首页> 外文期刊>Electromagnetic Compatibility, IEEE Transactions on >Comparison of Three-Dimensional Datasets by Using the Generalized n-Dimensional ( n-D) Feature Selective Validation (FSV) Technique
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Comparison of Three-Dimensional Datasets by Using the Generalized n-Dimensional ( n-D) Feature Selective Validation (FSV) Technique

机译:通过使用广义n维(n-D)特征选择验证(FSV)技术比较三维数据集

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摘要

Automatic methods to evaluate the validity of computational electromagnetics computer modeling and simulations have widespread applications. The feature selective validation (FSV) method is a heuristic technique which has been shown to give a broad agreement with a visual assessment for one-dimensional data. As a heuristic technique, extending the dimensionality is an important target for the improvement and development of FSV. One of the major challenges in the development of n-dimensional (n-D) FSV is the difficulty of obtaining visual assessment results, since, the visual comparison of three- and higher dimensional data is difficult or even impossible. This paper formulates the comparison of 3-D data based on an established generalized n -D-FSV approach. The performance of the approach is investigated by means of the Laboratory for Image and Video Engineering Video Quality Database which provides subjective scores of 150 distorted videos. A statistical evaluation of the relative performance of FSV and other publicly available full-reference video quality assessment algorithms is presented. Further, parameter tuning is performed to improve the agreement of 3-D FSV results and subjective scores. The proposed approach is finally applied to the self-referenced validation of an electromagnetic simulation model to identify and locate the continuous variation of electric field within a region of space.
机译:评估计算电磁学计算机建模和仿真有效性的自动方法已得到广泛应用。特征选择验证(FSV)方法是一种启发式技术,已被证明与一维数据的视觉评估具有广泛的一致性。作为一种启发式技术,扩展维数是改进和开发FSV的重要目标。开发n维(n-D)FSV的主要挑战之一是难以获得视觉评估结果,因为对三维数据和高维数据进行视觉比较是困难的,甚至是不可能的。本文基于已建立的广义n -D-FSV方法,对3-D数据进行比较。该方法的性能通过图像和视频工程实验室视频质量数据库进行了调查,该数据库提供了150个失真视频的主观评分。提出了FSV和其他公众可获得的全参考视频质量评估算法的相对性能的统计评估。此外,执行参数调整以提高3-D FSV结果与主观评分的一致性。所提出的方法最终应用于电磁仿真模型的自参考验证,以识别和定位空间区域内电场的连续变化。

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