Article(id=1304388055964607332, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304388049975137100, articleNumber=null, orderNo=null, doi=10.7501/j.issn.0253-2670.2026.11.009, pmid=null, cstr=null, oa=null, hot=0, price=null, onlineType=0, articleFormat=0, articleType=null, articleTypeStr=null, receivedDate=1767024000000, receivedDateStr=2025-12-30, revisedDate=null, revisedDateStr=null, acceptedDate=null, acceptedDateStr=null, onlineDate=1788919946899, onlineDateStr=2026-09-09, pubDate=null, pubDateStr=null, doiRegisterDate=null, doiRegisterDateStr=null, onlineIssueDate=1788919946899, onlineIssueDateStr=2026-09-09, onlineJustAcceptDate=null, onlineJustAcceptDateStr=null, onlineFirstDate=null, onlineFirstDateStr=null, sourceXml=null, magXml=null, createTime=1788919946899, creator=13701087609, updateTime=1788919946899, updator=13701087609, issue=Issue{id=1304388049975137100, tenantId=1146029695717560320, journalId=1302319053441957962, year='2026', volume='57', issue='11', pageStart='4089', pageEnd='4508', issueExtLink='null', onlineDate='null', pubDate='1781193600000', pubDateStr='2026-06-12', beforeIssueId=null, nextIssueId=null, price=null, status=1, issueComplete=1, articleOrder=1, issueType=-1, specialIssue=null, createTime=1788919945471, creator='13701087609', updateTime=1788923432386, updator='13701087609', preIssue=null, nextIssue=null, articleTotal=null, ext={EN=IssueExt(id=1304402675202805770, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304388049975137100, language=EN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=), CN=IssueExt(id=1304402675207000075, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304388049975137100, language=CN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=)}, issueFiles=null, downloadFileDto=null}, startPage=4172, endPage=4182, ext={EN=ArticleExt(id=1304388056706999142, articleId=1304388055964607332, tenantId=1146029695717560320, journalId=1302319053441957962, language=EN, title=Data-driven golden batch identification and intelligent optimization for Lonicerae Japonicae Flos concentration process of Reduning Injection, columnId=null, journalTitle=Chinese Traditional and Herbal Drugs, columnName=null, runingTitle=null, highlight=null, articleAbstract=Objective This study focuses on the Jinyinhua (Lonicerae Japonicae Flos , LJF) concentration process in the production of Reduning Injection (热毒宁注射液, RI), with the objective of developing and validating a data-driven technical framework. The framework is designed to enable objective evaluation, intelligent identification, and process optimization of “golden batches”, while fundamentally elucidating the key process mechanisms and quantitative control strategies influencing their formation. Ultimately, this approach aims to enhance the efficiency and stability of the production process. Methods This study collected production process data for 170 batches of LJF concentrate, and innovatively established “comprehensive concentration efficiency ratio” (E ) as an evaluation index for process performance. A