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Geo-Tagging Quality-of-Experience Self-Reporting on Twitter to Mobile Network Outage Events

机译:在Twitter上对移动网络中断事件进行地理标记的体验质量自报告

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Mobile wireless networks underpin digital economies and smart cities. Local and national scale network failures cause widespread social and economic impact. Self-reporting of consumer experience on social media platforms can inform operators. This paper investigates an innovative method to detect the consumer experience to outage events in both temporal and spatial domain using Twitter data. We use a variety of natural language processing (NLP) analysis to detect the consumer sentiment from a custom made dictionary and using naive Bayes classifier. We propose a hybrid geo-information extraction that sequentially extracts the geo-location from a priority list. A case study upon recent UK wide mobile network failure has been implemented in this paper. The results show that our proposed hybrid geo-information extraction system has been able to increase data size and accuracy of geo labelled Tweets. Also, our system can successfully detect this network issue in both time and location, which is validated by the national newspaper reports on this issue.
机译:移动无线网络是数字经济和智慧城市的基础。本地和全国范围的网络故障会导致广泛的社会和经济影响。在社交媒体平台上自我报告消费者体验可以通知运营商。本文研究了一种创新的方法,该方法可以使用Twitter数据在时空范围内检测消费者的体验,以应对事件的时空中断。我们使用各种自然语言处理(NLP)分析来从定制词典中使用朴素的贝叶斯分类器来检测消费者的情绪。我们提出了一种混合地理信息提取方法,该方法可从优先级列表中顺序提取地理位置。本文针对最近英国范围内的移动网络故障进行了案例研究。结果表明,我们提出的混合地理信息提取系统已经能够增加数据大小和地理标记推文的准确性。此外,我们的系统可以在时间和位置上成功检测到此网络问题,有关该问题的国家报纸报道对此进行了验证。

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