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Denoising Letter Images from Scanned Invoices Using Stacked Autoencoders 被引量:2
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作者 Samah Ibrahim Alshathri Desiree Juby Vincent V.S.Hari 《Computers, Materials & Continua》 SCIE EI 2022年第4期1371-1386,共16页
Invoice document digitization is crucial for efficient management in industries.The scanned invoice image is often noisy due to various reasons.This affects the OCR(optical character recognition)detection accuracy.In ... Invoice document digitization is crucial for efficient management in industries.The scanned invoice image is often noisy due to various reasons.This affects the OCR(optical character recognition)detection accuracy.In this paper,letter data obtained from images of invoices are denoised using a modified autoencoder based deep learning method.A stacked denoising autoencoder(SDAE)is implemented with two hidden layers each in encoder network and decoder network.In order to capture the most salient features of training samples,a undercomplete autoencoder is designed with non-linear encoder and decoder function.This autoencoder is regularized for denoising application using a combined loss function which considers both mean square error and binary cross entropy.A dataset consisting of 59,119 letter images,which contains both English alphabets(upper and lower case)and numbers(0 to 9)is prepared from many scanned invoices images and windows true type(.ttf)files,are used for training the neural network.Performance is analyzed in terms of Signal to Noise Ratio(SNR),Peak Signal to Noise Ratio(PSNR),Structural Similarity Index(SSIM)and Universal Image Quality Index(UQI)and compared with other filtering techniques like Nonlocal Means filter,Anisotropic diffusion filter,Gaussian filters and Mean filters.Denoising performance of proposed SDAE is compared with existing SDAE with single loss function in terms of SNR and PSNR values.Results show the superior performance of proposed SDAE method. 展开更多
关键词 Stacked denoising autoencoder(SDAE) optical character recognition(OCR) signal to noise ratio(SNR) universal image quality index(Uq1)and structural similarity index(SSIM)
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基于DCT域的自适应图像水印算法 被引量:2
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作者 程颖 张明生 +2 位作者 王林平 郑芳 邓霞 《计算机应用研究》 CSCD 北大核心 2005年第12期147-149,共3页
提出了一种DCT域自适应图像水印算法。嵌入水印的过程中不断地搜索合适的强度因子,根据JPEG亮度量化表来确定中频系数嵌入强度的比例关系,并引入了一个优于PSNR和MSE的方法来评价含水印图像失真。若图像质量不满足所期望接近的失真度,... 提出了一种DCT域自适应图像水印算法。嵌入水印的过程中不断地搜索合适的强度因子,根据JPEG亮度量化表来确定中频系数嵌入强度的比例关系,并引入了一个优于PSNR和MSE的方法来评价含水印图像失真。若图像质量不满足所期望接近的失真度,用二分法不断地调整强度因子的值,以达到水印的最优嵌入,从而水印图像信息分别以不同的强度嵌入到各中频系数中。实验结果表明该水印算法对常见的信号处理具有较好的稳健性。 展开更多
关键词 数字水印 DCT 强度因子 结构化的图像质量评价方法(q)
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