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Novel methodology for Kannada Braille to speech translation using image processing on FPGA

机译:在FPGA上使用图像处理的Kannada Braille语音翻译的新方法

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With the introduction and popularization of text to speech convertors, a huge drop in literacy rates is being seen amongst the visually impaired. Also, since Braille is not well known to the masses, communication by the visually impaired with the outside world becomes an arduous task. A lot of research is being carried out in conversion of English text to Braille but not many concentrate on the alternative i.e. conversion of Braille to regional languages. In order to address this issue, in this paper we introduce a novel methodology to convert Braille characters representing the Kannada Language (a popular language of southern part of India), captured by a camera, into Kannada text or speech. An automated thresholding algorithm for segmentation of the Braille dots along with a novel algorithm for identification of the characters has been explained. All algorithms were designed and developed for a Xilinx Spartan 3E FPGA and were executed in real time. An accuracy of over 94% was achieved in Braille segmentation and detection. The algorithm for identification of the Kannada Braille character was found to be four times faster than many existing methodologies, on the FPGA.
机译:随着文本到语音转换器的引入和普及,在视障者中识字率已大大下降。另外,由于盲文不为大众所知,因此视障人士与外界的交流成为一项艰巨的任务。在将英语文本转换为盲文方面进行了大量的研究,但很少有研究专注于替代方法,即将盲文转换为区域语言。为了解决这个问题,在本文中,我们介绍了一种新颖的方法,可以将相机捕获的代表Kannada语言(印度南部的一种流行语言)的盲文字符转换为Kannada文本或语音。已经解释了用于盲文点分割的自动阈值算法以及用于识别字符的新颖算法。所有算法都是为Xilinx Spartan 3E FPGA设计和开发的,并实时执行。盲文分割和检测的准确性超过94%。发现在FPGA上识别卡纳达语盲文字符的算法比许多现有方法要快四倍。

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