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Correspondence analysis applied to textural features recognition

机译:对应分析在纹理特征识别中的应用

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Correspondence analysis (CA) is a powerful data analysis and decision support statistical method which provides information about the relative contribution of the different factors extracted from datasets under analysis. This method is used for dimensionality reduction and clustering interpretation in a wide range of applications. Our contribution highlights one of CA's potential application in the field of texture features extraction and classification in addition to demonstrating its capability of optimizing a nonlinear transformation of the grey level which may cause problems in other methods. A novel decision support image representation is introduced; its functionality is described and it is validated using nondestructive industrial inspection (NDII) and remote sensing satellite imagery. The behaviour of the new system is studied and its optimal parameters for texture recognition and dimensionality reduction are established by using factors analysis.
机译:对应分析(CA)是一种功能强大的数据分析和决策支持统计方法,它提供有关从正在分析的数据集中提取的不同因素的相对贡献的信息。此方法可用于广泛的应用中的降维和聚类解释。我们的贡献突出显示了CA在纹理特征提取和分类领域的潜在应用之一,此外还展示了CA优化灰度级非线性转换的能力,而灰度转换可能会导致其他方法出现问题。介绍了一种新颖的决策支持图像表示方法。描述了其功能,并使用无损工业检查(NDII)和遥感卫星图像对其进行了验证。研究了新系统的行为,并通过因素分析建立了用于纹理识别和降维的最佳参数。

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