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Creation of Image Segmentation Classifiers for Sign Language Processing for Deaf and Dumb

机译:创建用于聋哑人手语处理的图像分割分类器

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Recognition of sign language is an emerging area of research in the domain of gesture recognition. Research has been carried out around the world on sign language recognition, for many sign languages. The basic phase of sign language recognition systems is accurate hand segmentation. This paper used Otsu's technique of segmentation to create an improved vision-based recognition of sign language. There are about 466 million users suffering from hearing loss globally, of whom no. of kids is 34 million. Deaf people have very little or no capacity to hear. For communication, they use sign language. People in distinct areas of the globe use distinct sign languages which is very small in amount compared to spoken languages. Our goal is to create a static-gesture recognizer, a multi-class classifier that predicts the gestures of static sign language. In the proposed work, we identified the hand in the raw image and provided the static gesture recognizer (the multi-class classifier) with this section of the image. We build multi-class classifiers from the scikit learning library by first building the data set, each image being converted into a feature vector (X) and each has a label that matches the sign language alphabet denoted by (Y). Our predicted classifiers analyzed 65% of the said images with clarity.
机译:手语识别是手势识别领域的一个新兴研究领域。全世界已经对许多手语进行了有关手语识别的研究。手语识别系统的基本阶段是准确的手分割。本文使用Otsu的分割技术来创建一种改进的基于视觉的手语识别。全球约有4.66亿用户遭受听力损失,其中没有。的孩子是3400万。聋哑人几乎没有听见的能力。为了交流,他们使用手语。全球不同地区的人们使用不同的手语,与手语相比数量很少。我们的目标是创建一个静态手势识别器,它是一种预测静态手语手势的多类分类器。在拟议的工作中,我们在原始图像中识别了手,并为静态手势识别器(多类分类器)提供了图像的这一部分。首先,通过构建数据集,从scikit学习库中构建多类分类器,每个图像都被转换为特征向量(X),并且每个图像都有一个与(Y)表示的手语字母相匹配的标签。我们的预测分类器清晰地分析了65%的上述图像。

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