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Towards Geolocation of Millions of IP Addresses*

机译:数百万个IP地址的地理定位*

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Previous measurement-based IP geolocation algorithms have focused on accuracy, studying a few targets with increasingly sophisticated algorithms taking measurements from tens of vantage points (VPs). In this paper, we study how to scale up existing measurement-based geolocation algorithms like Shortest Ping and CBG to cover the whole Internet. We show that with many vantage points, VP proximity to the target is the most important factor affecting accuracy. This observation suggests our new algorithm that selects the best few VPs for each target from many candidates. This approach addresses the main bottleneck to geolocation scalability: minimizing traffic into each target (and also out of each VP) while maintaining accuracy. Using this approach we have currently geolocated about 35% of the allocated, unicast, IPv4 address-space (about 85% of the addresses in the Internet that can be directly geolocated). We visualize our geolocation results on a web-based address-space browser.
机译:以前的基于测量的IP地理位置算法专注于准确性,使用越来越复杂的算法来研究几个目标,这些算法从数十个有利点(VP)进行测量。在本文中,我们将研究如何扩展现有的基于测量的地理位置算法(如最短Ping和CBG)以覆盖整个Internet。我们证明,在许多有利点上,VP与目标的接近度是影响精度的最重要因素。该观察结果表明我们的新算法可以从许多候选对象中为每个目标选择最佳的VP。此方法解决了地理位置可伸缩性的主要瓶颈:在保持准确性的同时,最小化进入每个目标(以及每个VP的流量)的流量。使用这种方法,我们目前已对大约35%的已分配单播IPv4地址空间进行了地理定位(可直接地理定位的Internet中约85%的地址)。我们在基于Web的地址空间浏览器上可视化地理位置结果。

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