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Knowledge-based understanding of engineering drawings.

机译:基于知识的工程图纸理解。

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摘要

A knowledge-based three-phase system to achieve intelligent interpretation and comprehensive understanding of engineering drawings drawn to ANSI drafting standards has been developed for use with the automatic input of paper drawings to CAD/CAM systems and with CAD-based vision systems. Because separating object lines from dimensioning lines is a critical problem in drawing interpretation, the primary objective of this thesis is to develop techniques to identify and separate dimensioning information from object (or physical) line information. A new rule-based text/graphics segmentation algorithm to separate text in horizontal and vertical orientation from graphics, and a model-based arrowhead detection method to detect arrowheads in any orientation, have been developed. Arrowhead tracking and search methods are used to extract leaders, tails, and witness lines from segmented images containing graphics only. Text blocks and feature control frames which are extracted from the segmented images are then associated with their corresponding leaders to obtain complete dimension sets. Detection of dimension sets results in the separation of dimensioning lines from object lines. A two-stage supervised algorithm has been developed to extract section lines, and a dashed-line detection algorithm has been developed to detect centerlines and hidden lines. These methods of extracting object lines result in intelligent interpretation of geometric objects.;The ultimate objective is not only to provide compact vectorized encoding of paper drawings in electronic format, but also to generate intelligent interpretation of geometric objects. Algorithms in this three-phase system, when combined with graphics recognition and 3-D interpretation algorithms, form a complete system for intelligent interpretation of paper-based drawings from 2-D multiple views to 3-D objects.
机译:已经开发了一种基于知识的三相系统,该系统可实现对根据ANSI起草标准绘制的工程图的智能解释和全面理解,以将纸质图自动输入到CAD / CAM系统和基于CAD的视觉系统。由于将对象线与尺寸线分开是图形解释中的关键问题,因此本文的主要目的是开发一种技术,以从对象(或物理)线信息中识别和分离尺寸信息。已经开发了一种新的基于规则的文本/图形分割算法,以将水平和垂直方向的文本与图形分开,以及基于模型的箭头检测方法,可以检测任意方向的箭头。箭头跟踪和搜索方法用于从仅包含图形的分段图像中提取前导线,尾巴和见证线。从分割图像中提取的文本块和特征控制框然后与它们相应的前导关联,以获得完整的尺寸集。尺寸集的检测导致尺寸线与对象线分离。已经开发了一种两阶段的监督算法来提取剖面线,并且已经开发了一种虚线检测算法来检测中心线和隐藏线。这些提取对象线的方法可以对几何对象进行智能解释。最终目的不仅在于提供电子格式的纸质图纸的紧凑矢量化编码,而且还可以生成几何对象的智能解释。将此三相系统中的算法与图形识别和3-D解释算法结合使用,可形成一个完整的系统,用于智能地解释基于纸的图纸,从2-D多视图到3-D对象。

著录项

  • 作者

    Lai, Chan Pyng.;

  • 作者单位

    The Pennsylvania State University.;

  • 授予单位 The Pennsylvania State University.;
  • 学科 Engineering Electronics and Electrical.;Computer Science.
  • 学位 Ph.D.
  • 年度 1993
  • 页码 130 p.
  • 总页数 130
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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