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Pen-chant: Acoustic emissions of handwriting and drawing.

机译:笔声:手写和绘图的声发射。

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摘要

The sounds generated by a writing instrument ('pen-chant') provide a rich and underutilized source of information for pattern recognition. We examine the feasibility of recognition of handwritten cursive text, exclusively through an analysis of acoustic emissions. We design and implement a family of recognizers using a template matching approach, with templates and similarity measures derived variously from: smoothed amplitude signal with fixed resolution, discrete sequence of magnitudes obtained from peaks in the smoothed amplitude signal, and ordered tree obtained from a scale space signal representation. Test results are presented for recognition of isolated lowercase cursive characters and for whole words. We also present qualitative results for recognizing gestures such as circling, scratch-out, check-marks, and hatching. Our first set of results, using samples provided by the author, yield recognition rates of over 70% (alphabet) and 90% (26 words), with a confidence of +/-8%, based solely on acoustic emissions. Our second set of results uses data gathered from nine writers. These results demonstrate that acoustic emissions are a rich source of information, usable---on their own or in conjunction with image-based features---to solve pattern recognition problems. In future work, this approach can be applied to writer identification, handwriting and gesture-based computer input technology, emotion recognition, and temporal analysis of sketches.
机译:书写工具(“笔钟”)产生的声音为模式识别提供了丰富而未充分利用的信息源。我们仅通过声发射分析来检验识别手写草书文本的可行性。我们使用模板匹配方法设计和实现一系列识别器,其中模板和相似性度量的来源多种多样:具有固定分辨率的平滑幅度信号,从平滑幅度信号中的峰值获取的离散幅度序列以及从比例尺获取的有序树空间信号表示。测试结果用于识别孤立的小写草书字符和整个单词。我们还给出了识别手势的定性结果,例如划圈,划痕,复选标记和阴影。我们使用作者提供的样本得出的第一组结果,仅基于声发射,识别率就超过70%(字母)和90%(26个单词),置信度为+/- 8%。我们的第二组结果使用了从九位作者那里收集的数据。这些结果表明,声发射是丰富的信息源,可单独使用或与基于图像的功能结合使用,以解决模式识别问题。在以后的工作中,该方法可以应用于作者识别,基于手写和基于手势的计算机输入技术,情感识别以及草图的时间分析。

著录项

  • 作者

    Seniuk, Andrew G.;

  • 作者单位

    Queen's University (Canada).;

  • 授予单位 Queen's University (Canada).;
  • 学科 Computer Science.;Physics Acoustics.
  • 学位 M.Sc.
  • 年度 2009
  • 页码 94 p.
  • 总页数 94
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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