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Machine learning prediction model for gray-level co-occurrence matrix features of synchronous liver metastasis in colorectal cancer
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作者 Kai-Feng Yang Sheng-Jie Li +1 位作者 Jun Xu Yong-Bin Zheng 《World Journal of Gastrointestinal Surgery》 SCIE 2024年第6期1571-1581,共11页
BACKGROUND Synchronous liver metastasis(SLM)is a significant contributor to morbidity in colorectal cancer(CRC).There are no effective predictive device integration algorithms to predict adverse SLM events during the ... BACKGROUND Synchronous liver metastasis(SLM)is a significant contributor to morbidity in colorectal cancer(CRC).There are no effective predictive device integration algorithms to predict adverse SLM events during the diagnosis of CRC.AIM To explore the risk factors for SLM in CRC and construct a visual prediction model based on gray-level co-occurrence matrix(GLCM)features collected from magnetic resonance imaging(MRI).METHODS Our study retrospectively enrolled 392 patients with CRC from Yichang Central People’s Hospital from January 2015 to May 2023.Patients were randomly divided into a training and validation group(3:7).The clinical parameters and GLCM features extracted from MRI were included as candidate variables.The prediction model was constructed using a generalized linear regression model,random forest model(RFM),and artificial neural network model.Receiver operating characteristic curves and decision curves were used to evaluate the prediction model.RESULTS Among the 392 patients,48 had SLM(12.24%).We obtained fourteen GLCM imaging data for variable screening of SLM prediction models.Inverse difference,mean sum,sum entropy,sum variance,sum of squares,energy,and difference variance were listed as candidate variables,and the prediction efficiency(area under the curve)of the subsequent RFM in the training set and internal validation set was 0.917[95%confidence interval(95%CI):0.866-0.968]and 0.09(95%CI:0.858-0.960),respectively.CONCLUSION A predictive model combining GLCM image features with machine learning can predict SLM in CRC.This model can assist clinicians in making timely and personalized clinical decisions. 展开更多
关键词 Colorectal cancer Synchronous liver metastasis Gray-level co-occurrence matrix Machine learning algorithm Prediction model
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Artificial intelligence on diabetic retinopathy diagnosis: an automatic classification method based on grey level co-occurrence matrix and naive Bayesian model 被引量:6
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作者 Kai Cao Jie Xu Wei-Qi Zhao 《International Journal of Ophthalmology(English edition)》 SCIE CAS 2019年第7期1158-1162,共5页
AIM: To develop an automatic tool on screening diabetic retinopathy(DR) from diabetic patients.METHODS: We extracted textures from eye fundus images of each diabetes subject using grey level co-occurrence matrix metho... AIM: To develop an automatic tool on screening diabetic retinopathy(DR) from diabetic patients.METHODS: We extracted textures from eye fundus images of each diabetes subject using grey level co-occurrence matrix method and trained a Bayesian model based on these textures. The receiver operating characteristic(ROC) curve was used to estimate the sensitivity and specificity of the Bayesian model.RESULTS: A total of 1000 eyes fundus images from diabetic patients in which 298 eyes were diagnosed as DR by two ophthalmologists. The Bayesian model was trained using four extracted textures including contrast, entropy, angular second moment and correlation using a training dataset. The Bayesian model achieved a sensitivity of 0.949 and a specificity of 0.928 in the validation dataset. The area under the ROC curve was 0.938, and the 10-fold cross validation method showed that the average accuracy rate is 93.5%.CONCLUSION: Textures extracted by grey level cooccurrence can be useful information for DR diagnosis, and a trained Bayesian model based on these textures can be an effective tool for DR screening among diabetic patients. 展开更多
关键词 GREY level co-occurrence matrix Bayesian textures artificial INTELLIGENCE receiver operating characteristiccurve DIABETIC RETINOPATHY
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Binary Image Steganalysis Based on Distortion Level Co-Occurrence Matrix 被引量:2
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作者 Junjia Chen Wei Lu +4 位作者 Yuileong Yeung Yingjie Xue Xianjin Liu Cong Lin Yue Zhang 《Computers, Materials & Continua》 SCIE EI 2018年第5期201-211,共11页
In recent years,binary image steganography has developed so rapidly that the research of binary image steganalysis becomes more important for information security.In most state-of-the-art binary image steganographic s... In recent years,binary image steganography has developed so rapidly that the research of binary image steganalysis becomes more important for information security.In most state-of-the-art binary image steganographic schemes,they always find out the flippable pixels to minimize the embedding distortions.For this reason,the stego images generated by the previous schemes maintain visual quality and it is hard for steganalyzer to capture the embedding trace in spacial domain.However,the distortion maps can be calculated for cover and stego images and the difference between them is significant.In this paper,a novel binary image steganalytic scheme is proposed,which is based on distortion level co-occurrence matrix.The proposed scheme first generates the corresponding distortion maps for cover and stego images.Then the co-occurrence matrix is constructed on the distortion level maps to represent the features of cover and stego images.Finally,support vector machine,based on the gaussian kernel,is used to classify the features.Compared with the prior steganalytic methods,experimental results demonstrate that the proposed scheme can effectively detect stego images. 展开更多
关键词 Binary image steganalysis informational security embedding distortion distortion level map co-occurrence matrix support vector machine.
