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首页> 外文期刊>Sensors >A Malicious Pattern Detection Engine for Embedded Security Systems in the Internet of Things
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A Malicious Pattern Detection Engine for Embedded Security Systems in the Internet of Things

机译:物联网中嵌入式安全系统的恶意模式检测引擎

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With the emergence of the Internet of Things (IoT), a large number of physical objects in daily life have been aggressively connected to the Internet. As the number of objects connected to networks increases, the security systems face a critical challenge due to the global connectivity and accessibility of the IoT. However, it is difficult to adapt traditional security systems to the objects in the IoT, because of their limited computing power and memory size. In light of this, we present a lightweight security system that uses a novel malicious pattern-matching engine. We limit the memory usage of the proposed system in order to make it work on resource-constrained devices. To mitigate performance degradation due to limitations of computation power and memory, we propose two novel techniques, auxiliary shifting and early decision. Through both techniques, we can efficiently reduce the number of matching operations on resource-constrained systems. Experiments and performance analyses show that our proposed system achieves a maximum speedup of 2.14 with an IoT object and provides scalable performance for a large number of patterns.
机译:随着物联网(IoT)的出现,日常生活中的大量物理对象已积极地连接到Internet。随着连接到网络的对象数量的增加,由于物联网的全球连接性和可访问性,安全系统面临着严峻的挑战。但是,由于传统的安全系统的计算能力和内存大小有限,因此很难使其适应物联网中的对象。有鉴于此,我们提出了一种使用新型恶意模式匹配引擎的轻量级安全系统。为了使它在资源受限的设备上运行,我们限制了所提议系统的内存使用量。为了减轻由于计算能力和内存的限制而导致的性能下降,我们提出了两种新颖的技术:辅助移位和早期决策。通过这两种技术,我们可以有效地减少资源受限系统上的匹配操作数量。实验和性能分析表明,我们提出的系统通过IoT对象达到了2.14的最大加速,并为大量模式提供了可扩展的性能。

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