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Handwriting Analysis based on Histogram of Oriented Gradient for Predicting Personality traits using SVM

机译:基于面向梯度直方图的手写分析,用于使用SVM预测人格性状的

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Handwriting Analysis is a method to understand and predict the characteristic traits of a person based on his handwriting style. Graphology is the scientific term used for handwriting analysis. Professional handwriting examiners, called graphologists, manually study and understand the handwriting of an individual to classify the writers personality. Nevertheless, the manual process of handwriting analysis is time-consuming, costly and depends majorly on the skills of the graphologists. To make this process computerized we extracted several features of handwriting samples and classified the writer into 5 personality traits namely Energetic, Extrovert, Introvert, Sloppy and Optimistic. Histogram of oriented gradient(HOG) extracts the features from the handwriting sample of the writer which serves as an input for the Support Vector Machine model to give output as the personality trait of the person. For this paper, digital handwriting sample data of 50 different users were collected. The proposed system predicts the personality trait of a person with 80% correctness using the Polynomial kernel. In this paper, we propose a computerized method for personality trait prediction based on the users handwriting. Two different methods are applied to the same handwriting sample data to measure and compare the performance of the proposed system.
机译:手写分析是一种理解和预测基于手写风格的人的特征性状的方法。图形是用于手写分析的科学术语。专业的笔迹审查员,称为图形家,手动学习和理解个人的手写,以分类作家人格。然而,手写分析的手动过程是耗时,昂贵的,并且主要取决于图形家的技能。为了使这一过程计算机化我们提取了手写样本的几个特征,并将作者分为5个人格特征,即精力充沛,外向,内向,邋and和乐观。定向梯度(HOG)的直方图提取来自编写器的手写样本的特征,其用作支持向量机模型的输入,以使输出作为人的人格特征。为此,收集了50个不同用户的数字手写样本数据。建议的系统预测使用多项式内核具有80%正确性的人的人格特征。在本文中,我们提出了一种基于用户手写的人格特征预测的计算机化方法。两种不同的方法应用于相同的手写样本数据以测量和比较所提出的系统的性能。

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