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3D Gray Level Co-Occurrence Matrix Based Classification of Favor Benign and Borderline Types in Follicular Neoplasm Images 被引量:1
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作者 Oranit Boonsiri Kiyotada Washiya +1 位作者 Kota Aoki Hiroshi Nagahashi 《Journal of Biosciences and Medicines》 2016年第3期51-56,共6页
Since the efficiency of treatment of thyroid disorder depends on the risk of malignancy, indeterminate follicular neoplasm (FN) images should be classified. The diagnosis process has been done by visual interpretation... Since the efficiency of treatment of thyroid disorder depends on the risk of malignancy, indeterminate follicular neoplasm (FN) images should be classified. The diagnosis process has been done by visual interpretation of experienced pathologists. However, it is difficult to separate the favor benign from borderline types. Thus, this paper presents a classification approach based on 3D nuclei model to classify favor benign and borderline types of follicular thyroid adenoma (FTA) in cytological specimens. The proposed method utilized 3D gray level co-occurrence matrix (GLCM) and random forest classifier. It was applied to 22 data sets of FN images. Furthermore, the use of 3D GLCM was compared with 2D GLCM to evaluate the classification results. From experimental results, the proposed system achieved 95.45% of the classification. The use of 3D GLCM was better than 2D GLCM according to the accuracy of classification. Consequently, the proposed method probably helps a pathologist as a prescreening tool. 展开更多
关键词 Thyroid Follicular Lesion 3D Gray Level co-occurrence matrix Random Ferest Classifier
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A Combination of Feature Selection and Co-occurrence Matrix Methods for Leukocyte Recognition System
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作者 Li Na Arlends Chris Bagus Mulyawan 《Journal of Software Engineering and Applications》 2012年第12期101-106,共6页
A leukocyte recognition system, as part of a differential blood counter system, is very important in hematology field. In this paper, the propose system aims to automatically classify the white blood cells (leukocytes... A leukocyte recognition system, as part of a differential blood counter system, is very important in hematology field. In this paper, the propose system aims to automatically classify the white blood cells (leukocytes) on a given microscopic image. The classifications of leukocytes are performed based on the combination of color and texture features of the blood cell images. The developed system classifies the leukocytes in one of the five categories (neutrophils, eosinophils, basophils, lymphocytes, and monocytes). In the preprocessing stage, the system starts with converting the microscopic images from Red Green Blue (RGB) color space to Hue Saturation Value (HSV) color space. Next, the system splits the Hue and Saturation features from the Value feature. For both Hue and Saturation features, the system processes their color information using the Feature Selection method and the Window Cropping method;while the Value feature is processed by its texture information using the Co-occurrence matrix method. The final recognition stage is performed using the Euclidean distance method. The combination of the Feature Selection and Co-occurrence Matrix methods gives the best overall recognition accuracies for classifying leukocyte images. 展开更多
关键词 LEUKOCYTE recognition WHITE BLOOD cell MICROSCOPIC image Feature selection co-occurrence matrix
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Transmission Index Research of Parallel Manipulators Based on Matrix Orthogonal Degree 被引量:3
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作者 Zhu-Feng Shao Jiao Mo +1 位作者 Xiao-Qiang Tang Li-Ping Wang 《Chinese Journal of Mechanical Engineering》 SCIE EI CAS CSCD 2017年第6期1396-1405,共10页
Performance index mance evaluation, and is the is the standard of perfor- foundation of both perfor- mance analysis and optimal design for the parallel manipulator. Seeking the suitable kinematic indices is always an ... Performance index mance evaluation, and is the is the standard of perfor- foundation of both perfor- mance analysis and optimal design for the parallel manipulator. Seeking the suitable kinematic indices is always an important and challenging issue for the parallel manipulator. So far, there are extensive studies in this field, but few existing indices can meet all the requirements, such as simple, intuitive, and universal. To solve this problem, the matrix orthogonal degree is adopted, and generalized transmission indices that can evaluate motion/force trans- missibility of fully parallel manipulators are proposed. Transmission performance analysis of typical branches, end effectors, and parallel manipulators is given to illus- trate proposed indices and analysis methodology. Simula- tion and analysis results reveal that proposed transmission indices possess significant advantages, such as normalized finite (ranging from 0 to l), dimensionally homogeneous, frame-free, intuitive and easy to calculate. Besides, pro- posed indices well indicate the good transmission region and relativity to the singularity with better resolution than the traditional local conditioning index, and provide a novel tool for kinematic analysis and optimal design of fully parallel manipulators. 展开更多
