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Image based Indian monument recognition using convoluted neural networks

机译:基于图像的印度纪念碑认可,使用卷积神经网络

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Monument recognition is a challenging problem in the domain of image classification due to huge variations in the architecture of different monuments. Different orientations of the structure play an important role in the recognition of the monuments in their images. The paper proposes an approach for classification of various monuments based on the features of the monument images. The state-of-the-art Deep Convolutional Neural Networks (DCNN) is used for extracting representations. The model is trained on representations of different Indian monuments, obtained from cropped images, which exhibit geographic and cultural diversity. Experiments have been carried out on the manually acquired dataset that is composed of images of different monuments where each monument has images from different angular views. The experiments show the performance of the model when it is trained on representations of cropped images of the various monuments. The overall accuracy achieved is 92.7%, using DCNN, for a total of 100 different monuments that have been considered in the dataset for classification.
机译:由于不同纪念碑结构的巨大变化,纪念碑认可是图像分类领域的一个具有挑战性的问题。结构的不同方向在识别图像中的纪念碑方面发挥着重要作用。本文提出了一种基于纪念碑图像的特征对各种古迹分类的方法。最先进的深卷积神经网络(DCNN)用于提取表示。该模型培训了从裁剪图像获得的不同印度纪念碑的代表,展示地理和文化多样性。在手动获取的数据集上进行了实验,该数据集由不同纪念碑的图像组成,其中每个纪念碑具有来自不同角度视图的图像。实验显示了模型的性能,何时培训各种纪念碑的裁剪图像的表示。使用DCNN实现的总体精度为92.7 %,总共100个不同的纪念碑,这些古迹已在数据集中考虑进行分类。

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