Hit-and-Run for Sampling and Planning in Non-Convex Spaces
نویسندگان
چکیده
We propose the Hit-and-Run algorithm for planning and sampling problems in nonconvex spaces. For sampling, we show the first analysis of the Hit-and-Run algorithm in non-convex spaces and show that it mixes fast as long as certain smoothness conditions are satisfied. In particular, our analysis reveals an intriguing connection between fast mixing and the existence of smooth measurepreserving mappings from a convex space to the non-convex space. For planning, we show advantages of Hit-and-Run compared to state-of-the-art planning methods such as Rapidly-Exploring Random Trees.
منابع مشابه
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تاریخ انتشار 2017