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NASA NTRS · 19930067651

Clustering methods for removing outliers from vision-based range estimates

Abstract

The present approach to the automation of helicopter low-altitude flight uses one or more passive imaging sensors to extract environmental obstacle information; this is then processed via computer-vision techniques to yield a time-varying map of range to obstacles in the sensor's field of view along the vehicle's flight path. Attention is given to two related techniques which can eliminate outliers from a sparse range map, clustering sparse range-map information into different spatial classes that rely on a segmented and labeled image to aid in spatial classification within the image plane.

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BibTeXRIS

Hussien, B., Suorsa, R.. 1992-01-01. Clustering methods for removing outliers from vision-based range estimates. https://ntrs.nasa.gov/citations/19930067651

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