Confidentiality Enhancement Using Spread Spectrum Modulation Technique for Aggregated Data in Wireless Sensor Networks

T. Tagare, R. Narendra
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Abstract

Wireless Sensor Networks (WSN) play a crucial role in transmitting bulk data remotely on Internet of Things (IoT). The data transmitted by the tiny sensor nodes of the network are basically the physical parameters of the environment like temperature, vibration, pressure etc. There exists a huge co-relation in the data sent by the nodes. This bulk data needs to be aggregated in order to conserve the energy of the network and thereby enhance the network lifetime. Although the aggregation might lead to loss of actual data, aggregating helps in reducing energy requirement during transmission which is of primary importance and hence is considered as a suitable method in WSN. Adding confidentiality to aggregated data helps in sending the data more securely. Spread spectrum modulation is a widely used technique to provide confidentiality in communication systems. In this research work, we implement a data aggregation technique and apply the spread spectrum modulation technique to provide confidentiality to the aggregated data that needs to be transmitted from the cluster head node to the gateway. Here, data aggregation process consists of averaging the number of data that are sensed by a sensor node and transmitting only its average value to the gateway. This reduces the amount of data transmission and helps in conserving energy. Further, the spread spectrum technique implements Binary Phase Shift Keying (BPSK) method with Frequency Hopping Spread Spectrum (FHSS) carried out using six different frequencies on MATLAB 2020a. The simulation results evaluate the performance of the system. The graphs are plotted for modulated and demodulated signals, spread and de-spread sequences, Bit Error Rate (BER) of BPSK/ FHSS over Rayleigh flat fading channel, Power Spectral Density (PSD) and Fast Fourier Transform (FFT) of frequency hopped signal. The results show that BER value decreases with increase in Signal to Noise Ratio (SNR). The maximum power consumption in the network is 7.518 mW at 5MHz frequency, for adding confidentiality to the aggregated data to be transmitted. Thus, the proposed work promises efficient energy consumption, longer network lifetimes with added confidentiality.
利用扩频调制技术增强无线传感器网络中聚合数据的保密性
无线传感器网络(WSN)在物联网(IoT)中远程传输大量数据起着至关重要的作用。网络中微小的传感器节点传输的数据基本上是环境的物理参数,如温度、振动、压力等。节点间发送的数据之间存在着巨大的相互关系。这些大量数据需要聚合,以便节省网络的能量,从而提高网络的生命周期。虽然聚合可能导致实际数据的丢失,但聚合有助于降低传输过程中的能量需求,这是最重要的,因此被认为是WSN中合适的方法。向聚合数据添加机密性有助于更安全地发送数据。扩频调制是一种在通信系统中广泛应用的保密技术。在本研究中,我们实现了一种数据聚合技术,并应用扩频调制技术为需要从集群头节点传输到网关的聚合数据提供保密性。在这里,数据聚合过程包括对传感器节点感知到的数据数量进行平均,并仅将其平均值传输到网关。这减少了数据传输量,有助于节约能源。进一步,扩频技术在MATLAB 2020a上利用六个不同频率的跳频扩频(FHSS)实现了二值相移键控(BPSK)方法。仿真结果评价了系统的性能。绘制了调制和解调信号、扩频和反扩频序列、BPSK/ FHSS在瑞利平坦衰落信道上的误码率(BER)、跳频信号的功率谱密度(PSD)和快速傅里叶变换(FFT)的图。结果表明,误码率随信噪比的增大而减小。在5MHz频率下,网络最大功耗为7.518 mW,为传输的聚合数据增加保密性。因此,提议的工作承诺有效的能源消耗,更长的网络生命周期和增加的保密性。
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