latent-space guided adaptive performance thresholding (LGAPT) strategy was employed to objectively classify the production batches into golden and non-golden categories. Subsequently, a classification prediction model based on extreme gradient boosting (XGBoost) was constructed. By integrating model explanation techniques such as SHAP (Shapley additive explanations) and partial dependence plots (PDP), the key process features affecting batch quality and their optimal control ranges were systematically investigated. Finally, the model findings were statistically verified through non-parametric tests, effect size analysis, and kernel density estimation. Results The study established a threshold of E = 0.136 3 kg/(m3 ∙min), classifying the 170 batches into 61 golden and 109 non-golden batches. The XGBoost model demonstrated excellent performance in identifying golden batches, achieving an F1-score of 0.84 on the test set. Model interpretation identified features such as LT_std-2, LT_skew-1, and T3_abd-2 as core determinants for golden batch formation and defined their optimal ranges. The statistical validation results were highly consistent with the model interpretations, confirming the reliability of the findings. Conclusion This study established a comprehensive technical framework encompassing performance quantification, intelligent classification, and model-based optimization. By successfully identifying the key process features and their optimal control ranges, this work lays a methodological foundation for the standardization and intelligent control of traditional Chinese medicine (TCM) manufacturing, driving a paradigm shift in process optimization from an empirical-based to a data-driven approach., authors=TONG Feng, XU Fangfang, YAN Yilun, LIU Hengxu, QIAN Yating, SONG Qiuyue, ZHANG Chenfeng, WANG Zhenzhong, ZHANG Xin, authorsList=TONG Feng, XU Fangfang, YAN Yilun, LIU Hengxu, QIAN Yating, SONG Qiuyue, ZHANG Chenfeng, WANG Zhenzhong, ZHANG Xin, authorCompany=null, correspAuthors=null, authorNote=null, correspAuthorsNote=null, copyrightStatement=null, copyrightOwner=null, extLink=null, articleAbsUrl=null, sourceXml=null, magXml=null, pdfUrl=null, pdf=null, pdfFileSize=null, pdfExtLink=null, richHtmlUrl=null, mobilePdfUrl=null, reviewReport=null, pdfFirstPage=null, abstractGraph=null, abstractGraphContent=null, abstractVideo=null, citation=null, cebUrl=null, magXmlContent=null, mapNumber=null, fund=null), CN=ArticleExt(id=1304388056597947237, articleId=1304388055964607332, tenantId=1146029695717560320, journalId=1302319053441957962, language=CN, title=数据驱动的热毒宁注射液金银花浓缩工序黄金批次识别与优化研究, columnId=1304140189132149234, journalTitle=中草药, columnName=药剂与工艺, runingTitle=null, highlight=null, articleAbstract=目的 聚焦于热毒宁注射液(Reduning Injection,RI)金银花浓缩工序,旨在开发并验证一套数据驱动的技术框架,以实现对“黄金批次”的客观评价、智能识别与工艺优化,并从根本上揭示影响“黄金批次”形成的关键工艺机制与量化控制策略,以期提升生产过程的效率与稳定性。方法 收集了170批金银花浓缩工序生产工艺数据,创新性地构建了“综合浓缩效能比”(E )作为工艺性能评价指标。采用一种潜空间引导的效能阈值自适应划分策略(latent-space guided adaptive performance thresholding,LGAPT),客观地将生产批次划分为黄金批次与非黄金批次。