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A Technologically Agnostic Framework for Cyber-Physical and IoT Processing-in-Memory-based Systems Simulation

机译:基于网络物理和IOT处理内存存储的系统模拟的技术不可知论框架

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Smart devices based on Internet of Things (IoT) and Cyber-Physical System (CPS) are emerging as an important and complex set of applications in the modern world. These systems can generate a massive amounts of data, due to the enormous quantity of sensors being used in modern applications, which can either stress the communication mechanisms or need extra resources to treat data locally. In the era of efficient smart devices, the idea of transmitting huge amounts of data is prohibitive. Furthermore, implementing traditional architectures imposes limits on achieving the required efficiency. Within the area, power, and energy constraints, Processing-in-Memory(PIM) has emerged as a solution for efficiently processing big data. By using PIM, the generated data can be processed locally, with reduced power and energy costs, allowing an efficient solution for CPS and IoT data management problem. However, two main tools are fundamental on this scenario: a simulator that allows architectural performance and behavior analysis is essential within a project life-cycle, and a compiler able to automatically generate code for the targeted architecture with obvious improvements of productivity. Also, with the emergence of new technologies, the ability to simulate PIM coupled to the latest memory technologies is also important. This work presents a framework able to simulate and automatically generate code for IoT PIM-based systems. Also, supported by the presented framework, this work proposes an architecture that shows an efficient loT PIM system able to compute a real image recognition application. The proposed architecture is able to process 6 x more frames per second than the baseline, while improving the energy efficiency by 30 x. (C) 2019 Elsevier B.V. All rights reserved.
机译:基于物联网(物联网)和网络物理系统(CPS)的智能设备正在成为现代世界中的重要且复杂的应用。由于现代应用中使用的巨大传感器,这些系统可以产生大量数据,这可以强调通信机制或需要额外的资源来在本地处理数据。在高效智能设备的时代,传输大量数据的想法是禁止的。此外,实现传统架构对实现所需效率施加限制。在该地区,电力和能量约束内,加工内存(PIM)被出现为有效处理大数据的解决方案。通过PIM,可以在本地处理所生成的数据,降低功率和能源成本,允许CPS和IOT数据管理问题的有效解决方案。然而,两个主要工具在这种情况下是基本的:允许架构性能和行为分析的模拟器在项目生命周期内是必不可少的,并且一个能够自动为目标架构生成代码的编译器,具有明显的生产率的提高。此外,随着新技术的出现,模拟PIM耦合到最新内存技术的能力也很重要。这项工作介绍了一个能够模拟和自动生成基于物联网PIM系统的代码的框架。此外,该工作还支持框架,提出了一种显示能够计算实际图像识别应用程序的有效LIM系统的架构。所提出的架构能够从基线处理6 x更多帧,同时将能量效率提高30 x。 (c)2019 Elsevier B.v.保留所有权利。

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