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タイトルOn the cost of approximating and recognizing a noise perturbed straight line or a quadratic curve segment in the plane
本文(外部サイト)http://hdl.handle.net/2060/19750017570
著者(英)Yalabik, N.; Cooper, D. B.
著者所属(英)Brown Univ.
発行日1975-03-01
言語eng
内容記述Approximation of noisy data in the plane by straight lines or elliptic or single-branch hyperbolic curve segments arises in pattern recognition, data compaction, and other problems. The efficient search for and approximation of data by such curves were examined. Recursive least-squares linear curve-fitting was used, and ellipses and hyperbolas are parameterized as quadratic functions in x and y. The error minimized by the algorithm is interpreted, and central processing unit (CPU) times for estimating parameters for fitting straight lines and quadratic curves were determined and compared. CPU time for data search was also determined for the case of straight line fitting. Quadratic curve fitting is shown to require about six times as much CPU time as does straight line fitting, and curves relating CPU time and fitting error were determined for straight line fitting. Results are derived on early sequential determination of whether or not the underlying curve is a straight line.
NASA分類CYBERNETICS
レポートNO75N25642
NASA-CR-142906
権利No Copyright
URIhttps://repository.exst.jaxa.jp/dspace/handle/a-is/189683


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