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Social Networking and Consumer Preference Based Power Peak Reduction for Safe Smart Grid

机译:基于社交网络和基于用户偏好的功率峰值降低,以实现安全智能电网

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Efficient power peak reduction is a classic scheduling target to make smart grid more safe. To handle multiple energy consumers, energy management are usually built based on game theory. Despite their effectiveness, they do not consider consumer preferences, which are however important in developing salient scheduling frameworks. This work explores consumer preference based social networking in computing optimized schedules to facilitate the incorporation in energy management. We propose the consumer preference driven intelligent energy management technique for smart cities using game theoretic social tie. In our technique, social communities are constructed based on the preference of electricity usage. Community pricing strategy is adjusted during each time period through leveraging cooperative game theory. The simulation results demonstrate the effectiveness and efficiency of the proposed intelligent energy management technique.
机译:有效降低功率峰值是使智能电网更加安全的经典调度目标。为了处理多个能源消耗者,通常基于博弈论来构建能源管理。尽管它们很有效,但是他们没有考虑消费者的偏好,但是消费者的偏好在开发显着的调度框架中很重要。这项工作探索了基于消费者偏好的社交网络,以计算优化的时间表,以促进整合到能源管理中。我们使用博弈论的社会关系为智能城市提出了消费者偏好驱动的智能能源管理技术。在我们的技术中,社交社区是根据用电偏好来构建的。利用合作博弈理论在每个时间段调整社区定价策略。仿真结果证明了所提出的智能能源管理技术的有效性和效率。

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