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Application research of SSA-RF model in predicting the height of water-conducting fracture zone in deep and thick coal seams
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作者 Li Wang Jiming Zhu Zhongchang Wang 《Artificial Intelligence in Geosciences》 2025年第2期250-262,共13页
The 91 measured values of the development height of the water-conducting fracture zone(WCFZ)in deep and thick coal seam mining faces under thick loose layer conditions were collected.Five key characteristic variables ... The 91 measured values of the development height of the water-conducting fracture zone(WCFZ)in deep and thick coal seam mining faces under thick loose layer conditions were collected.Five key characteristic variables influencing the WCFZ height were identified.After removing outliers from the dataset,a Random Forest(RF)regression model optimized by the Sparrow Search Algorithm(SSA)was constructed.The hyperparameters of the RF model were iteratively optimized by minimizing the Out-of-Bag(OOB)error,resulting in the rapid deter-mination of optimal parameters.Specifically,the SSA-RF model achieved an OOB error of 0.148,with 20 de-cision trees,a maximum depth of 8,a minimum split sample size of 2,and a minimum leaf node sample size of 1.Cross-validation experiments were performed using the trained optimal model and compared against other prediction methods.The results showed that the mining height had the most significant correlation with the development height of the WCFZ.The SSA-RF model outperformed all other models,with R2 values exceeding 0.9 across the training,validation,and test datasets.Compared to other models,the SSA-RF model demonstrates a simpler structure,stronger fitting capacity,higher predictive accuracy,and superior stability and generaliza-tion ability.It also exhibits the smallest variation in relative error across datasets,indicating excellent adapt-ability to different data conditions.Furthermore,a numerical model was developed using the hydrogeological data from the 1305 working face at Wanfukou Coal Mine,Shandong Province,China,to simulate the dynamic development of the WCFZ during mining.The SSA-RF model predicted the WCFZ height to be 69.7 m,closely aligning with the PFC2D simulation result of 65 m,with an error of less than 5%.Compared to traditional methods and numerical simulations,the SSA-RF model provides more accurate predictions,showing only a 7.23% deviation from the PFC2D simulation,while traditional empirical formulas yield deviations as large as 19.97%.These results demonstrate the SSA-RF model’s superior predictive capability,reinforcing its reliability and engineering applicability for real-world mining operations.This model holds significant potential for enhancing mining safety and optimizing planning processes,offering a more accurate and efficient approach for WCFZ height prediction. 展开更多
关键词 Deep and thick coal seams Water-conducting fracture zone Out-of-bag error Hyperparameter optimization CS-RF prediction model Cross-validation violin plot
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四倍体桦树树皮中三萜化合物的测定与评价 被引量:9
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作者 王遂 赵慧 +1 位作者 杨传平 姜静 《北京林业大学学报》 CAS CSCD 北大核心 2015年第9期53-61,共9页
白桦脂酸、齐墩果酸和白桦脂醇是桦树树皮中含量较高的3种三萜类化合物,具有重要的药用价值。本实验以超声波辅助提取法提取桦树树皮中的三萜化合物,并利用高效液相色谱法分离检测3种三萜化合物,进而构建小提琴图和星相图等研究2种四倍... 白桦脂酸、齐墩果酸和白桦脂醇是桦树树皮中含量较高的3种三萜类化合物,具有重要的药用价值。本实验以超声波辅助提取法提取桦树树皮中的三萜化合物,并利用高效液相色谱法分离检测3种三萜化合物,进而构建小提琴图和星相图等研究2种四倍体桦树树皮中3种三萜化合物的含量差异,并通过因子分析法,筛选出综合性状优良的四倍体桦树单株。结果表明:三萜化合物分离、检测的色谱条件为以十八烷基硅烷键合硅胶为填充剂的C18色谱柱(4.6 mm×250 mm×5μm),以乙腈-水(含0.1%磷酸)为流动相,梯度洗脱,柱温30℃,流速0.5 m L/min,检测波长为195 nm;在0.05的显著性水平下,2种四倍体桦树树皮中齐墩果酸的含量存在显著差异,在0.10的显著性水平下,2种四倍体桦树树皮中白桦脂酸和白桦脂醇的含量存在显著差异,其中杂种白桦中3种三萜化合物含量普遍高于白桦;3种三萜化合物间存在极显著的正相关关系,其中白桦脂酸和白桦脂醇间的相关系数最高,为0.911,而白桦脂醇和齐墩果酸间的相关系数最低,为0.631;利用因子分析法构建了F=48.620%F1+21.080%F2+21.075%F3桦树三萜综合评价公式,并筛选出了综合性状相对优良的桦树单株,其中白桦中综合得分最高的前3个单株依次为4126、4123、4125,杂种白桦中得分最高的前3个单株依次为4202、4204、4208。 展开更多
关键词 桦树 四倍体 白桦脂酸 齐墩果酸 白桦脂醇 小提琴图 星相图 因子分析法
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基于审查效率的高收益专利审查周期影响因素研究 被引量:4
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作者 黄宗琪 乔永忠 《科研管理》 CSSCI CSCD 北大核心 2023年第3期133-141,共9页
研究高收益专利审查周期影响因素对提升专利审查效率非常重要。以1993—1999年期间中国授权的维持届满专利为样本,采用Violin Plot和Cox回归模型,分阶段研究高收益专利审查周期的影响因素发现:初步审查周期与申请人国别显著相关;实质审... 研究高收益专利审查周期影响因素对提升专利审查效率非常重要。以1993—1999年期间中国授权的维持届满专利为样本,采用Violin Plot和Cox回归模型,分阶段研究高收益专利审查周期的影响因素发现:初步审查周期与申请人国别显著相关;实质审查周期与申请年份、技术领域、申请人国别、IPC分类数、优先权国家文本数、权利要求数、发明人数和专利被引数显著相关,其中IPC分类数、优先权国家文本数和权利要求数是实质审查周期的保护因素,发明人数和专利被引数是危险因素。建议在初审阶段压缩初审期限,延期理由严格化,探索申请人需求导向型审查模式;在实审阶段将技术领域实审部门精细化,合理限定权利要求边界和数量,加强建设智能检索系统,优化审查流程等;探索检索外包等创新审查模式,确保审查质效平衡。 展开更多
关键词 高收益专利 审查周期 影响因素 violin plot COX回归 审查效率
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