关键词 Transmission index Parallel mechanism Kinematic performance matrix orthogonal degree
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Material microstructures analyzed by using gray level Co-occurrence matrices 被引量:1
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作者 胡延苏 王志军 +2 位作者 樊晓光 李俊杰 高昂 《Chinese Physics B》 SCIE EI CAS CSCD 2017年第9期483-490,共8页
The mechanical properties of materials greatly depend on the microstructure morphology. The quantitative characterization of material microstructures is essential for the performance prediction and hence the material ... The mechanical properties of materials greatly depend on the microstructure morphology. The quantitative characterization of material microstructures is essential for the performance prediction and hence the material design. At present,the quantitative characterization methods mainly rely on the microstructure characterization of shape, size, distribution,and volume fraction, which related to the mechanical properties. These traditional methods have been applied for several decades and the subjectivity of human factors induces unavoidable errors. In this paper, we try to bypass the traditional operations and identify the relationship between the microstructures and the material properties by the texture of image itself directly. The statistical approach is based on gray level Co-occurrence matrix(GLCM), allowing an objective and repeatable study on material microstructures. We first present how to identify GLCM with the optimal parameters, and then apply the method on three systems with different microstructures. The results show that GLCM can reveal the interface information and microstructures complexity with less human impact. Naturally, there is a good correlation between GLCM and the mechanical properties. 展开更多
关键词 microstructures quantitative characterization mechanical properties gray level co-occurrence matrix
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Novel Distance-Related Matrix Index and QSPR Research for Thermodynamics of Methyl Halides
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作者 杨海浪 《Journal of Wuhan University of Technology(Materials Science)》 SCIE EI CAS 2004年第1期41-43,共3页
A novel topological index W F is defined by the matrices X,W and L as W F=XWL.The topological index WF based on the distance-related matrix of molecular graphs is used to code the structural environment of each atom... A novel topological index W F is defined by the matrices X,W and L as W F=XWL.The topological index WF based on the distance-related matrix of molecular graphs is used to code the structural environment of each atom-type in a molecular graph.Good QSPR models have been obtained for standard formation enthalpy of methyl halides.The result indicates that the idea of using multiple matrices to define the distance-related matrix topological index is valid. 展开更多
