengya ;
Flynn, Michael P. ;
Lu, Wei D. .
NATURE ELECTRONICS, 2019, 2 (07) :290-299
[9]   A Comprehensive Survey of Graph Embedding: Problems, Techniques, and Applications [J].
Cai, HongYun ;
Zheng, Vincent W. ;
Chang, Kevin Chen-Chuan .
IEEE TRANSACTIONS ON KNOWLEDGE AND DATA ENGINEERING, 2018, 30 (09) :1616-1637
[10]   Finding local community structure in networks [J].
Clauset, A .
PHYSICAL REVIEW E, 2005, 72 (02)