広角中心窩センサのための偏心補償器(機械力学,計測,自動制御)
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概要
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This paper aims at acquiring robust feature for rotation-, scale-, and translation-invariant image matching from a space-variant image by a fovea sensor. A proposed model of eccentric compensator corrects deformation in a log-polar image when the fovea sensor is not centered at a target image, that is, eccentricity exists. An image simulator in discrete space implements this model by its geometrical formulation. This paper also proposes Unreliable Feature Omission (UFO) using Discrete Wavelet Transform. UFO reduces local high frequency noise appeared in the space-variant image when the eccentricity changes. It discards coefficients when they are regarded as unreliable, based on digitized errors of the input image by the fovea sensor. The first simulation estimates the compensator by comparing with other polar images. This result shows the compensator works well and its root mean square error (RMSE) changes only by up to 2.54 [%], in condition of the eccentricity within 34.08 [°]. The second simulation shows UFO works well for the log-polar image remapped by the eccentricity compensator, when white Gaussian noise (WGN) is added. The result by Daubechies (7, 9) biorthogonal wavelet shows UFO reduces the RMSE by up to 0.40 [%] even if the WGN is not added, when the eccentricity is within 34.08 [°].
- 2007-09-25
著者
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清水 創太
九州工業大学情報工学部
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BURDICK Joel
Califormia Institute of Technology, Department of Bioengineering
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清水 創太
California Institute of Technology, Division of Biology
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Burdick Joel
Califormia Institute Of Technology Department Of Bioengineering
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Burdick Joel
California Institute Of Technology Department Of Bioengineering
関連論文
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- 車載カメラ運動時における Foveation の効果 : オプティカルフロー一様化モデルの構築
- 広角中心窩センサのための偏心補償器(機械力学,計測,自動制御)
- 多目的利用を考慮した広角中心窩画像モデル(機械力学,計測,自動制御)