Energy Optimization through Dual step based probable Cluster Head selection in WSN Environment

B. Mahitha, V. S
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Abstract

In a nearby future, applications of WSN are expected to bring an evolution in data collection, data processing and others. However, Energy consumption is one of the crucial issues when it comes to designing the Network. Apart from the energy consumption other issues like network lifetime, network failure also influences the design of the network. Several methods have been proposed for improving the network lifetime however these methods fail in addressing issues such as complexity, redundancy. Hence in this research work we have proposed a methodology called DSPCH (Dual step based probable cluster head)-selection to enhance network lifetime, achieve efficient transmission and network development. The main aim of DSPCH is to optimize the energy for efficient transmission and hence to improve the network life time. DSPCH follows a two-step mechanism to select cluster head. First step is through designed probability mechanism and second step is based on the node lifetime considering optimization in both the steps. Further, DSPCH model is evaluated considering the different parameters like energy consumption, network lifetime in terms of number of rounds and number of dead nodes. Comparative analysis is carried out with the existing model in terms of the same parameters to evaluate and prove the model efficiency.
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基于双步概率簇头选择的WSN环境能量优化
在不久的将来,无线传感器网络的应用有望在数据收集、数据处理等方面带来变革。然而,在设计网络时,能源消耗是一个关键问题。除了能源消耗和网络寿命等问题外,网络故障也会影响网络的设计。已经提出了几种改善网络生存期的方法,但是这些方法在解决复杂性、冗余等问题时都失败了。因此,在本研究中,我们提出了一种称为DSPCH(基于双步的可能簇头)选择方法来提高网络寿命,实现高效传输和网络发展。DSPCH的主要目标是优化能量以实现高效传输,从而延长网络寿命。DSPCH采用两步机制选择簇头。第一步是通过设计的概率机制,第二步是基于节点寿命,考虑两步的优化。在此基础上,对DSPCH模型进行了能量消耗、网络生命周期(轮数)和死节点数等参数的综合评价。在相同参数下,与已有模型进行对比分析,评价和证明模型的有效性。
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