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Turkish cuisine: A benchmark dataset with Turkish meals for food recognition

机译:土耳其美食:带土耳其膳食的基准数据集

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Food recognition in still images is a problem that has been recently introduced in computer vision. The benchmark data sets used in training and evaluation of food recognition methods contain sample images of popular foods from the globe. However, when they are examined thoroughly, it can be observed that very few of them are Turkish dishes. In this study, we first carry out a data collection process for Turkish dishes and construct a new dataset named "TurkishFoods-15" containing 500 images in each food class. In addition, we introduce a novel food recognition approach that depends on fine-tuning Google Inception v3 deep neural network model based on transfer learning. For this purpose, our Turkish cuisine dataset was combined with the widely used Food-101 dataset from the literature and the performance analysis of the developed deep learning-based approach is carried out on this combined dataset containing 113 food classes. Our results show that the recognition of Turkish dishes can be achieved with certain success even though it does not have certain difficulties.
机译:在静止图像食品识别是已在计算机视觉最近引入的一个问题。在食品识别方法的训练和评估所用的基准数据集包含来自世界各地受欢迎的食品样本图像。然而,当彻底进行检查它们,可以观察到,很少有人是土耳其菜肴。在这项研究中,我们首先进行的土耳其菜肴的数据收集过程,构建了一个名为“TurkishFoods-15”包含在每个食品类500张新的数据集。此外,我们还推出了基于迁移学习依赖于微调谷歌成立之初V3深层神经网络模型中的新型食品识别方法。为此,我们的土耳其美食数据集与文献中广泛使用的食品-101数据集,并在含有113个食品类此组合数据集进行了发达的深基于学习的方法的性能分析相结合。我们的研究结果表明,土耳其菜肴的识别可以用一定的成功实现,即使它没有一定的困难。

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