Temporally Consistent Snow Cover Estimation from Noisy, Irregularly Sampled Measurements

被引:0
|
作者
Rufenacht, Dominic [1 ]
Brown, Matthew [2 ]
Beutel, Jan [3 ]
Susstrunk, Sabine [1 ]
机构
[1] Ecole Polytech Fed Lausanne, Sch Comp & Commun Sci, Lausanne, Switzerland
[2] Univ Bath, Dept Comp Sci, Bath, Avon, England
[3] ETH, Comp Engn & Networks Lab, Zurich, Switzerland
基金
瑞士国家科学基金会;
关键词
Surface Classification; Gaussian Mixture Models of Color; Markov Random Fields;
D O I
暂无
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
We propose a method for accurate and temporally consistent surface classification in the presence of noisy, irregularly sampled measurements, and apply it to the estimation of snow coverage over time. The input imagery is extremely challenging, with large variations in lighting and weather distorting the measurements. Initial snow cover estimations are obtained using a Gaussian Mixture Model of color. To achieve a temporally consistent snow cover estimation, we use a Markov Random Field that penalizes rapid fluctuations in the snow state, and show that the penalty term needs to be quite large, resulting in slow reactivity to changes. We thus propose a classifier to separate good from uninformative images, which allows to use a smaller penalty term. We show that the incorporation of domain knowledge to discard uninformative images leads to better reactivity to changes in snow coverage as well as more accurate snow cover estimations.
引用
收藏
页码:275 / 283
页数:9
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