随后,构建了基于极限梯度提升决策树算法(extreme gradient boosting,XGBoost)的分类预测模型,并结合SHAP(Shapley加性解释)与部分依赖图(partial dependence plots,PDP)等模型解释技术,深入挖掘影响批次质量的关键工艺特征及其最优调控区间。最后通过非参数检验、效应量分析及核密度估计对模型发现进行统计学验证。结果 确定黄金批次的E 分界阈值为0.136 3 kg/(m³∙min),据此将170批数据划分为61个黄金批次和109个非黄金批次;XGBoost模型在识别黄金批次方面表现优异(测试集的F1分数为0.84);模型解释分析识别出LT_std-2、LT_skew-1和T3_abd-2等是影响黄金批次形成的核心特征,并明确了其优化区间。统计验证结果与模型解释高度一致,证实了该结论的可靠性。结论 建立了一套从性能量化、智能划分到模型寻优的完整技术框架,成功识别了影响金银花浓缩工序质量的关键特征及其控制范围;该框架为中药生产过程的标准化与智能化控制提供了有力的理论依据,推动了从“经验判断”到“数据驱动”的工艺优化模式转变。, authors=童枫1,2 , 徐芳芳1,2 , 闫逸伦1,2 , 刘恒旭1,2 , 钱雅婷1,2 , 宋秋月1,2 , 章晨峰3,2 , 王振中1,2 , 张欣1,3 , authorsList=童枫, 徐芳芳, 闫逸伦, 刘恒旭, 钱雅婷, 宋秋月, 章晨峰, 王振中, 张欣, authorCompany=1 中药制药过程控制与智能制造技术全国重点实验室, 江苏 连云港 222001; 2 江苏康缘药业股份有限公司, 江苏 连云港 222001; 3 江苏省海洋药物和现代中药创制重点实验室, 江苏 连云港 222001, correspAuthors=徐芳芳, authorNote=童枫: 童枫,男,硕士,研究方向为中药制药过程新技术。E-mail:tongfeng5324@126.com, correspAuthorsNote=null, copyrightStatement=null, copyrightOwner=null, extLink=null, articleAbsUrl=null, sourceXml=null, magXml=null, pdfUrl=null, pdf=MEalW3/xZF9BWab/vZQIOA==, pdfFileSize=1458746, pdfExtLink=null, richHtmlUrl=null, mobilePdfUrl=null, reviewReport=null, pdfFirstPage=null, abstractGraph=null, abstractGraphContent=null, abstractVideo=null, 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(2025-02-07) [2025-02-08]. https://www.miit.gov.cn/jgsj/zbys/gzdt/art/2025/art_4341c71b91d64262b7d205be011c7992.html. 谭琳, 万鑫浩, 王学成, 等. 新质生产力视角下的中药绿色数字化制造实现路径研究[J]. 中草药, 2025, 56(5): 1782-1792. 余俭. 抗菌抗病毒新药: 热毒宁注射液[J]. 中南药学, 2010, 8(7): 548-550. 童枫, 徐芳芳, 闫逸伦, 等. 热毒宁注射液金银花和青蒿(金青)萃取过程中固形物含量近红外光谱在线监测模型的建立及萃取终点判断研究[J]. 中草药, 2024, 55(19): 6555-6565. Tu Y J, Li L N, Wang Z T, et al. Advances in analytical techniques and quality control of traditional Chinese medicine injections [J]. J Pharm Biomed Anal, 2021, 206: 114353. Redchuk A, Walas Mateo F. Industry 5.0 and digital twins in the chemical industry: An approach to the golden batch concept [J]. Chem Engineering, 2025, 9(4): 78. 赵雅兰. 非高斯批次过程控制及性能评价研究[D]. 太原: 太原理工大学, 2019. Bush X, Fratz-Berilla E J, Kohnhorst C L, et al. Defining golden batches in biomanufacturing processes from internal metabolic activity to detect process changes that may affect product quality [J]. Biotechnol Bioeng, 2025, 122(2): 298-305. 黄一躬. 数据驱动的高强钢高速干铣表面粗糙度预测与工艺参数优化[D]. 重庆: 重庆大学, 2023. 蒋锦. 三维荧光光谱结合机器学习实现黑茶品牌及工艺参数区分[D]. 长沙: 中南大学, 2023. 陈俊佟. t-SNE结合支持向量机的降维分类研究[D]. 大连: 大连理工大学, 2021. 朱卫坪, 陈晓峰, 张萍, 等. 基于t-SNE降维与k-means聚类算法的化工厂节能减排分析[J]. 自动化应用, 2022, 63(1): 10-13. 南淑荷, 李进军, 魏佳芳, 等. 基于XGBoost-SHAP模型的流域水质指标对DO的驱动与协同影响分析[J]. 水电能源科学, 2025, 43(7): 52-56. 刘文新, 徐文辉, 陈朝晔, 等. 基于RFECV-XGBoost和SHAP的火电厂电力输灰预测模型[J]. 计算机与现代化, 2025(4): 63-69. 常家康, 吕宁, 詹跃东. 基于XGBoost-RFECV算法和LSTM神经网络的PEMFC剩余寿命预测[J]. 电子测量与仪器学报, 2022, 36(1): 126-133. 袁溢, 潘从元, 章新宇, 等. 基于SHAP可解释性分析与多特征融合的焦粉水分识别模型[J]. 中国冶金, 2025, 35(7): 189-201. 王鹏新, 王颖, 田惠仁, 等. 基于LightGBM的冬小麦产量估测与可解释性研究[J]. 农业机械学报, 2023, 54(12): 197-206. 于昆. 基于Mann-Whitney算法的非参数控制图[D]. 天津: 天津大学, 2009. 方杰, 温忠麟. 基于两水平回归模型的调节效应分析及其效应量[J]. 心理科学进展, 2022, 30(5): 1183-1190. 杨瑞君, 张楚, 杨评, 等. 非参数核密度估计模型预测双酚A的物种敏感度分布规律[J]. 生态毒理学报, 2024, 19(4): 120-130.)