关键词 distance matrix topological index methyl halides
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Evaluating Partitioning Based Clustering Methods for Extended Non-negative Matrix Factorization (NMF)
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作者 Neetika Bhandari Payal Pahwa 《Intelligent Automation & Soft Computing》 SCIE 2023年第2期2043-2055,共13页
Data is humongous today because of the extensive use of World WideWeb, Social Media and Intelligent Systems. This data can be very important anduseful if it is harnessed carefully and correctly. Useful information can... Data is humongous today because of the extensive use of World WideWeb, Social Media and Intelligent Systems. This data can be very important anduseful if it is harnessed carefully and correctly. Useful information can beextracted from this massive data using the Data Mining process. The informationextracted can be used to make vital decisions in various industries. Clustering is avery popular Data Mining method which divides the data points into differentgroups such that all similar data points form a part of the same group. Clusteringmethods are of various types. Many parameters and indexes exist for the evaluationand comparison of these methods. In this paper, we have compared partitioningbased methods K-Means, Fuzzy C-Means (FCM), Partitioning AroundMedoids (PAM) and Clustering Large Application (CLARA) on secure perturbeddata. Comparison and identification has been done for the method which performsbetter for analyzing the data perturbed using Extended NMF on the basis of thevalues of various indexes like Dunn Index, Silhouette Index, Xie-Beni Indexand Davies-Bouldin Index. 展开更多
关键词 Clustering CLARA Davies-Bouldin index Dunn index FCM intelligent systems K-means non-negative matrix factorization(NMF) PAM privacy preserving data mining Silhouette index Xie-Beni index
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基于动态专家会议算法的刀具磨损度在线识别
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作者 张峰 陈乃超 邢海燕 《机床与液压》 北大核心 2024年第4期218-224,共7页
为了提高机床加工过程中刀具磨损度识别准确率,提出基于动态专家会议算法的在线识别方法。分析刀具磨损机制,设计刀具磨损度识别框架;使用CEEMD分解源信号得到IMF分量,并基于IMF分量提取信号的改进I-kazTM系数、功率谱熵、标准差等多指... 为了提高机床加工过程中刀具磨损度识别准确率,提出基于动态专家会议算法的在线识别方法。分析刀具磨损机制,设计刀具磨损度识别框架;使用CEEMD分解源信号得到IMF分量,并基于IMF分量提取信号的改进I-kazTM系数、功率谱熵、标准差等多指标特征矩阵;针对随机森林算法存在的问题,将决策树视为决策专家,根据专家历史决策准确率动态确定专家决策权,从而设计一种新的动态专家会议算法。经PHM2010刀具磨损数据集验证,多指标特征矩阵在空间分布的类内聚集度、类间区分度均较好;基于动态专家会议算法的刀具磨损识别准确率为98.44%,分别比RF、LS-SVM算法高出了17.19%、11.72%,说明动态专家会议算法在刀具磨损度识别中是有效的。 展开更多
