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Comparison of Lossless Data Compression Techniques in Low-Cost Low-Power (LCLP) IoT Systems

机译:低成本低功耗(LCLP)物联网系统中无损数据压缩技术的比较

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With the recent advances and proliferation of the Internet of Things (IoT) devices, there is a huge demand placed on its infrastructure requirements. The amount of data generated by these small low-cost, low-power (LCLP) IoT devices is phenomenal and at the same time due to the devices being low-powered, they cannot be used to perform complex computations and other algorithm implementations. There are also limitations in communication data rates at different stages in a Wireless Sensor Network (WSN), which mainly uses wireless technologies such as Bluetooth, Zigbee, LoRa, etc to achieve low power communication. These technologies come with limited bandwidth and are not very reliable at high data rates. Hence the challenge of handling high amounts of data with low bandwidth communication technologies is one of the main hurdles inefficient LCLP IoT system deployments. To address this problem, we propose a combination of data compression techniques, which will result in reduced data size, without compromising affecting the quality of the data. This paper describes the implementation of a combination of Delta and RLE compression techniques on specific sensor data, particularly those used in our deployment of the World's First Wireless Sensor Network-based System for Early warning and Monitoring of Rainfall induced Landslides in Southern India. The test results show a good compression ratio of 52.67% for 12bit ADC, without compromising on the quality of the data. This has been implemented on a Programmable System-on-a-Chip (PSoC) system and the results presented.
机译:随着物联网(IoT)设备的最新发展和普及,对其基础设施需求提出了巨大的需求。这些小型的低成本,低功耗(LCLP)物联网设备生成的数据量惊人,同时由于设备功耗低,它们无法用于执行复杂的计算和其他算法实现。无线传感器网络(WSN)中不同阶段的通信数据速率也受到限制,该网络主要使用诸如蓝牙,Zigbee,LoRa等无线技术来实现低功耗通信。这些技术具有有限的带宽,并且在高数据速率下不是很可靠。因此,使用低带宽通信技术处理大量数据的挑战是低效率LCLP IoT系统部署的主要障碍之一。为了解决此问题,我们提出了数据压缩技术的组合,这将导致数据大小减小,而又不影响数据质量。本文介绍了在特定传感器数据上实现Delta和RLE压缩技术相结合的方法,特别是在我们部署世界上第一个基于无线传感器网络的系统以用于印度南部降雨诱发的滑坡的预警和监测时所采用的方法。测试结果表明,对于12位ADC而言,压缩率为52.67%,具有良好的压缩率,而不会影响数据质量。这已在可编程片上系统(PSoC)系统上实现,并显示了结果。

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