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Smart Approaches to Efficient Text Mining for Categorizing Sexual Reproductive Health Short Messages into Key Themes
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作者 Tobias Makai Mayumbo Nyirenda 《Open Journal of Applied Sciences》 2024年第2期511-532,共22页
To promote behavioral change among adolescents in Zambia, the National HIV/AIDS/STI/TB Council, in collaboration with UNICEF, developed the Zambia U-Report platform. This platform provides young people with improved a... To promote behavioral change among adolescents in Zambia, the National HIV/AIDS/STI/TB Council, in collaboration with UNICEF, developed the Zambia U-Report platform. This platform provides young people with improved access to information on various Sexual Reproductive Health topics through Short Messaging Service (SMS) messages. Over the years, the platform has accumulated millions of incoming and outgoing messages, which need to be categorized into key thematic areas for better tracking of sexual reproductive health knowledge gaps among young people. The current manual categorization process of these text messages is inefficient and time-consuming and this study aims to automate the process for improved analysis using text-mining techniques. Firstly, the study investigates the current text message categorization process and identifies a list of categories adopted by counselors over time which are then used to build and train a categorization model. Secondly, the study presents a proof of concept tool that automates the categorization of U-report messages into key thematic areas using the developed categorization model. Finally, it compares the performance and effectiveness of the developed proof of concept tool against the manual system. The study used a dataset comprising 206,625 text messages. The current process would take roughly 2.82 years to categorise this dataset whereas the trained SVM model would require only 6.4 minutes while achieving an accuracy of 70.4% demonstrating that the automated method is significantly faster, more scalable, and consistent when compared to the current manual categorization. These advantages make the SVM model a more efficient and effective tool for categorizing large unstructured text datasets. These results and the proof-of-concept tool developed demonstrate the potential for enhancing the efficiency and accuracy of message categorization on the Zambia U-report platform and other similar text messages-based platforms. 展开更多
关键词 Knowledge Discovery in Text (KDT) Sexual Reproductive Health (SRH) Text categorization Text Classification Text Extraction Text Mining Feature Extraction Automated Classification Process Performance Stemming and Lemmatization Natural Language Processing (NLP)
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A COMPARISON OF ALTERNATIVE CRITERIA FOR DEFINING FUZZY BOUNDARIES ON FUZZY CATEGORICAL MAPS 被引量:1
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作者 ZHANG Jingxiong Roger P.Kirby 《Geo-Spatial Information Science》 2000年第2期26-34,共9页
This paper provides a brief introduction to the methods for generating fuzzy categorical maps from remotely sensed images (in graphical and digital forms).This is followed by a description of the slicing process for d... This paper provides a brief introduction to the methods for generating fuzzy categorical maps from remotely sensed images (in graphical and digital forms).This is followed by a description of the slicing process for deriving fuzzy boundaries from fuzzy categorical maps,which can be based on the maximum fuzzy membership values,confusion index,or measure of entropy.Results from an empirical test preformed in an Edinburgh suburb show that fuzzy boundaries of land cover can be derived from aerial photographs and satellite images by using the three criteria with small differences,and that slicing based on the maximum fuzzy membership values is the easiest and most straightforward solution.This,in turn,implies the suitability of maintaining both a crisp classification and its underlying certainty map for deriving fuzzy boundaries at different thresholds,which is a flexible and compact management of categorical map data and their uncertainty. 展开更多
关键词 categorical mapping objects FIELDS FUZZY categorical MAPS FUZZY MEMBERSHIP VALUES (FMVs) FUZZY boundaries
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Categorical Database Generalization 被引量:1
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作者 LIUYaolin MartinMolenaar +1 位作者 AlTinghua LIUYanfang 《Geo-Spatial Information Science》 2003年第4期1-9,26,共10页
