Energy-Efficient Sensing with the Low Power, Energy Aware Processing (LEAP) Architecture

被引:8
作者
McIntire, Dustin [1 ]
Stathopoulos, Thanos [1 ]
Reddy, Sasank [1 ]
Schmidt, Thomas [1 ]
Kaiser, William J. [1 ]
机构
[1] Univ Calif Los Angeles, Los Angeles, CA 90024 USA
基金
美国国家科学基金会;
关键词
Algorithms; Management; Measurement; Performance; Design; Reliability; Experimentation; Embedded wireless networked sensor; energy-aware multiprocessor platform; sensor platform hardware and software architecture; DESIGN TECHNIQUES; MANAGEMENT;
D O I
10.1145/2220336.2220339
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
A broad range of embedded networked sensing (ENS) applications have appeared for large-scale systems, introducing new requirements leading to new embedded architectures, associated algorithms, and supporting software systems. These new requirements include the need for diverse and complex sensor systems that present demands for energy and computational resources, as well as for broadband communication. To satisfy application demands while maintaining critical support for low-energy operation, a new multiprocessor node hardware and software architecture, Low Power Energy Aware Processing (LEAP), has been developed. In this article, we described the LEAP design approach, in which the system is able to adaptively select the most energy-efficient hardware components matching an application's needs. The LEAP platform supports highly dynamic requirements in sensing fidelity, computational load, storage media, and network bandwidth. It focuses on episodic operation of each component and considers the energy dissipation for each platform task by integrating fine-grained energy-dissipation monitoring and sophisticated power-control scheduling for all subsystems, including sensors. In addition to the LEAP platform's unique hardware capabilities, its software architecture has been designed to provide an easy way to use power management interface and a robust, fault-tolerant operating environment and to enable remote upgrade of all software components. LEAP platform capabilities are demonstrated by example implementations, such as a network protocol design and a light source event detection algorithm. Through the use of a distributed node testbed, we demonstrate that by exploiting high energy-efficiency components and enabling proper on-demand scheduling, the LEAP architecture may meet both sensing performance and energy dissipation objectives for a broad class of applications.
引用
收藏
页数:36
相关论文
共 50 条
[41]   Model Predictive Control for Energy-Efficient, Quality-Aware, and Secure Virtual Machine Placement [J].
Gaggero, Mauro ;
Caviglione, Luca .
IEEE TRANSACTIONS ON AUTOMATION SCIENCE AND ENGINEERING, 2019, 16 (01) :420-432
[42]   Energy-efficient cyber-physical production network: Architecture and technologies [J].
Lu, Yugian ;
Peng, Tao ;
Xu, Xun .
COMPUTERS & INDUSTRIAL ENGINEERING, 2019, 129 :56-66
[43]   A Hardware-Assisted Energy-Efficient Processing Model for Activity Recognition Using Wearables [J].
Ghasemzadeh, Hassan ;
Fallahzadeh, Ramin ;
Jafari, Roozbeh .
ACM TRANSACTIONS ON DESIGN AUTOMATION OF ELECTRONIC SYSTEMS, 2016, 21 (04)
[44]   Sustainable, green, or smart? Pathways for energy-efficient healthcare buildings [J].
Silva, Brenda V. F. ;
Holm-Nielsen, Jens Bo ;
Sadrizadeh, Sasan ;
Teles, Mavd P. R. ;
Kiani-Moghaddam, Mohammad ;
Arabkoohsar, Ahmad .
SUSTAINABLE CITIES AND SOCIETY, 2024, 100
[45]   VigilNet: An Integrated Sensor Network System for Energy-Efficient Surveillance [J].
He, Tian ;
Krishnamurthy, Sudha ;
Luo, Liqian ;
Yan, Ting ;
Gu, Lin ;
Stoleru, Radu ;
Zhou, Gang ;
Cao, Qing ;
Vicaire, Pascal ;
Stankovic, John A. ;
Abdelzaher, Tarek F. ;
Hui, Jonathan ;
Krogh, Bruce .
ACM TRANSACTIONS ON SENSOR NETWORKS, 2006, 2 (01)
[46]   Energy-Efficient Localization: GPS Duty Cycling with Radio Ranging [J].
Jurdak, Raja ;
Corke, Peter ;
Cotillon, Alban ;
Dharman, Dhinesh ;
Crossman, Chris ;
Salagnac, Guillaume .
ACM TRANSACTIONS ON SENSOR NETWORKS, 2013, 9 (02)
[47]   Highly Thermally Conductive Bimorph Structures for Low-Grade Heat Energy Harvester and Energy-Efficient Actuators [J].
Liu, Zexin ;
Zhang, Rong ;
Yang, Kai ;
Yue, Yue ;
Wang, Fanfan ;
Li, Kangyong ;
Wang, Gongkai ;
Lian, Jie ;
Xin, Guoqing .
ACS APPLIED MATERIALS & INTERFACES, 2022, 14 (34) :39031-39038
[48]   Energy-Efficient Syndrome Calculation Architecture for BCH Decoders [J].
Kim, Jeongmin ;
Kwon, Jaehoon ;
Jeong, Hansol ;
Park, In-Cheol .
IEEE TRANSACTIONS ON VERY LARGE SCALE INTEGRATION (VLSI) SYSTEMS, 2025,
[49]   Energy-Efficient User Association and Power Control in the Heterogeneous Network [J].
Wang, Min ;
Gao, Hui ;
Lv, Tiejun .
IEEE ACCESS, 2017, 5 :5059-5068
[50]   Survey of Energy-Efficient and Power-Proportional Storage Systems [J].
Llopis, Pablo ;
Garcia Blas, Javier ;
Isaila, Florin ;
Carretero, Jesus .
COMPUTER JOURNAL, 2014, 57 (07) :1017-1032