Camera-based Sudoku recognition with deep belief network

Soft Computing and Pattern Recognition(2014)

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摘要
In this paper, we propose a method to detect and recognize a Sudoku puzzle on images taken from a mobile camera. The lines of the grid are detected with a Hough transform. The grid is then recomposed from the lines. The digits position are extracted from the grid and finally, each character is recognized using a Deep Belief Network (DBN). To test our implementation, we collected and made public a dataset of Sudoku images coming from cell phones. Our method proved successful on our dataset, achieving 87.5% of correct detection on the testing set. Only 0.37% of the cells were incorrectly guessed. The algorithm is capable of handling some alterations of the images, often present on phone-based images, such as distortion, perspective, shadows, illumination gradients or scaling. On average, our solution is able to produce a result from a Sudoku in less than 100ms.
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关键词
Hough transforms,image recognition,image sensors,mobile computing,DBN,Hough transform,Sudoku images,Sudoku puzzle,camera based Sudoku recognition,cell phones,deep belief network,mobile camera,Camera-based OCR,Deep Belief Network,Text Detection,Text Recognition
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