中草药
|药剂与工艺
2026
, 57
(11) :
4172
-4182
数据驱动的热毒宁注射液金银花浓缩工序黄金批次识别与优化研究
全屏
童枫1,2 , 徐芳芳1,2 , 闫逸伦1,2 , 刘恒旭1,2 , 钱雅婷1,2 , 宋秋月1,2 , 章晨峰3,2 , 王振中1,2 , 张欣1,3
作者信息
1 中药制药过程控制与智能制造技术全国重点实验室, 江苏 连云港 222001; 2 江苏康缘药业股份有限公司, 江苏 连云港 222001; 3 江苏省海洋药物和现代中药创制重点实验室, 江苏 连云港 222001
通讯作者:
徐芳芳
作者简介:
童枫: 童枫,男,硕士,研究方向为中药制药过程新技术。E-mail:tongfeng5324@126.com
Data-driven golden batch identification and intelligent optimization for Lonicerae Japonicae Flos concentration process of Reduning Injection
TONG Feng, XU Fangfang, YAN Yilun, LIU Hengxu, QIAN Yating, SONG Qiuyue, ZHANG Chenfeng, WANG Zhenzhong, ZHANG Xin
Affiliations
doi: 10.7501/j.issn.0253-2670.2026.11.009
文章导航
目的 聚焦于热毒宁注射液(Reduning Injection,RI)金银花浓缩工序,旨在开发并验证一套数据驱动的技术框架,以实现对“黄金批次”的客观评价、智能识别与工艺优化,并从根本上揭示影响“黄金批次”形成的关键工艺机制与量化控制策略,以期提升生产过程的效率与稳定性。方法 收集了170批金银花浓缩工序生产工艺数据,创新性地构建了“综合浓缩效能比”(E )作为工艺性能评价指标。采用一种潜空间引导的效能阈值自适应划分策略(latent-space guided adaptive performance thresholding,LGAPT),客观地将生产批次划分为黄金批次与非黄金批次。随后,构建了基于极限梯度提升决策树算法(extreme gradient boosting,XGBoost)的分类预测模型,并结合SHAP(Shapley加性解释)与部分依赖图(partial dependence plots,PDP)等模型解释技术,深入挖掘影响批次质量的关键工艺特征及其最优调控区间。最后通过非参数检验、效应量分析及核密度估计对模型发现进行统计学验证。结果 确定黄金批次的E 分界阈值为0.136 3 kg/(m³∙min),据此将170批数据划分为61个黄金批次和109个非黄金批次;XGBoost模型在识别黄金批次方面表现优异(测试集的F1分数为0.84);模型解释分析识别出LT_std-2、LT_skew-1和T3_abd-2等是影响黄金批次形成的核心特征,并明确了其优化区间。统计验证结果与模型解释高度一致,证实了该结论的可靠性。结论 建立了一套从性能量化、智能划分到模型寻优的完整技术框架,成功识别了影响金银花浓缩工序质量的关键特征及其控制范围;该框架为中药生产过程的标准化与智能化控制提供了有力的理论依据,推动了从“经验判断”到“数据驱动”的工艺优化模式转变。
热毒宁注射液
/
金银花
/
浓缩
/
数据驱动
/
黄金批次
/
模型解释
/
智能识别
/
综合浓缩效能比
Objective This study focuses on the Jinyinhua (Lonicerae Japonicae Flos , LJF) concentration process in the production of Reduning Injection (热毒宁注射液, RI), with the objective of developing and validating a data-driven technical framework. The framework is designed to enable objective evaluation, intelligent identification, and process optimization of “golden batches”, while fundamentally elucidating the key process mechanisms and quantitative control strategies influencing their formation. Ultimately, this approach aims to enhance the efficiency and stability of the production process. Methods This study collected production process data for 170 batches of LJF concentrate, and innovatively established “comprehensive concentration efficiency ratio” (E ) as an evaluation index for process performance. A latent-space guided adaptive performance