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GuruMine: A Pattern Mining System for Discovering Leaders and Tribes

机译:GuruMine:用于发现领导者和部落的模式挖掘系统

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In this demo we introduce GuruMine, a pattern mining system for the discovery of leaders, i.e., influential users in social networks, and their tribes, i.e., a set of users usually influenced by the same leader over several actions. GuruMine is built upon a novel pattern mining framework for leaders discovery, that we introduced in [1]. In particular, we consider social networks where users perform actions. Actions may be as simple as tagging resources (urls) as in del.icio.us, rating songs as in Yahoo! Music, or movies as in Yahoo! Movies, or users buying gadgets such as cameras, handholds, etc. and blogging a review on the gadgets. The assumption is that actions performed by a user can be seen by their network friends. Users seeing their friends actions are sometimes tempted to perform those actions. On the basis of the propagation of such influence, in [1] we provided various notion of leaders and developed algorithms for their efficient discovery. GuruMine provides users with a friendly graphical interface for selecting the actions of interest, and the kind of leaders to mine. The set of parameters driving the pattern discovery process can be iteratively refined, and the result is updated, if possible without incurring a completely new computation. Once a set of leaders has been extracted, GuruMine can easily validate them on a set of actions unseen during the pattern mining, by analyzing the portion of network reached by the influence of the selected leaders on the unseen actions. GuruMine also offers various visualizations over the social networks: the propagation of an action, the leaders, their tribes, and the interactions between different leaders and tribes. In this demo we will show: (i) how the pattern mining process can be driven towards the discovery of a good set of leaders, (ii) the ease of use of GuruMine system, and (iii) its outstanding performances on large real-world social networks and actions databases.
机译:在本演示中,我们介绍GuruMine,这是一种模式挖掘系统,用于发现领导者(即社交网络中有影响力的用户)及其部落(即通常由同一领导者在多个操作上影响的一组用户)的发现。 GuruMine建立在一个新颖的模式挖掘框架上,用于领导者发现,我们在文献[1]中对此进行了介绍。特别是,我们考虑用户在其中执行操作的社交网络。操作可能像在del.icio.us中那样标记资源(URL)一样简单,对歌曲进行评级就像在Yahoo!中一样。音乐或电影,例如Yahoo!电影或购买小工具(例如相机,手柄等)并在小工具上撰写评论的用户。假设用户的行为可以被他们的网络朋友看到。用户看到他们的朋友动作有时会被诱惑去执行那些动作。基于这种影响的传播,在[1]中,我们提供了领导者的各种概念,并开发了有效发现领导者的算法。 GuruMine为用户提供了一个友好的图形界面,用于选择感兴趣的动作以及要挖掘的领导者的种类。可以迭代地完善驱动模式发现过程的参数集,并在可能的情况下更新结果,而无需进行全新的计算。提取出一组领导者后,GuruMine可以通过分析所选领导者对这些看不见的行为的影响所达到的网络部分,轻松地对模式挖掘期间未发现的一组行为进行验证。 GuruMine还通过社交网络提供各种可视化效果:动作的传播,领导者,他们的部落以及不同领导者和部落之间的互动。在本演示中,我们将展示:(i)如何将模式挖掘过程推向发现良好的领导者集合;(ii)GuruMine系统的易用性;以及(iii)在大型实测环境中的出色表现。世界社交网络和行动数据库。

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