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Exhibits Recognition System for Combining Online Services and Offline Services

机译:展示用于结合在线服务和离线服务的识别系统

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In order to achieve a more convenient and accurate digital museum navigation, we have developed a real-time and online-to-offline museum exhibits recognition system using image recognition method based on deep learning. In this paper, the client and server of the system are separated and connected through the HTTP. Firstly, by using the client app in the Android mobile phone, the user can take pictures and upload them to the server. Secondly, the features of the picture are extracted using the deep learning network in the server. With the help of the features, the pictures user uploaded are classified with a well-trained SVM. Finally, the classification results are sent to the client and the detailed exhibition's introduction corresponding to the classification results are shown in the client app. Experimental results demonstrate that the recognition accuracy is close to 100% and the computing time from the image uploading to the exhibit information show is less than 1S. By means of exhibition image recognition algorithm, our implemented exhibits recognition system can combine online detailed exhibition information to the user in the offline exhibition hall so as to achieve better digital navigation.
机译:为了实现更方便和准确的数字博物馆导航,我们开发了一个实时和在线到离线博物馆,使用基于深度学习的图像识别方法展示识别系统。在本文中,系统的客户端和服务器通过HTTP分隔并连接。首先,通过使用Android手机中的客户端应用程序,用户可以拍摄照片并将其上传到服务器。其次,使用服务器中的深度学习网络提取图像的特征。在功能的帮助下,上传的图片用户被培训的SVM分类。最后,将分类结果发送到客户端,并在客户端应用中显示了对应于分类结果的详细展览的介绍。实验结果表明,识别精度接近100%,并且从图像上传到展览信息展的计算时间小于1s。通过展览图像识别算法,我们实现的展品识别系统可以将在线详细展览信息与用户在离线展厅中的用户组合,以实现更好的数字导航。

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