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Increasing Energy Efficiency on Smartphones through Data Forecashing

机译:通过数据预防,提高智能手机上的能效

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Smartphones are widely used in daily life to access services and various functions require continuous communication, which leads to increased energy consumption. However, the development of battery and related energy saving technology can not meet the demand for energy consumption. Much of current research work focuses on energy models caring much about energy consumption of every single application. In this paper, we propose a data forecasting-based strategy for increasing energy efficiency on smartphones based on the predictability of data to be accessed. To achieve this, a combination of Collaborative filtering with the k-means algorithm categorize users with similar user groups and speculate use increased for the data users will access. With this model, we also adopt data pre-storing model and dynamic updating model. The simulation results illustrate that our approach is leading to energy saving.
机译:智能手机广泛用于日常生活中,进入服务,各种功能需要连续通信,这导致能耗增加。然而,电池和相关节能技术的开发不能满足能源消耗的需求。目前的大部分研究工作侧重于能源模型关心每种应用的能耗很多。在本文中,我们提出了一种基于数据预测的基于数据预测,用于增加智能手机上的能效,基于要访问的数据的可预测性。为此,使用K-Means算法对具有类似用户组的用户分类用户的协作滤波的组合,并为数据用户推测使用增加使用。使用此模型,我们还采用数据预先存储模型和动态更新模型。仿真结果表明我们的方法导致节能。

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