2017 IEEE 33rd International Conference on Data Engineering (ICDE) 2017
DOI: 10.1109/icde.2017.85
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Hot or Not? Forecasting Cellular Network Hot Spots Using Sector Performance Indicators

Abstract: Abstract-To manage and maintain large-scale cellular networks, operators need to know which sectors underperform at any given time. For this purpose, they use the so-called hot spot score, which is the result of a combination of multiple network measurements and reflects the instantaneous overall performance of individual sectors. While operators have a good understanding of the current performance of a network and its overall trend, forecasting the performance of each sector over time is a challenging task, a… Show more

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Cited by 6 publications
(2 citation statements)
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“…As mobile Internet access has become a vital resource for a large population, we believe it is imperative to examine potential unfairness or discrimination. While many works are made on large scale mobile network performance analysis (e.g.,, user mobility [12,30], network KPIs and planning [23,36], network performance metrics [9,41], and user Quality-of-Experience [3,31]), the body of literature does not employ the socioeconomic perspective. The literature on digital divide puts much emphasis on the topic.…”
Section: Related Workmentioning
confidence: 99%
“…As mobile Internet access has become a vital resource for a large population, we believe it is imperative to examine potential unfairness or discrimination. While many works are made on large scale mobile network performance analysis (e.g.,, user mobility [12,30], network KPIs and planning [23,36], network performance metrics [9,41], and user Quality-of-Experience [3,31]), the body of literature does not employ the socioeconomic perspective. The literature on digital divide puts much emphasis on the topic.…”
Section: Related Workmentioning
confidence: 99%
“…U-Net, a neural network often used for image segmentation, adopts a U-shaped architecture, with an encoder capturing features and a decoder restoring spatial information. To classify the numerous atomic columns with ultrasmall features, we leverage a hard attention mechanism to enable the deep network to focus on only one pixel of each atomic column (Figure b). This mechanism is incorporated into our model by modifying the loss function, which calculates the loss at every pixel.…”
mentioning
confidence: 99%