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基于高光谱成像技术的水果损伤检测 被引量:1
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作者 李懂懂 唐晓燕 《工程技术研究》 2020年第3期261-262,共2页
水果在储存和长途运输过程中,具有易损伤、腐烂、变质的性质,且在早期不易被识别。为确保水果品质,文章采用高光谱成像技术对早期水果损伤进行检测。首先提取信噪比高的波段,接着将苹果与背景图像分离,最后分别采用主成分分析算法、波... 水果在储存和长途运输过程中,具有易损伤、腐烂、变质的性质,且在早期不易被识别。为确保水果品质,文章采用高光谱成像技术对早期水果损伤进行检测。首先提取信噪比高的波段,接着将苹果与背景图像分离,最后分别采用主成分分析算法、波段比算法和支持向量机算法对苹果早期损伤进行识检测识别,并对3种检测结果进行比较。实验结果表明,波段比算法检测效果优于主成分分析算法和支持向量机算法,正确检测率高达90%,可以快速有效地检测到苹果损伤。 展开更多
关键词 高光谱成像技术 水果损伤 主成分分算析 波段比 支持向量机
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Dynamic Global-Principal Component Analysis Sparse Representation for Distributed Compressive Video Sampling
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作者 武明虎 陈瑞 +1 位作者 李然 周尚丽 《China Communications》 SCIE CSCD 2013年第5期20-29,共10页
Video reconstruction quality largely depends on the ability of employed sparse domain to adequately represent the underlying video in Distributed Compressed Video Sensing (DCVS). In this paper, we propose a novel dyna... Video reconstruction quality largely depends on the ability of employed sparse domain to adequately represent the underlying video in Distributed Compressed Video Sensing (DCVS). In this paper, we propose a novel dynamic global-Principal Component Analysis (PCA) sparse representation algorithm for video based on the sparse-land model and nonlocal similarity. First, grouping by matching is realized at the decoder from key frames that are previously recovered. Second, we apply PCA to each group (sub-dataset) to compute the principle components from which the sub-dictionary is constructed. Finally, the non-key frames are reconstructed from random measurement data using a Compressed Sensing (CS) reconstruction algorithm with sparse regularization. Experimental results show that our algorithm has a better performance compared with the DCT and K-SVD dictionaries. 展开更多
关键词 distributed video compressive sampling global-PCA sparse representation sparseland model non-local similarity
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