A Nearest-Neighbor-Based Thermal Sensor Allocation and Temperature Reconstruction Method for 3-D NoC-Based Multicore Systems

被引:0
|
作者
Guo, Menghao [1 ,2 ]
Cheng, Tong [1 ,2 ]
Li, Xinyi [1 ,2 ]
Li, Li [1 ,2 ]
Fu, Yuxiang [1 ,2 ]
机构
[1] Nanjing Univ, Sch Integrated Circuits, Nanjing 210023, Jiangsu, Peoples R China
[2] Nanjing Univ, Sch Elect Sci & Engn, Nanjing 210023, Jiangsu, Peoples R China
关键词
3-D network-on-chip (NoC); full-chip temperature reconstruction; soft computing with sensor data; thermal monitoring; thermal sensor allocation; MANAGEMENT; POWER;
D O I
10.1109/JSEN.2022.3218953
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
To avoid overheating of 3-D network-on-chip (NoC)-based multicore systems, many researchers have used dynamic thermal management (DTM) techniques, which need embedded thermal sensors to provide accurate temperature information. However, only a few sensors can be embedded due to the limited hardware cost. So, it is crucial to find an appropriate way to allocate number-limited sensors at design time and reconstruct full-chip temperature accurately using the limited temperature information. However, the relationship between the non-sensor-allocated nodes and the sensor-allocated nodes modeled by the existing methods has a deviation from the actuality, which leads to an inaccurate temperature reconstruction. Another problemis that the existing methods depend highly on the training data. The estimation error can be significant when the running application's traffic characteristic differs from the one in the offline phase. This article presents a sensor allocation method based on the cores' spatial correlation, which is not dependent on the training data. Our allocation method contains two stages: 1) using our nearest-neighbor-based initialization algorithm to allocate sensors preliminarily and 2) using genetic algorithm (GA) to optimize the initial allocation. Besides, we use artificial neural network (ANN) to reconstruct the full-chip temperature. Compared with the state-of-the-art methods, our method can improve the average accuracy of the estimated temperature under different scenarios by 17.60%-88.63%. What is more, our approach has high flexibility and can adapt to different application scenarios with high accuracy with only one offline training.
引用
收藏
页码:24186 / 24196
页数:11
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