This paper focuses on the issues of categorical database gen-eralization and emphasizes the roles ofsupporting data model, integrated datamodel, spatial analysis and semanticanalysis in database generalization.The fra... This paper focuses on the issues of categorical database gen-eralization and emphasizes the roles ofsupporting data model, integrated datamodel, spatial analysis and semanticanalysis in database generalization.The framework contents of categoricaldatabase generalization transformationare defined. This paper presents an in-tegrated spatial supporting data struc-ture, a semantic supporting model andsimilarity model for the categorical da-tabase generalization. The concept oftransformation unit is proposed in generalization. 展开更多
关键词 categorical database generalization data model hierarchy semantic evaluation model TRANSFORMATION transformation unit
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Coupled Attribute Similarity Learning on Categorical Data for Multi-Label Classification
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作者 Zhenwu Wang Longbing Cao 《Journal of Beijing Institute of Technology》 EI CAS 2017年第3期404-410,共7页
In this paper a novel coupled attribute similarity learning method is proposed with the basis on the multi-label categorical data(CASonMLCD).The CASonMLCD method not only computes the correlations between different ... In this paper a novel coupled attribute similarity learning method is proposed with the basis on the multi-label categorical data(CASonMLCD).The CASonMLCD method not only computes the correlations between different attributes and multi-label sets using information gain,which can be regarded as the important degree of each attribute in the attribute learning method,but also further analyzes the intra-coupled and inter-coupled interactions between an attribute value pair for different attributes and multiple labels.The paper compared the CASonMLCD method with the OF distance and Jaccard similarity,which is based on the MLKNN algorithm according to 5common evaluation criteria.The experiment results demonstrated that the CASonMLCD method can mine the similarity relationship more accurately and comprehensively,it can obtain better performance than compared methods. 展开更多
关键词 COUPLED SIMILARITY MULTI-LABEL categorical data CORRELATIONS
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Mapping QTL for Categorical Traits with Multivariate Regression
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作者 田佺 杨润清 《Journal of Shanghai Jiaotong university(Science)》 EI 2005年第S1期97-102,共6页
Simple linear regression analysis has been used to map QTL for quantitative traits. Many traits of biological interest and/or economical importance in various species show binary phenotypic distributions (e.g., presen... Simple linear regression analysis has been used to map QTL for quantitative traits. Many traits of biological interest and/or economical importance in various species show binary phenotypic distributions (e.g., presence or absence). It has been shown that such a binary trait also can be analyzed with the simple linear regression, subject to virtually no loss in power compared to the generalized linear model analysis. Binary trait is a special case of a multiple categorical trait (e.g., low, medium or high). We propose a mechanism to decompose a multiple categorical trait into an array of correlated binary variables. The categorical trait turned multiple binary traits are analyzed with a multivariate linear regression method. Turning the problem of categorical trait mapping into that of multivariate mapping allows the exploration of pleiotropic effects of QTL for different categories. Efficiency of the method is verified through a series of simulation experiments. 展开更多
关键词 categorical TRAIT MAPPING QTL MULTIVARIATE linear regression analysis
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A Graph Drawing Algorithm for Visualizing Multivariate Categorical Data
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作者 HUANG Jingwei HUANG Jie 《Wuhan University Journal of Natural Sciences》 CAS 2007年第2期239-242,共4页
In this paper, a new approach for visualizing multivariate categorical data is presented. The approach uses a graph to represent multivariate categorical data and draws the graph in such a way that we can identify pat... In this paper, a new approach for visualizing multivariate categorical data is presented. The approach uses a graph to represent multivariate categorical data and draws the graph in such a way that we can identify patterns, trends and relationship within the data. A mathematical model for the graph layout problem is deduced and a spectral graph drawing algorithm for visualizing multivariate categorical data is proposed. The experiments show that the drawings by the algorithm well capture the structures of multivariate categorical data and the computing speed is fast. 展开更多
