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Automatic multi-resolution spatio-frequency mottle metric (SFMM) for evaluation of macrouniformity.

机译:自动多分辨率时空斑点度量(SFMM),用于评估宏观均匀性。

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摘要

Evaluation of mottle is an area of on-going research in print quality assessment. We propose an unsupervised evaluation technique and a metric that measures mottle in a hard-copy laser print. The proposed algorithm uses a scanned image to quantify the low frequency variation or mottle in what is supposed to be a uniform field. 'Banding' and 'Streaking' effects are explicitly ignored and the proposed algorithm scales the test targets from "Flat print" (Good) to "Noisy print" (Bad) based on mottle only. The evaluation procedure is modeled as feature computation in different combinations of spatial, frequency and wavelet domains.;The model is primarily independent of the nature of the input test target, i.e. whether it is chromatic or achromatic. The algorithm adapts accordingly and provides a mottle metric for any test target. The evaluation process is done using three major modules: (1) Pre-processing Stage, which includes acquisition of the test target and preparing it for processing; (2) Spatio-frequency Parameter Estimation where different features characterizing mottle are calculated in spatial and frequency domains; (3) Invalid Feature Removal Stage, where the invalid or insignificant features (in context to mottle) are eliminated and the dataset is ranked relatively.;The algorithm was demonstrated successfully on a collection of 60 K-Only printed images spread over 2 datasets printed on 3 different faulty printers and 4 different media Also, it was tested on 5 color targets for the color version of the algorithm printed using 2 different printers and 5 different media, provided by Hewlett Packard Company.
机译:斑点的评估是印刷质量评估中正在进行的研究领域。我们提出了无监督评估技术和度量硬拷贝激光打印中斑点的度量。所提出的算法使用扫描图像来量化低频场或杂色,而该​​低频场或杂色被认为是均匀场。明显忽略了“条带化”和“条纹”效应,并且所提出的算法仅基于斑点将测试目标从“平版印刷”(良好)缩放为“嘈杂印刷”(不良)。评估程序以空间,频率和小波域的不同组合中的特征计算为模型;该模型主要独立于输入测试目标的性质,即它是彩色还是无色的。该算法会进行相应调整,并为任何测试目标提供杂色度。评估过程使用三个主要模块完成:(1)预处理阶段,包括获取测试目标并准备进行处理; (2)时空参数估计,其中在空间和频率域中计算表征杂色的不同特征; (3)无效特征去除阶段,其中消除了无效或无关紧要的特征(相对于杂色而言),并且对数据集进行了相对排名。;该算法在分布于2个已打印数据集的6万张仅打印图像的集合上得到了成功演示在3种不同的故障打印机和4种不同的介质上进行了测试。此外,还对5种颜色的目标进行了测试,以测试使用惠普公司提供的2种不同的打印机和5种不同的介质所打印的算法的彩色版本。

著录项

  • 作者

    Khullar, Siddharth.;

  • 作者单位

    Rochester Institute of Technology.;

  • 授予单位 Rochester Institute of Technology.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 M.S.
  • 年度 2010
  • 页码 83 p.
  • 总页数 83
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 公共建筑;
  • 关键词

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