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The Javanese Letters Classifier with Mobile Client-Server Architecture and Convolution Neural Network Method

机译:javanese字母对具有移动客户端 - 服务器架构和卷积神经网络方法的分类器

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the rapid development of mobile technologies allows platform devices to perform sophisticated tasks, including character recognition. These identification systems are notable techniques that required high computation cost, in order to achieve acceptable accuracy resulting from diversity in alphabet shape and method of writing, especially for the non-Latin alphabet, e.g., Javanese letter. In addition, numerous studies have attempted to address these issues by employing a Convolution Neural Network (CNN) due to its ability to provide high accuracy in character detection. However, the performance on mobile devices is possibly faced with problems resulting from the limitation of computation resource on the platform that also affect computation cost. This study, therefore, proposes a 2-tier architecture by placing the mobile app as a client that invokes a Javanese letters classifier service, which is based on CNN, and implemented in the web-server through the Application Program Interface (API). The results show that the letter classification was successfully implemented in a mobile platform, with an accuracy rate of 86.68%, utilizing training for 50 epochs, and an average time of 1935 ms.
机译:移动技术的快速发展允许平台设备执行复杂的任务,包括字符识别。这些识别系统是所需的高计算成本的显着技术,以实现由字母形状的多样性和写入方法产生的可接受的精度,特别是对于非拉丁字母,例如爪哇字母。此外,许多研究已经试图通过使用卷积神经网络(CNN)来解决这些问题,因为它能够在角色检测中提供高精度。然而,移动设备上的性能可能面临由于该平台上的计算资源的限制而导致的问题,这也影响计算成本。因此,本研究提出了通过将移动应用程序作为调用爪哇字母的客户端来调用基于CNN的爪哇字母的客户端,并通过应用程序接口(API)在Web服务器中实现的客户端来提出2层的架构。结果表明,该信分类在移动平台中成功实施,精度率为86.68%,利用50时代的培训和1935毫秒的平均时间。

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