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Image Quality In Image Classification: Design And Construction Of An Image Quality Database

机译:图像分类中的图像质量:图像质量数据库的设计和构建

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摘要

Image quality affects automated classification of images from process camera monitors. The objective of this work was to obtain a database of reference images that could enable automated, customized image quality modification to improve classification of new images. Here, images from an extruder monitor were to be classified as either showing or not showing contaminant particles in a polymer melt. A novel task-based definition of image quality was important to this work: image quality was defined in terms of the probabilities of a particle being present and not being present in the image as assigned by a Bayesian classification model. Image quality was optimized using a Nelder Mead Simplex search. The optimized image was classified using another Bayesian model to demonstrate the improved classification performance. The resulting reference image database consisted of image similarity attributes describing each raw image and the corresponding quality improvement instructions from the optimization. The next step is to use the database to improve the quality and classification of new images.
机译:图像质量会影响来自过程摄像机监视器的图像的自动分类。这项工作的目的是获得参考图像的数据库,该数据库可以实现自动的,自定义的图像质量修改,以改善新图像的分类。在此,将来自挤出机监控器的图像分类为显示或不显示聚合物熔体中的污染物颗粒。一种新颖的基于任务的图像质量定义对于这项工作很重要:图像质量是根据贝叶斯分类模型指定的图像中存在和不存在粒子的概率来定义的。使用Nelder Mead Simplex搜索优化了图像质量。使用另一个贝叶斯模型对优化的图像进行分类,以证明改进的分类性能。生成的参考图像数据库由描述每个原始图像的图像相似性属性和优化中相应的质量改进指令组成。下一步是使用数据库来改善新图像的质量和分类。

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