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Principle Features for Tie Strength Estimation in Micro-blog Social Network

机译:微博社交网络中领带强度估计的主要特征

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Relationship degree should be various between two entities, while static friend list in social network is incompetent to express the relationship divergence, thus tie strength is presented to quantitatively describe real social relation based on lots of features derived from historical data in online activities. We propose a model to measure tie strength within a user's social circle in Micro-blog by multivariate stepwise linear regression (MSLR). The model also determines the principle features that are affecting tie strength significantly from abundant features in Micro-blog. Features are mapped into four dimensions to excavate implications hiding behind them from abstract level by taking advantage of previous sociological study achievement. Thus, key dimensions for tie strength are also obtained. Then Native Bayesian Classifier is employed to test the performance of key features and key dimensions in distinguishing ties by strength values. We apply this model with the data derived from Sina Micro-blog and get approximately 80% accuracy of tie strength estimation. Seven principle features are obtained from nineteen ones. We conclude that principle features are consistent with key dimensions, which proves that the mapping processing is reasonable.
机译:两个实体之间的关系程度应该不同,而社交网络中的静态朋友列表无法表达关系分歧,因此,基于在线活动中的历史数据得出的许多特征,提出了结合强度来定量描述真实的社会关系。我们提出了一种通过多元逐步线性回归(MSLR)测量微博中用户社交圈内领带强度的模型。该模型还确定了从微博中的大量功能显着影响领带强度的主要特征。通过利用先前的社会学研究成果,将特征映射到四个维度,以挖掘隐藏在抽象层面背后的含义。因此,还获得了连接强度的关键尺寸。然后使用本机贝叶斯分类器来测试关键特征和关键维度在按强度值区分纽带时的性能。我们将此模型与来自新浪微博的数据一起应用,并获得大约80%的领带强度估算精度。从19个特征中获得7个主要特征。我们得出结论,主要特征与关键维度一致,这证明了映射处理是合理的。

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