thresholding (LGAPT) strategy was employed to objectively classify the production batches into golden and non-golden categories. Subsequently, a classification prediction model based on extreme gradient boosting (XGBoost) was constructed. By integrating model explanation techniques such as SHAP (Shapley additive explanations) and partial dependence plots (PDP), the key process features affecting batch quality and their optimal control ranges were systematically investigated. Finally, the model findings were statistically verified through non-parametric tests, effect size analysis, and kernel density estimation. Results The study established a threshold of E = 0.136 3 kg/(m3 ∙min), classifying the 170 batches into 61 golden and 109 non-golden batches. The XGBoost model demonstrated excellent performance in identifying golden batches, achieving an F1-score of 0.84 on the test set. Model interpretation identified features such as LT_std-2, LT_skew-1, and T3_abd-2 as core determinants for golden batch formation and defined their optimal ranges. The statistical validation results were highly consistent with the model interpretations, confirming the reliability of the findings. Conclusion This study established a comprehensive technical framework encompassing performance quantification, intelligent classification, and model-based optimization. By successfully identifying the key process features and their optimal control ranges, this work lays a methodological foundation for the standardization and intelligent control of traditional Chinese medicine (TCM) manufacturing, driving a paradigm shift in process optimization from an empirical-based to a data-driven approach.
Reduning Injection
/
Lonicerae Japonicae Flos
/
concentration
/
data-driven
/
gold batch
/
model interpretation
/
intelligent recognition
/
comprehensive concentration efficiency ratio
童枫, 徐芳芳, 闫逸伦, 刘恒旭, 钱雅婷, 宋秋月, 章晨峰, 王振中, 张欣.
数据驱动的热毒宁注射液金银花浓缩工序黄金批次识别与优化研究.
中草药,
2026
, 57
(11)
: 4172
-4182
.
DOI: 10.7501/j.issn.0253-2670.2026.11.009
TONG Feng, XU Fangfang, YAN Yilun, LIU Hengxu, QIAN Yating, SONG Qiuyue, ZHANG Chenfeng, WANG Zhenzhong, ZHANG Xin.
Data-driven golden batch identification and intelligent optimization for Lonicerae Japonicae Flos concentration process of Reduning Injection[J].
Chinese Traditional and Herbal Drugs ,
2026
, 57
(11)
: 4172
-4182
.