关键词 刀具磨损度 动态专家会议算法 多指标特征矩阵 在线识别
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经鼻加温湿化高流量氧疗对重症肺炎患儿血气指标、MMP-9及TNF-α的影响
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作者 王丽丽 杨艳章 王佳 《中国急救复苏与灾害医学杂志》 2024年第4期476-479,共4页
目的 探讨经鼻加温湿化高流量氧疗(HFNC)治疗小儿重症肺炎的疗效及对血气指标、基质金属蛋白酶9(MMP-9)、肿瘤坏死因子α(TNF-α)的影响。方法 选取2018年5月—2020年8月河北省人民医院收治的123例重症肺炎患儿作为研究对象,按照随机抽... 目的 探讨经鼻加温湿化高流量氧疗(HFNC)治疗小儿重症肺炎的疗效及对血气指标、基质金属蛋白酶9(MMP-9)、肿瘤坏死因子α(TNF-α)的影响。方法 选取2018年5月—2020年8月河北省人民医院收治的123例重症肺炎患儿作为研究对象,按照随机抽样法分为观察组(HFNC治疗,n=62)与对照组(面罩吸氧治疗,n=61)。对比两组临床症状、动脉血二氧化碳分压(PaCO_(2))、血氧分压(PaO_(2))、TNF-α、MMP-9、血氧饱和度/吸入氧浓度与呼吸频率的比值(ROX指数)。结果 观察组的退热时间、体征消失时间、咳嗽咳痰消失时间、住院时间分别为(5.21±1.02)d、(10.02±1.32)d、(7.41±0.96)d、(9.02±2.69)d,均短于对照组(t=5.688、10.332、10.253、2.180,P<0.05)。观察组治疗后2、6、12、24 h的ROX指数分别为(6.31±1.62)、(9.85±1.96)、(11.65±2.39)、(13.46±3.25),均高于对照组(t=2.467、3.380、4.251、4.902,P<0.05);治疗后,观察组的PaCO_(2)(35.69±5.21)mmHg低于对照组,而PaO_(2)(87.52±18.69)mmHg高于对照组(t=2.379、4.647,P<0.05);治疗后,观察组的MMP-9、TNF-α分别为(6.32±1.05)pg/mL、(10.40±1.30)pg/mL,低于对照组(t=13.425、13.060,P<0.05)。结论 HFNC用于重症肺炎患儿中具有显著效果,有利于改善患儿血气指标,降低MMP-9、TNF-α水平。 展开更多
关键词 经鼻加温湿化高流量氧疗 小儿重症肺炎 血气指标 基质金属蛋白酶9 肿瘤坏死因子-α
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关于矩阵三种典型分裂及应用
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作者 任芳国 王甜甜 《高等数学研究》 2024年第2期44-47,65,共5页
本文讨论了矩阵的Cartesian分裂、Jordan分裂、核心-幂零分裂的存在性与唯一性;将Jordan块的主要特性推广到一般矩阵;获得了一般矩阵具有的性质.以上关于矩阵分裂结果充实并深化了矩阵分裂的已有结果,并有助于提高学生学习高等代数及矩... 本文讨论了矩阵的Cartesian分裂、Jordan分裂、核心-幂零分裂的存在性与唯一性;将Jordan块的主要特性推广到一般矩阵;获得了一般矩阵具有的性质.以上关于矩阵分裂结果充实并深化了矩阵分裂的已有结果,并有助于提高学生学习高等代数及矩阵分析理论与应用的能力,以便为利用矩阵理论解决实际问题奠定了基础. 展开更多
关键词 矩阵分裂 正交矩阵 酉矩阵 Jordan矩阵 矩阵的指标
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寒地玉米秸秆腐熟物复配基质在蔬菜育苗中的应用
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作者 贺付蒙 杨燕 +3 位作者 王雪 张颖 徐永清 李凤兰 《中国瓜菜》 CAS 北大核心 2024年第4期87-93,共7页
为探索寒地玉米秸秆腐熟物替代传统草炭土基质的可行性,以草炭土、蛭石和珍珠岩混合而成的传统基质作为对照,以A(V腐熟物∶V蛭石∶V珍珠岩=2∶1∶1)、B(V腐熟物∶V蛭石∶V珍珠岩=1∶1∶1)两种复配基质为处理,研究复配基质对黄瓜和辣椒... 为探索寒地玉米秸秆腐熟物替代传统草炭土基质的可行性,以草炭土、蛭石和珍珠岩混合而成的传统基质作为对照,以A(V腐熟物∶V蛭石∶V珍珠岩=2∶1∶1)、B(V腐熟物∶V蛭石∶V珍珠岩=1∶1∶1)两种复配基质为处理,研究复配基质对黄瓜和辣椒幼苗生长的影响,以及育苗前后营养物质和相关酶活性的变化。结果表明,两种复配基质的容重、水气比和电导率与传统基质呈显著差异;在幼苗定植28 d时,A、B两种基质的黄瓜幼苗株高分别比对照显著提高67.25%和44.95%,茎粗分别显著提高29.30%和17.83%,叶绿素含量分别显著提高7.42%和3.13%;A、B两种基质的辣椒幼苗株高分别比对照显著提高8.55%和15.36%,茎粗分别显著提高2.38%和6.21%,叶绿素含量分别显著提高4.74%和12.44%;育苗后基质铵态氮和有效钾含量均降低,速效磷含量升高,黄瓜育苗后A、B两种基质速效磷含量分别升高71.27%和76.36%;辣椒育苗后A、B两种基质速效磷含量分别升高249.22%和115.81%。A、B两种基质中脲酶和酸性磷酸酶活性在育苗结束后升高,蔗糖酶活性降低。综上,A基质更适于黄瓜幼苗的生长,B基质更适于辣椒幼苗的生长,可分别代替传统草炭土基质用于黄瓜和辣椒育苗。 展开更多
关键词 秸秆腐熟物 复配基质 蔬菜育苗 生长指标
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四川省茂县大沟流域42年植被景观格局恢复动态及其特征
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作者 刘海洋 唐圆圆 +1 位作者 王瀚婕 包维楷 《生态学报》 CAS CSCD 北大核心 2024年第9期3708-3720,共13页
