文章摘要
王海军,金涛,门克内木乐.BCC-BP算法在RGB值到LAB值色彩空间转换中的应用[J].包装工程,2021,42(15):269-274.
WANG Hai-jun,JIN Tao,MENKE Nei-mu-le.Application of BCC-BP Algorithm in Color Space Conversion from RGB Value to LAB Value[J].Packaging Engineering,2021,42(15):269-274.
BCC-BP算法在RGB值到LAB值色彩空间转换中的应用
Application of BCC-BP Algorithm in Color Space Conversion from RGB Value to LAB Value
投稿时间:2020-12-06  
DOI:10.19554/j.cnki.1001-3563.2021.15.035
中文关键词: 细菌群趋药性算法  BP神经网络  色彩空间
英文关键词: bacterial colony chemotaxis algorithm  BP neural network  color space
基金项目:国家自然科学基金(61741509);内蒙古自治区高等学校科学研究项目(NJZY19260)
作者单位
王海军 鄂尔多斯应用技术学院内蒙古 鄂尔多斯 017000 
金涛 鄂尔多斯应用技术学院内蒙古 鄂尔多斯 017000 
门克内木乐 鄂尔多斯应用技术学院内蒙古 鄂尔多斯 017000 
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中文摘要:
      目的 为了有效克服BP神经网络算法权阈值随机选取造成的模型预测精度不高、结果输出不稳定的问题。方法 提出细菌群趋药性(BCC)算法和BP神经网络算法相结合的BCC-BP神经网络算法,采用BCC算法来选取BP神经网络初始权阈值,克服初始权阈值随机选取带来的问题,并将该算法应用到RGB到LAB色彩空间转换模型中。结果 按照国家普通印刷品的允许误差范围规定在6个标准色差单位以下的要求,在色差小于6的预测区间,基于BCC-BP算法的预测准确率达到81.07%,好于BP,GA-BP和PSO-BP算法,同时对于平均色差ΔE小于6个标准色差单位的要求,BCC-BP算法10次预测结果全部低于6。结论 采用BCC算法辅助BP神经网络进行初始权阈值的选取,可以有效提高BP神经网络模型在色彩空间转换应用中值的输出精度和稳定性。
英文摘要:
      This paper aims to effectively overcome the problem of low prediction accuracy and unstable output caused by the random selection of weight threshold of BP neural network algorithm. The BCC-BP neural network algorithm combining the bacterial colony chemotaxis (BCC) algorithm and BP neural network algorithm was proposed and the algorithm was applied to RGB to LAB color space conversion model. The BCC algorithm was used to select the initial weight threshold of the BP neural network to overcome the problems caused by the random selection of the initial weights and thresholds. According to the requirement that the allowable error range of national ordinary printed matter is below 6 standard chromatic aberration units, the prediction accuracy of BCC-BP algorithm is 81.07% when the chromatic aberration is less than 6, which is better than BP, GA-BP and PSO-BP algorithms. At the same time, the average chromatic aberration ΔE is less than 6 standard chromatic aberration units. The prediction results of BCC-BP algorithm for 10 times are all lower than 6. BCC algorithm is used to assist BP neural network to select the initial weights and thresholds, which can effectively improve the output accuracy and stability of the BP neural network model in the application of color space conversion.
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