关键词 multivariate categorical data GRAPH graph drawing ALGORITHMS
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Analysis of Extension Categorical Data Mining Process for the Extension Interior Designing
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作者 Hui Ma Guangtian Zou 《Journal of Harbin Institute of Technology(New Series)》 EI CAS 2016年第6期26-31,共6页
On the basis of extension architectonics,this paper researches the process of extension categorical data mining for extension interior design. In accordance with the theory of extension data mining,the extension categ... On the basis of extension architectonics,this paper researches the process of extension categorical data mining for extension interior design. In accordance with the theory of extension data mining,the extension categorical data mining for the extension interior design can be divided into data preparation,the operation of mining and knowledge application. The paper expatiates the main content and cohesive relations of each link,and emphatically discusses extension acquisition,analysis extension,categorical mining extension,knowledge application extension and other several core nodes that are related with data. Through the knowledge fusion of extension architectonics and data mining,the paper discusses the process of knowledge requirements with multiple classification under different mining targets. The purpose of this paper is to explore a whole categorical data mining process of interior design from extension design data to the design of knowledge discovery and extension application. 展开更多
关键词 extension categorical data mining extension sets extension interior design
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Clustering Categorical Data Based on Within-Cluster Relative Mean Difference
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作者 Jinxia Su Chunjing Su 《Open Journal of Statistics》 2017年第2期173-181,共9页
The clustering on categorical variables has received intensive attention. In dataset with categorical features, some features show the superior performance on clustering procedure. In this paper, we propose a simple m... The clustering on categorical variables has received intensive attention. In dataset with categorical features, some features show the superior performance on clustering procedure. In this paper, we propose a simple method to find such distinctive features by comparing pooled within-cluster mean relative difference and then partition the data upon such features and give subspace of the subgroups. The applications on zoo data and soybean data illustrate the performance of the proposed method. 展开更多
关键词 CLUSTERING categorical Variable Distinctive Attribute Pooled Within-Cluster Mean RELATIVE DIFFERENCE Hamming Distance
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Combined Use of k-Mer Numerical Features and Position-Specific Categorical Features in Fixed-Length DNA Sequence Classification
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作者 Dau Phan Ngoc Giang Nguyen +6 位作者 Favorisen Rosyking Lumbanraja Mohammad Reza Faisal Bahriddin Abapihi Bedy Purnama Mera Kartika Delimayanti Mamoru Kubo Kenji Satou 《Journal of Biomedical Science and Engineering》 2017年第8期390-401,共12页
To classify DNA sequences, k-mer frequency is widely used since it can convert variable-length sequences into fixed-length and numerical feature vectors. However, in case of fixed-length DNA sequence classification, s... To classify DNA sequences, k-mer frequency is widely used since it can convert variable-length sequences into fixed-length and numerical feature vectors. However, in case of fixed-length DNA sequence classification, subsequences starting at a specific position of the given sequence can also be used as categorical features. Through the performance evaluation on six datasets of fixed-length DNA sequences, our algorithm based on the above idea achieved comparable or better performance than other state-of-the art algorithms. 展开更多
关键词 Sequence CLASSIFICATION NUMERICAL and categorical FEATURES Feature Selection
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On the Matrices of Pairwise Frequencies of Categorical Attributes for Objects Classification
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作者 Vladimir N. Shats 《Journal of Intelligent Learning Systems and Applications》 2019年第4期65-75,共11页
