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Pervasive forwarding mechanism for mobile social networks

机译:移动社交网络的普遍转发机制

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In recent years, we have witnessed an increase in the popularity of mobile wireless devices and networks, with greater attention devoted to feasibility of opportunistic computing, sensing, and communication. In Mobile Social Networks (MSNs), communication is provided by spatial proximity and social links between peers, where personal devices carried by users communicate directly in a device-to-device mode. On one hand, human mobility provides encounters between peers and opportunities for communication without additional infrastructure; on the other hand, it introduces intermittent connections, network partitions, and long delay, requiring sophisticated message-forwarding mechanisms to improve network performance. Therefore, socially-inspired approaches which consider network structure and personal user features have been proposed to cope with these challenges. However, many studies disregard adaptive policies of message forwarding capable of dealing with variations of these features. In this paper, we investigated message dissemination in MSNs considering external factors such as temperature and seasonal calendar as environmental features capable of model users'preferences and encounters. We evaluated the time of day, the day of the week, and environmental variables such as weather and geographic position as important factors to the collective behavior and spatiotemporal characteristics of urban scenarios. This paper presents an analysis of real data from weather and human mobility, which depict distinct social interactions and spatial features characterized by changes in thermal conditions. Thus, we propose a socially-aware forwarding mechanism that is adaptable to the seasonality of personal preferences. Our experiments indicated that pervasive data can provide useful information towards the design of the next generation of human-centered Opportunistic Networks. (C) 2016 Elsevier B.V. All rights reserved.
机译:近年来,我们目睹了移动无线设备和网络的普及,并且更加关注机会性计算,传感和通信的可行性。在移动社交网络(MSN)中,通信是通过对等方之间的空间接近度和社交链接来提供的,其中用户携带的个人设备以设备到设备模式直接进行通信。一方面,人员流动无需其他基础设施即可提供同伴之间的交流和交流机会;另一方面,它引入了间歇性连接,网络分区和长时延,需要复杂的消息转发机制来提高网络性能。因此,已经提出了考虑网络结构和个人用户特征的受社会启发的方法来应对这些挑战。但是,许多研究忽略了能够处理这些功能变化的消息转发自适应策略。在本文中,我们考虑了温度和季节性日历等外部因素作为能够模拟用户偏好和遭遇的环境特征,从而研究了MSN中的消息传播。我们评估了一天中的时间,一周中的一天以及天气和地理位置等环境变量,这些变量是影响城市情景的集体行为和时空特征的重要因素。本文提供了对来自天气和人类流动性的真实数据的分析,该数据描绘了以热条件变化为特征的独特的社会互动和空间特征。因此,我们提出了一种社交意识的转发机制,该机制可适应个人喜好的季节性。我们的实验表明,普适数据可以为设计下一代以人为中心的机会网络提供有用的信息。 (C)2016 Elsevier B.V.保留所有权利。

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