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A 3D Approach for Palm Leaf Character Recognition Using Histogram Computation and Distance Profile Features

机译:使用直方图计算和距离曲线特征的棕榈叶字符识别的3D方法

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Handwritten character recognition has been a well-known area of research for last five decades. This is an important application of pattern recognition in image processing. Generally 2D scanning is used and the text is captured in the form of an image. In this work instead of regular scanning method, the X, Y co-ordinates are measured using measuroscope at every pixel point. Further a 3D feature, depth of indentation, 'Z', which is proportional to the pressure applied by the scriber at that point, is measured using a dial gauge indicator. In the present work the profile based features extracted for palm leaf character recognition are 'histogram' and 'distance' profiles. The recognition accuracy obtained using the Z-dimension, a 3D feature, is very high and the best result obtained is 92.8 % using histogram profile algorithm.
机译:手写字符识别是过去五十年的着名的研究领域。 这是图案识别在图像处理中的重要应用。 通常使用2D扫描,并且文本以图像的形式捕获。 在该工作而不是常规扫描方法中,在每个像素点处使用测量镜测量x,y坐标。 此外,使用拨号仪指示器测量与该点处于该点施加的划线施加的压力成比例的3D特征,“Z”。 在本工作中,针对掌叶字符识别提取的基于配置文件的特征是“直方图”和“距离”配置文件。 使用Z维度,3D特征的识别精度非常高,并且使用直方图简档算法,获得的最佳结果是92.8%。

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