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Revamp social neural network application of Reality Mining

机译:改造Reality Mining的社交神经网络应用

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Assembling and scrutinizing of on-going communicational-follow in general public enables us to figure behavioral structure of its individuals. Reality-Mining the center idea to bolster this empowers us to gather advanced breadcrumbs left by individuals while they perform their daily routine. Gathering of these signs through sociometric identifications and afterward detailing them for a visual perspective is indicated in the further segment of this paper. The model proposed in this paper is taking into account multi-level information gathering and filtration framework. In this model society is divided in groups on the premise of their intra-group and inter-group interactions. It determines the sequestered group and the speediest data disseminating group. This filtration is handled on the server and all the information exchanges are refined with secure protocols. For gathering of communicational traces we argue utilization of cell phones as sensors, which process information to further server. Further inclusion of influential model and centrality methodologies empower us to recognize most compelling individual in the sub-group. Usage of web based multi-level architecture permits simple expansion, more extensive territory scope, storing and handling huge log records and simple integration with pre-existing communication network.
机译:在一般公众中进行持续的交流活动的汇总和审查,使我们能够确定其个人的行为结构。现实-挖掘中心思想以支持这一点,使我们能够收集个人在执行日常工作时留下的高级面包屑。通过社会计量学识别来收集这些标志,并在随后的视觉细节中详细说明它们。本文提出的模型考虑了多级信息收集和过滤框架。在这种模式下,社会在群体内部和群体之间的相互作用的前提下被分为不同的群体。它确定隔离的组和最快的数据分发组。此过滤在服务器上处理,所有信息交换均使用安全协议进行完善。为了收集通信迹线,我们主张将手机用作传感器,以将信息处理到进一步的服务器。进一步包含有影响力的模型和中心方法,使我们能够认识到该分组中最有说服力的个人。基于Web的多层体系结构的使用允许简单的扩展,更广泛的领域范围,存储和处理大量的日志记录以及与现有通信网络的简单集成。

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