中国西南亚高山地区的植被景观恢复动态一直缺乏深入研究,以四川省茂县的大沟流域为研究对象,基于航片、地面调查、QuickBird和Pleiades遥感影像数据源,采用人工目视解译的方法,建立了大沟流域景观格局分布信息数据库,开展了大沟流域197... 中国西南亚高山地区的植被景观恢复动态一直缺乏深入研究,以四川省茂县的大沟流域为研究对象,基于航片、地面调查、QuickBird和Pleiades遥感影像数据源,采用人工目视解译的方法,建立了大沟流域景观格局分布信息数据库,开展了大沟流域1978—2020年景观格局恢复动态及其特征的研究。结果表明:(1)研究期间,流域内的优势景观为落叶杂灌、草地和油松林,由于封山育林政策的实施,在未来较长的一段时间内优势景观类型将得以保持。(2)1978—2020年间大沟流域的植被覆盖度维持在较高水平,森林面积逐渐增加,农业主要转变为果园经济,整体景观的动态度在逐渐减小。(3)随着植被的恢复,大沟流域景观的物种丰富度、优势景观优势度和景观的连通性都在增加,但景观的破碎化程度依旧较高。首次对大沟流域的植被演变进行了探究,为西南亚高山及岷江流域地区的森林恢复提供了一定的科学依据。未来相关领域还需加强景观格局演变驱动机制的研究,并制定更加合理的生态环境管理政策。 展开更多
关键词 大沟流域 景观格局 转移矩阵 景观指数
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基于下垫面结构的喀斯特地区洪涝演化特征研究
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作者 谭红梅 贺中华 +3 位作者 顾小林 许明金 王茂强 杨树平 《人民长江》 北大核心 2024年第5期33-42,共10页
为探究不同下垫面结构下喀斯特地区的洪涝演化特征,基于贵州省1980~2020年降雨数据计算降水Z指数,利用系统聚类法划分贵州省下垫面结构,分析其洪涝时空演化特征,并探讨下垫面主导影响因子。结果表明:(1)贵州省下垫面可划分为深切割岩溶... 为探究不同下垫面结构下喀斯特地区的洪涝演化特征,基于贵州省1980~2020年降雨数据计算降水Z指数,利用系统聚类法划分贵州省下垫面结构,分析其洪涝时空演化特征,并探讨下垫面主导影响因子。结果表明:(1)贵州省下垫面可划分为深切割岩溶较强发育谷地区、浅切割岩溶中等发育谷地区、深切割非岩溶洼地区、浅切割岩溶强烈发育谷地区。(2) 1980~2020年贵州省呈变涝趋势,大涝发生次数较多;空间上整体呈东南高、西北低的分布格局,以大涝、重涝偏多,但各亚区空间分布特征不同。(3)不同下垫面条件对洪涝影响由大到小依次为地形地貌>岩溶发育强度>地表切割深度;各级洪涝在不同下垫面条件下均出现概率性转移,转移现象较活跃。研究成果可为喀斯特流域防洪减灾提供参考。 展开更多
关键词 洪涝演化 Z指数 下垫面结构 MORLET小波 状态转移概率矩阵 贵州省 喀斯特流域
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固定正畸矫治80例病人唾液基质金属蛋白酶8和基质金属蛋白酶9的水平变化
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作者 张婉君 孔中楠 +3 位作者 马永平 崔敬雅 杨茜 马文盛 《安徽医药》 CAS 2024年第4期746-750,I0003,共6页
目的 探究固定正畸矫治病人唾液基质金属蛋白酶8(MMP-8)、基质金属蛋白酶9(MMP-9)水平的变化及临床意义。方法 选取2019年6月至2021年12月于保定市第二医院接受固定正畸矫治成年病人80例及健康受试者40例为研究对象。对病人固定矫治前(... 目的 探究固定正畸矫治病人唾液基质金属蛋白酶8(MMP-8)、基质金属蛋白酶9(MMP-9)水平的变化及临床意义。方法 选取2019年6月至2021年12月于保定市第二医院接受固定正畸矫治成年病人80例及健康受试者40例为研究对象。对病人固定矫治前(T1)、固定矫治1周(T2)、固定矫治1个月(T3)及健康受试者探诊出血(BOP)、菌斑指数(PLI)进行检测;收集健康受试者及病人T1、T2、T3时期唾液,采用ELISA检测唾液中MMP-8、MMP-9水平;流式细胞术对唾液白细胞含量进行检测;分别对MMP-8、MMP-9与牙龈BOP相关性进行分析;分离唾液白细胞,检测白细胞MMP-8、MMP-9表达水平变化。结果T2、T3时病人BOP[(21.36±8.79)%、(13.06±5.80)%]、PLI[(2.53±0.43)分、(1.89±0.39)分]及唾液中MMP-8[(0.43±0.11)μg/L、(0.32±0.10)μg/L]、MMP-9[(3.64±0.76)μg/L、(2.02±0.50)μg/L]、白细胞水平[(17 893.71±505.49)个、(8 532.18±421.89)个],显著高于T1水平[(5.05±2.11)%、(0.71±0.25)分、(0.16±0.08)μg/L、(0.25±0.13)μg/L、(2 308.66±178.04)个,P<0.05];唾液MMP-8、MMP-9水平与牙龈BOP、PLI呈正相关;进一步发现T2、T3时白细胞MMP-8、MMP-9表达水平显著高于T1水平(P<0.05)。受试者操作特征(ROC)曲线显示唾液MMP-8及MMP-9水平能较好预测牙龈炎程度。结论 正畸病人唾液MMP-8、MMP-9水平与牙龈炎病情呈正相关,唾液MMP-8、MMP-9可作为评估正畸病人牙龈炎的潜在生物标志物。 展开更多
关键词 牙龈炎 正畸矫正器 基质金属蛋白酶8 基质金属蛋白酶9 牙菌斑指数
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超声收缩期峰值血流速度、阻力指数与乳腺癌组织中Survivin、基质金属蛋白酶-11、人类表皮生长因子受体2关系研究
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作者 王志泉 陈岩 +2 位作者 高姗 刘彦丽 靳元 《陕西医学杂志》 CAS 2024年第7期910-913,930,共5页
