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Integrating LCS and SVM for 3D Handwriting Recognition on Handheld Devices using Accelerometers

机译:使用加速度计将LCS和SVM集成在手持设备上的3D手写识别

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Based on accelerometer, we propose a 3D handwriting recognition system in this paper. The system is consists of 4 main parts: (1) data collection: a single tri-axis accelerometer is mounted on a handheld device to collect different handwriting data. A set of key patterns have to be written using the handheld device several times for consequential processing and training. (2) data preprocessing: time series are mapped into eight octant of three-dimensional Euclidean coordinate system. (3) data training: LCS and SVM are combined to perform the classification task. (4) pattern recognition: using the trained SVM model to carry out the prediction task. To evaluate the performance of our handwriting recognition model, we choose the experiment of recognizing a set of English words. The accuracy of classification could be achieved at about 93%.
机译:基于加速度计,我们提出了本文的3D手写识别系统。系统由4个主要部分组成:(1)数据收集:单个三轴加速度计安装在手持设备上以收集不同的手写数据。必须使用手持设备进行多次编写一组关键图案以进行后续处理和培训。 (2)数据预处理:时间序列映射到三维欧几里德坐标系的八个八个八个章。 (3)数据培训:LCS和SVM组合以执行分类任务。 (4)模式识别:使用培训的SVM模型进行预测任务。为了评估我们的手写识别模型的表现,我们选择识别一组英语单词的实验。分类的准确性可以在约93%的情况下实现。

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