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Handwritten Digital Detection Based on Tensorflow Building SSD Model

机译:基于Tensorflow Building SSD模型的手写数字检测

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A computer vision recognition model based on real-time detection is built, and relevant tests are made by using the theory of deep learning. The SSD convolution neural network model is built on the Tensorflow platform, and it is used for the recognition and detection of handwritten numerals. The method of making the data set which can be used to convert MNIST into SSD is given, and the training flow is given, and the experimental results are analyzed. After 50000 training, the recognition accuracy reaches 99.19%, and the location accuracy reaches 99.99%, and the recognition effect is good.
机译:建立了基于实时检测的计算机视觉识别模型,并通过使用深度学习理论进行相关测试。 SSD卷积神经网络模型构建在TensorFlow平台上,它用于识别和检测手写数字。给出了制造可用于将MNIST转换为SSD的数据集的方法,并给出训练流,分析了实验结果。经过50000次训练后,识别准确度达到99.19%,位置精度达到99.99%,识别效果好。

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