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番茄圖像保紋理降噪的各向異性動(dòng)態(tài)擴(kuò)散模型研究
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國(guó)家自然科學(xué)基金項(xiàng)目(31271618,、41171337)和“十二五”國(guó)家科技支撐計(jì)劃項(xiàng)目(2015BAK04B01)


Anisotropic Dynamic Diffusion Model for Texture Preserving De-noising of Tomato Images
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    摘要:

    針對(duì)番茄圖像進(jìn)行各向異性擴(kuò)散降噪研究。首先在2范數(shù)梯度閾值計(jì)算方法基礎(chǔ)上引入圖像的局部灰度方差,,提出了一種梯度閾值計(jì)算方法。其次采用結(jié)構(gòu)相似性(SSIM)作為迭代停止準(zhǔn)則,,實(shí)現(xiàn)了迭代次數(shù)的自適應(yīng)選取,,構(gòu)建出用于番茄圖像保紋理降噪的各向異性動(dòng)態(tài)擴(kuò)散模型。最后在噪聲標(biāo)準(zhǔn)差為5,、10,、15、20、25,、30不同情況下,,進(jìn)行2組對(duì)比試驗(yàn)。第1組試驗(yàn)結(jié)果表明,,采用SSIM作為迭代停止準(zhǔn)則是有效的,、穩(wěn)定的。第2組試驗(yàn)從峰值信噪比(PSNR)和梯度模值相似性偏差(GMSD)兩方面對(duì)降噪后的圖像質(zhì)量進(jìn)行客觀評(píng)價(jià),,并與P-M模型,、2范數(shù)模型相比較,結(jié)果是所提模型的PSNR平均值最高且GMSD平均值分別降低了15.5%,、19.1%,,說(shuō)明采用所提模型降噪后的番茄圖像降噪效果有所改進(jìn)并且與原始圖像比較接近;從視覺(jué)效果上,,采用結(jié)果是所提模型降噪后的番茄圖像紋理保留較多且清晰,。因此,提出的各向異性動(dòng)態(tài)擴(kuò)散模型在降噪的同時(shí)保留了圖像紋理,,為番茄后期的品質(zhì)檢測(cè)奠定了基礎(chǔ),。

    Abstract:

    Due to interference of external environments and monitoring systems, the acquired images of agricultural products are degraded by noises. The noises affect quality testing of agricultural products. This paper researched the denoising of tomato images based on anisotropic diffusion model. First, by analyzing anisotropic diffusion process of Perona-Malik (P-M) model, a new method of calculating gradient threshold was proposed. It introduced local variances of images to the 2norm method. As a result, the new method distinguished texture details and achieved dynamic selection of gradient thresholds. Second, structural similarity image measurement (SSIM) was selected as the stopping criterion, which made selection of diffusion iterations adaptive. These two steps together formed an anisotropic dynamic diffusion model for texture preserving denoising of tomato images. Finally, two groups of comparison tests were taken under different noise standard deviations of 5, 10, 15, 20, 25, and 30. The first group of comparison test was performed among the SSIM criterion, minimum mean squared error criterion,SNR criterion and decorrelation criterion. Results of the first group showed that using SSIM as iterative stopping criteria was effective and stable. The second group of comparison test was performed among the proposed model, the conventional P-M model, and the 2norm model. From visual effect, images denoised by the proposed model had more and clearer texture details. And objective evaluation of the denoised image quality was achieved by using the peak signal to noise ratio (PSNR) and gradient magnitude similarity deviation (GMSD). Compared with P-M model and 2norm model, average PSNR of images denoised by the proposed model was the highest and average GMSD of images denoised by the proposed model was reduced by 15.5% and 19.1% respectively. It demonstrated images denoised by the proposed model had lower residual noises and greater similarity to original images. In conclusion, the proposed model can remove noises while maintaining texture details, which can contribute to subsequent quality testing of agricultural products.

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李麗,張楠楠,梅樹(shù)立,李曉飛.番茄圖像保紋理降噪的各向異性動(dòng)態(tài)擴(kuò)散模型研究[J].農(nóng)業(yè)機(jī)械學(xué)報(bào),2016,47(11):18-24. Li Li, Zhang Nannan, Mei Shuli, Li Xiaofei. Anisotropic Dynamic Diffusion Model for Texture Preserving De-noising of Tomato Images[J]. Transactions of the Chinese Society for Agricultural Machinery,2016,47(11):18-24.

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  • 收稿日期:2016-03-19
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  • 在線發(fā)布日期: 2016-11-10
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