DOI: 10.7501/j.issn.0253-2670.2026.11.009
参考文献
引证文献
中华人民共和国工业和信息化部. 智能工厂梯度培育行动取得初步成效[EB/OL]. (2025-02-07) [2025-02-08]. https://www.miit.gov.cn/jgsj/zbys/gzdt/art/2025/art_4341c71b91d64262b7d205be011c7992.html. 谭琳, 万鑫浩, 王学成, 等. 新质生产力视角下的中药绿色数字化制造实现路径研究[J]. 中草药, 2025, 56(5): 1782-1792. 余俭. 抗菌抗病毒新药: 热毒宁注射液[J]. 中南药学, 2010, 8(7): 548-550. 童枫, 徐芳芳, 闫逸伦, 等. 热毒宁注射液金银花和青蒿(金青)萃取过程中固形物含量近红外光谱在线监测模型的建立及萃取终点判断研究[J]. 中草药, 2024, 55(19): 6555-6565. Tu Y J, Li L N, Wang Z T, et al. Advances in analytical techniques and quality control of traditional Chinese medicine injections [J]. J Pharm Biomed Anal, 2021, 206: 114353. Redchuk A, Walas Mateo F. Industry 5.0 and digital twins in the chemical industry: An approach to the golden batch concept [J]. Chem Engineering, 2025, 9(4): 78. 赵雅兰. 非高斯批次过程控制及性能评价研究[D]. 太原: 太原理工大学, 2019. Bush X, Fratz-Berilla E J, Kohnhorst C L, et al. Defining golden batches in biomanufacturing processes from internal metabolic activity to detect process changes that may affect product quality [J]. Biotechnol Bioeng, 2025, 122(2): 298-305. 黄一躬. 数据驱动的高强钢高速干铣表面粗糙度预测与工艺参数优化[D]. 重庆: 重庆大学, 2023. 蒋锦. 三维荧光光谱结合机器学习实现黑茶品牌及工艺参数区分[D]. 长沙: 中南大学, 2023. 陈俊佟. t-SNE结合支持向量机的降维分类研究[D]. 大连: 大连理工大学, 2021. 朱卫坪, 陈晓峰, 张萍, 等. 基于t-SNE降维与k-means聚类算法的化工厂节能减排分析[J]. 自动化应用, 2022, 63(1): 10-13. 南淑荷, 李进军, 魏佳芳, 等. 基于XGBoost-SHAP模型的流域水质指标对DO的驱动与协同影响分析[J]. 水电能源科学, 2025, 43(7): 52-56. 刘文新, 徐文辉, 陈朝晔, 等. 基于RFECV-XGBoost和SHAP的火电厂电力输灰预测模型[J]. 计算机与现代化, 2025(4): 63-69. 常家康, 吕宁, 詹跃东. 基于XGBoost-RFECV算法和LSTM神经网络的PEMFC剩余寿命预测[J]. 电子测量与仪器学报, 2022, 36(1): 126-133. 袁溢, 潘从元, 章新宇, 等. 基于SHAP可解释性分析与多特征融合的焦粉水分识别模型[J]. 中国冶金, 2025, 35(7): 189-201. 王鹏新, 王颖, 田惠仁, 等. 基于LightGBM的冬小麦产量估测与可解释性研究[J]. 农业机械学报, 2023, 54(12): 197-206. 于昆. 基于Mann-Whitney算法的非参数控制图[D]. 天津: 天津大学, 2009. 方杰, 温忠麟. 基于两水平回归模型的调节效应分析及其效应量[J]. 心理科学进展, 2022, 30(5): 1183-1190. 杨瑞君, 张楚, 杨评, 等. 非参数核密度估计模型预测双酚A的物种敏感度分布规律[J]. 生态毒理学报, 2024, 19(4): 120-130.
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doi: 10.7501/j.issn.0253-2670.2026.11.009
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2种不同金属材料的力学参数
科 Family 属数 Number of genus 种数 Number of species 占总种数比例 Percentage of total species (%) 属 Genus 种数 Number of species 占总种数比例 Percentage of total species (%) 鹅膏菌科Amanitaceae 2 11 5.26 鹅膏菌属 Amanita 10 4.78 小菇科 Mycenaceae 2 12 5.74 丝盖伞属 Inocybe 5 2.39 多孔菌科 Polyporaceae 8 14 6.70 蜡蘑属 Laccaria 5 2.39 红菇科 Russulaceae 3 23 11.00 小皮伞属 Marasmius 6 2.87 小菇属 Mycena 11 5.26 光柄菇属 Pluteus 5 2.39 红菇属 Russula 17 8.13 栓菌属 Trametes 5 2.39
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