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A Complete Scheme of Spatially Categorized Glyph Recognition for the Transliteration of Balinese Palm Leaf Manuscripts

机译:巴厘岛棕榈叶手稿音译的空间分类标志识别的完整方案

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摘要

To open a wider access to the precious content of historical Balinese palm leaf manuscripts, an appropriate system to transliterate the Balinese script to the Roman script is needed. To achieve this goal, a Balinese glyph recognition scheme is very important. This scheme needs to be developed by taking into account the degraded condition of palm leaf manuscripts and the complexity of Balinese script. In this paper, we present a complete scheme of spatially categorized glyph recognition for the transliteration of Balinese palm leaf manuscripts. For this scheme, five different categories of glyph recognizers based on the spatial positions on the manuscript are proposed. These recognizers will be used to verify and to validate the recognition result of the global glyph recognizer. Each glyph recognizer is built based on the combination of some feature extraction methods and it is trained on a single layer neural network. The trained network is initialized by an unsupervised feature learning. The output of the glyph recognition scheme will be sent as the input to the phonological transliteration system. The results are evaluated with the ground truth of transliterated text provided by philologists. Our scheme shows a very promising result for Balinese palm leaf manuscripts transliteration and can be adapted to other type of script.
机译:为了使人们能够更广泛地访问历史悠久的巴厘岛棕榈叶手稿的珍贵内容,需要一个适当的系统来将巴厘岛手稿音译为罗马手稿。为了实现此目标,巴厘岛字形识别方案非常重要。需要考虑到棕榈叶手稿的退化状态和巴厘岛手稿的复杂性来开发该方案。在本文中,我们为巴厘岛棕榈叶手稿的音译提出了一种空间分类的字形识别的完整方案。对于该方案,提出了基于手稿上的空间位置的五个不同类别的字形识别器。这些识别器将用于验证和验证全局字形识别器的识别结果。每个字形识别器都是基于一些特征提取方法的组合而构建的,并在单层神经网络上进行训练。训练后的网络通过无监督的特征学习进行初始化。字形识别方案的输出将作为输入发送到语音音译系统。使用语言学家提供的音译文本的真实性对结果进行评估。我们的方案显示了巴厘岛棕榈叶手稿音译的非常有希望的结果,并且可以适应其他类型的手稿。

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