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A Food Photography App with Image Recognition for Thai Food

机译:与图象识别的食物摄影app泰国食物

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In this paper, we present a food photography application for smart phones, which can recognise 13 types of Thai food from photos. With this feature, the application can easily help users calculate their calories and make some suggestion, just by keep taking a photo of food they are eating. Our application uses React Native for the front-end, and Python-Flask for the back-end. For image recognition, we design a deep convolutional neural network to learn from our dataset. Moreover, we compare the result of our model with another model adapted from the famous one of Karen Simonyan andAndrew Zisserman called VGG19. We use transfer learning from the pre-trained VGG19, implementing with Keras and Tensorflow. Our result shows that the transfer learning model is better. It give us approximately 82% test accuracy or 18% top-1 error rate. Using top-3 and top-5 scores, The model reports 2.6% top-3 error rate and 1.3% top-5 error rate, which works well in our application.
机译:在本文中,我们为智能手机提供了一种食品摄影应用,可以识别来自照片的13种泰国食物。使用此功能,应用程序可以轻松帮助用户计算其卡路里并进行一些建议,只是通过继续拍摄他们正在吃的食物。我们的应用使用前端的React Native,以及后端的Python-Flask。对于图像识别,我们设计了一个深度卷积神经网络来从我们的数据集中学习。此外,我们将模型的结果与来自着名的Karen Simonyan Andandrew Zisserman称为VGG19的模型。我们使用从预先训练的VGG19的转移学习,使用Keras和Tensorflow实现。我们的结果表明,转移学习模型更好。它给我们大约82%的测试精度或18%的前1个错误率。使用Top-3和Top-5分数,模型报告了2.6%的前3个错误率和1.3%的前5个错误率,在我们的应用中运行良好。

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