This paper proposes two new algorithms for classifying objects with categorical attributes. These algorithms are derived from the assumption that the attributes of different object classes have different probability d... This paper proposes two new algorithms for classifying objects with categorical attributes. These algorithms are derived from the assumption that the attributes of different object classes have different probability distributions. One algorithm classifies objects based on the distribution of the attribute frequencies, and the other classifies objects based on the distribution of the pairwise attribute frequencies described using a matrix of pairwise frequencies. Both algorithms are based on the method of invariants, which offers the simplest dependencies for estimating the probabilities of objects in each class by an average frequency of their attributes. The estimated object class corresponds to the maximum probability. This method reflects the sensory process models of animals and is aimed at recognizing an object class by searching for a prototype in information accumulated in the brain. Because these matrices may be sparse, the solution cannot be determined for some objects. For these objects, an analog of the k-nearest neighbors method is provided in which for each attribute value, the class to which the majority of the k-nearest objects in the training sample belong is determined, and the most likely class value is calculated. The efficiencies of these two algorithms were confirmed on five databases. 展开更多
关键词 categorical Attributes Classification Algorithms INVARIANTS of MATRIX DATA DATA Processing
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Validating Intrinsic Factors Informing E-Commerce: Categorical Data Analysis Demo
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作者 Anthony Joe Turkson John Awuah Addor Douglas Yenwon Kharib 《Open Journal of Statistics》 2021年第5期737-758,共22页
Statistics is a powerful tool for data measurement. Statistical techniques properly planned and executed give meaning to meaningless data. The difficulty some practitioners encounter hinges on the fact that though the... Statistics is a powerful tool for data measurement. Statistical techniques properly planned and executed give meaning to meaningless data. The difficulty some practitioners encounter hinges on the fact that though there are numerous statistical methods available for use in analysis, the extent of their understanding and ease of using these tools for analysis is limited. This study has twofold purpose: firstly, literature on categorical data commonly used in research w</span><span style="font-family:Verdana;">as</span><span style="font-family:Verdana;"> reviewed</span><span style="font-family:Verdana;">;</span><span style="font-family:""><span style="font-family:Verdana;"> next, we reported the results of a survey we designed and executed. Categorical data was collected via questionnaire and analyzed to serve as a backbone of the robustness of categorical data. Several conjec</span><span style="font-family:Verdana;">tures about the independence of the socio-economic variables and e-commence</span><span style="font-family:Verdana;"> were tested. Some of the factors influencing patronage of e-commerce were </span><span style="font-family:Verdana;">identified. It is clear from the literature that as one’s academic qualification</span><span style="font-family:Verdana;"> improves</span></span><span style="font-family:Verdana;">, </span><span style="font-family:""><span style="font-family:Verdana;">there is an associated improvement in their preference for e-commerce, but the results revealed otherwise. Size of family was found to influence e-commerce. Both income and social status positively affected pa</span><span style="font-family:Verdana;">tronage in e-commerce. Gender also appeared to affect patronage in e-commerce</span><span style="font-family:Verdana;">. 62.3% of staff had patronized e-commerce</span></span><span style="font-family:Verdana;">.</span><span style="font-family:Verdana;"> This shows that e-commerce patronage was gradually increasing. It is therefore our considered view that policy documents regulating and monitoring the use of e-commerce be developed to increase e-commerce participation across the globe</span><span style="font-family:Verdana;">. </span><span style="font-family:Verdana;">It is also recommended that the bottlenecks which obstruct patronage in e-commence be addressed so that a lot more staff will develop a positive attitude towards e-commerce. 展开更多
关键词 categorical Data CHI-SQUARE E-COMMERCE Ordinal Data Nominal Data
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Clustering Categorical Data:A Cluster Ensemble Approach
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作者 何增友 Xu +2 位作者 Xiaofei Deng Shengchun 《High Technology Letters》 EI CAS 2003年第4期8-12,共5页