目的:探讨超声收缩期峰值血流速度(PSV)、阻力指数(RI)与乳腺癌组织中Survivin、基质金属蛋白酶-11(MMP-11)、人类表皮生长因子受体2(HER2)的关系。方法:选取60例乳腺癌患者作为观察组,另选择同期60例乳腺良性病变患者作为对照组。均行... 目的:探讨超声收缩期峰值血流速度(PSV)、阻力指数(RI)与乳腺癌组织中Survivin、基质金属蛋白酶-11(MMP-11)、人类表皮生长因子受体2(HER2)的关系。方法:选取60例乳腺癌患者作为观察组,另选择同期60例乳腺良性病变患者作为对照组。均行手术治疗,术前经超声检测,比较两组患者术前RI值、PSV值,免疫组化法检测术后癌组织中Survivin、MMP-11、HER2的表达,分析Survivin、MMP-11、HER2表达与超声RI、PSV值的关系。结果:观察组RI、PSV值高于对照组(均P<0.05)。观察组癌组织中Survivin、MMP-11、HER2表达阳性率高于对照组(均P<0.05)。不同病灶直径、临床分期患者RI、PSV值,不同病灶直径、临床分期及是否淋巴结转移患者癌组织中Survivin、MMP-11、HER2表达比较,差异有统计学意义(均P<0.05)。癌组织中Survivin、MMP-11、HER2表达与PSV、RI值呈正相关(均P<0.05)。结论:超声检测RI、PSV值对术前判断乳腺癌有一定价值,RI、PSV值与乳腺癌癌组织Survivin、MMP-11、HER2表达均相关,Survivin、MMP-11、HER2在乳腺癌的发生、发展过程中发挥重要作用。 展开更多
关键词 乳腺癌 超声 收缩期峰值血流速度 阻力指数 SURVIVIN 基质金属蛋白酶-11 人类表皮生长因子受体2
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基于DEMATEL-ISM模型的装配式建筑施工质量控制体系的构建
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作者 李旺超 胡国杰 《黑龙江科学》 2024年第6期56-59,共4页
装配式建筑是建筑业的未来发展趋势,其施工质量直接关乎人民群众的利益。为提高装配式建筑施工质量,从人员、材料、机械、方法和环境5个层面分析得到15个影响因素,构建装配式建筑施工质量评价指标体系,基于DEMATEL-ISM模型对各指标之间... 装配式建筑是建筑业的未来发展趋势,其施工质量直接关乎人民群众的利益。为提高装配式建筑施工质量,从人员、材料、机械、方法和环境5个层面分析得到15个影响因素,构建装配式建筑施工质量评价指标体系,基于DEMATEL-ISM模型对各指标之间的因果关系进行分析。结果表明,管理人员水平是影响装配式建筑施工质量的主要因素,预制构件存储状况、施工器具误差、预制构件安装方案合理性、工程质量管理环境是影响装配式建筑施工质量的次要因素,根据分析结果为装配式建筑施工质量控制提供合理建议。 展开更多
关键词 施工质量评价指标体系 交叉影响矩阵相乘法 DEMATEL-ISM模型 直接影响矩阵
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公路边坡稳定性评价指标体系构建及应用
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作者 刘豪放 赵建军 段海澎 《地下水》 2024年第2期113-116,共4页
山区公路边坡数量多、穿越地质单元多,影响边坡稳定性的因素多而复杂,构建评价指标体系有利于对边坡稳定性做出快速判断。然而,现有评价指标体系构建中很少考虑多个影响因素相互作用对边坡稳定性的影响,影响稳定性评价结果的合理性。本... 山区公路边坡数量多、穿越地质单元多,影响边坡稳定性的因素多而复杂,构建评价指标体系有利于对边坡稳定性做出快速判断。然而,现有评价指标体系构建中很少考虑多个影响因素相互作用对边坡稳定性的影响,影响稳定性评价结果的合理性。本文选择安徽汤屯高速公路30个代表性边坡为样本,利用相互作用关系矩阵方法构建了评价指标体系。得到主要认识包括:利用相互作用关系矩阵确定了指标重要性排序和权重取值,从8个评价指标筛选出边坡尺寸、边坡坡度、边坡高度、岩体强度、结构面方位、结构面特性、结构面组合、岩体结构单元类型七个指标构建稳定性评价指标体系;按半定量专家取值法对指标赋分,结合指标权重计算不稳定指数(SII),划分边坡不稳定指数等级。基于相互作用关系矩阵的指标重要性排序方法为权重确定提供了一种定量计算方法,所构建的边坡不稳定指数法所得结果较好地反映了边坡稳定性实际情况,具有较好的推广应用价值。 展开更多
关键词 相互作用 关系矩阵 边坡稳定性 指标体系 不稳定指数
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基于TFAHP的电炉企业多维一体化财务模式评价模型
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作者 梁晨 《工业加热》 CAS 2024年第1期71-74,共4页
电炉企业的财务由于其参数指标众多,对相关模式评价过程不能运用单一阈值理论,评价过程一直是个难题。设计基于TFAHP的电炉企业多维一体化财务模式评价模型。通过微观模拟电炉企业财务工资过程,确定评价指标,由此构建模糊评价矩阵,依据... 电炉企业的财务由于其参数指标众多,对相关模式评价过程不能运用单一阈值理论,评价过程一直是个难题。设计基于TFAHP的电炉企业多维一体化财务模式评价模型。通过微观模拟电炉企业财务工资过程,确定评价指标,由此构建模糊评价矩阵,依据模糊评价矩阵,构建二级评价矩阵,在单一准则下计算各评价指标的相对权重,采用三角模糊数层次分析法确定总权重,由此构建评价模型,获取评价结果,设定评价等级集合及区间值,给出具体评语等级。实验可知,所构建模型进行多维一体化财务模式评价在电炉企业应用效果较好,评价效率较高。 展开更多
关键词 三角模糊数层次分析法 多维一体化 财务模式 评价矩阵 指标权重
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