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Learning thresholds for PV change detection from operators' labels

机译:从运营商的标签中学习光伏变化检测的阈值

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Page Views (PVs) are very crucial for search engines due to their close relationship to the revenue. When PVs change significantly, operators must be informed so that they can diagnose and fix the problem quickly, and prevent further loss. In reality, PVs can be counted in many ways (e.g., PVs originated from different ISPs), and different PVs are of different interest to operators (e.g., the PVs of a larger ISP is more important). As a result, different PVs often require different detection standards, or thresholds. However, attempts to tune a number of thresholds have been hampered by the cost of the manual effort involved. To address the above problem, we propose a practical framework, called PTL (practical threshold learning). Operators only need to provide a few simple labels about the detection results, then PTL will automatically tune the thresholds for different PVs. Using 4-month PVs from a global top search engine, our evaluation demonstrates that PTL can improve the accuracy of detection dramatically. More importantly, it introduces very little labeling overhead for operators. For example, when detecting the PVs of 103 ISPs, PTL can reduce the overall false negative rate from 96% to 9% using only 29 labels per week on average.
机译:网页浏览量(PV)对搜索引擎而言至关重要,因为它们与收入密切相关。当PV发生显着变化时,必须通知操作员,以便他们可以快速诊断和解决问题,并防止进一步的损失。实际上,PV可以通过多种方式进行计数(例如,源自不同ISP的PV),并且运营商对不同PV的兴趣也不同(例如,较大ISP的PV更为重要)。结果,不同的PV通常需要不同的检测标准或阈值。但是,调整许多阈值的尝试已被所涉及的手动工作的成本所阻碍。为了解决上述问题,我们提出了一个实用的框架,称为PTL(实践阈值学习)。操作员只需提供一些有关检测结果的简单标签,然后PTL将自动调整不同PV的阈值。使用来自全球顶级搜索引擎的4个月PV,我们的评估表明PTL可以显着提高检测的准确性。更重要的是,它为操作员引入了很少的标签开销。例如,当检测103个ISP的PV时,PTL可以平均每周仅使用29个标签将总的假阴性率从96%降低到9%。

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