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A System for Detecting and Tracking Internet News Event

机译:一种互联网新闻事件的检测与跟踪系统

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摘要

News event detection is the task of discovering relevant, yet previously unreported real-life events and reporting it to users in human-readable form, while event tracking aims to automatically assign event labels to news stories when they arrive. A new method and system for performing the event detection and tracking task is proposed in this paper. The event detection and tracking method is based on subject extraction and an improved support vector machine (SVM), in which subject concepts can concisely and precisely express the meaning of a longer text. The improved SVM first prunes the negative examples, reserves and deletes a negative sample according to distance and class label, then trains the new set with SVM to obtain a classifier and maps the SVM outputs into probabilities. The experimental results with the real-world data sets indicate the proposed method is feasible and advanced.
机译:新闻事件检测的任务是发现相关但以前未报告的真实事件,并以人类可读的形式将其报告给用户,而事件跟踪的目的是在新闻报道到达时自动为其分配事件标签。提出了一种新的执行事件检测和跟踪任务的方法和系统。事件检测和跟踪方法基于主题提取和改进的支持向量机(SVM),其中主题概念可以简洁准确地表达较长文本的含义。改进的SVM首先修剪负样本,根据距离和类别标签保留并删除负样本,然后使用SVM训练新集合以获得分类器,并将SVM输出映射为概率。真实数据集的实验结果表明,该方法是可行且先进的。

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