An Adaptive Whale Optimization Algorithm Guided Smart City Big Data Feature Identification for Fair Resource Utilization
Kapil Sharma1, Sandeep Tayal2

1Kapil Sharma*, Delhi Technological University, Delhi, India.
2Sandeep Tayal, Delhi Technological University, Delhi, India. 

Manuscript received on September 16, 2019. | Revised Manuscript received on 24 September, 2019. | Manuscript published on October 10, 2019. | PP: 271-281 | Volume-8 Issue-12, October 2019. | Retrieval Number: L37631081219/2019©BEIESP | DOI: 10.35940/ijitee.L3763.1081219
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Abstract: World improvement is the development of every single province of the world. Smart city implies changed hardware to adjusted individuals. Smart cities have the most indispensable part in altering distinctive regions of human life, touching segments like transportation, wellbeing, vitality, and instruction. Productively to make measurements to improve distinctive smart city benefits huge information frameworks are put away, prepared, and mined in smart cities. For the change and course of action of huge information applications for smart cities, different difficulties are faces. In this paper, we propose a wrapper display based ideal element recognizable proof calculation for ideal use of assets given highlight subset age. Nine component determination techniques used for compelling element extraction. At last, which includes best add to the ideal usage of assets got by means of a novel element recognizable proof calculation made by the application out of a Whale Optimization Algorithm with Adaptive Multi-Population (WOA-AMP) system as inquiry process in a wrapper display driven by the notable relapse demonstrate regression model Random Forest with Support Vector Machine (RF-SVM). Our proposed calculation gives the exact method to choose the most agreeable feature blend, which prompts ideal asset usage.
Keywords: Feature selection, Whale Optimization Algorithm (WOA), Adaptive Multi-Population (AMP), Random forest, Smart city.
Scope of the Article: Algorithm Engineering