Clustering categorical data, an integral part of data mining,has attracted much attention recently. In this paper, the authors formally define the categorical data clustering problem as an optimization problem from th... Clustering categorical data, an integral part of data mining,has attracted much attention recently. In this paper, the authors formally define the categorical data clustering problem as an optimization problem from the viewpoint of cluster ensemble, and apply cluster ensemble approach for clustering categorical data. Experimental results on real datasets show that better clustering accuracy can be obtained by comparing with existing categorical data clustering algorithms. 展开更多
关键词 CLUSTERING categorical data cluster ensemble data mining
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Dimensional(premenstrual symptoms screening tool)vs categorical(mini diagnostic interview,module U)for assessment of premenstrual disorders
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作者 Rifka Chamali Rana Emam +1 位作者 Ziyad R Mahfoud Hassen Al-Amin 《World Journal of Psychiatry》 SCIE 2022年第4期603-614,共12页
BACKGROUND Premenstrual syndrome(PMS)is the constellation of physical and psychological symptoms before menstruation.Premenstrual dysphoric disorder(PMDD)is a severe form of PMS with more depressive and anxiety sympto... BACKGROUND Premenstrual syndrome(PMS)is the constellation of physical and psychological symptoms before menstruation.Premenstrual dysphoric disorder(PMDD)is a severe form of PMS with more depressive and anxiety symptoms.The Mini international neuropsychiatric interview,module U(MINI-U),assesses the diagnostic criteria for probable PMDD.The Premenstrual Symptoms screening tool(PSST)measures the severity of these symptoms.AIM To compare the PSST ordinal scores with the corresponding dichotomous MINI-U answers.METHODS Arab women(n=194)residing in Doha,Qatar,received the MINI-U and PSST.Receiver Operating Characteristics(ROC)analyses provided the cut-off scores on the PSST using MINI-U as a gold standard.RESULTS All PSST ratings were higher in participants with positive responses on MINI-U.In addition,ROC analyses showed that all areas under the curves were significant with the cutoff scores on PSST.CONCLUSION This study confirms that the severity measures from PSST can recognize patients with moderate/severe PMS and PMDD who would benefit from immediate treatment. 展开更多
关键词 Premenstrual symptoms screening tool Premenstrual dysphoric disorder ARABS categorical vs dimensional classification
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On Edge Irregular Reflexive Labeling of Categorical Product of Two Paths
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作者 Muhammad Javed Azhar Khan Muhammad Ibrahim Ali Ahmad 《Computer Systems Science & Engineering》 SCIE EI 2021年第3期485-492,共8页
Among the huge diversity of ideas that show up while studying graph theory,one that has obtained a lot of popularity is the concept of labelings of graphs.Graph labelings give valuable mathematical models for a wide s... Among the huge diversity of ideas that show up while studying graph theory,one that has obtained a lot of popularity is the concept of labelings of graphs.Graph labelings give valuable mathematical models for a wide scope of applications in high technologies(cryptography,astronomy,data security,various coding theory problems,communication networks,etc.).A labeling or a valuation of a graph is any mapping that sends a certain set of graph elements to a certain set of numbers subject to certain conditions.Graph labeling is a mapping of elements of the graph,i.e.,vertex and for edges to a set of numbers(usually positive integers),called labels.If the domain is the vertex-set or the edge-set,the labelings are called vertex labelings or edge labelings respectively.Similarly,if the domain is V(G)[E(G)],then the labeling is called total labeling.A reflexive edge irregular k-labeling of graph introduced by Tanna et al.:A total labeling of graph such that for any two different edges ab and a'b'of the graph their weights has wt_(x)(ab)=x(a)+x(ab)+x(b) and wt_(x)(a'b')=x(a')+x(a'b')+x(b') are distinct.The smallest value of k for which such labeling exist is called the reflexive edge strength of the graph and is denoted by res(G).In this paper we have found the exact value of the reflexive edge irregularity strength of the categorical product of two paths (P_(a)×P_(b))for any choice of a≥3 and b≥3. 展开更多
关键词 Edge irregular reflexive labeling reflexive edge strength categorical product of two paths
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Categorical Effects in the Perception of Colour: Behavioral Evidence in Hue Search Method
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作者 Abdulrahman Saud Al-rasheed 《Psychology Research》 2014年第8期623-634,共12页
关键词 行为研究 颜色 搜索方法 证据 感知 分类 阿拉伯语 阅读器
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An Improved K-means Algorithm for Clustering Categorical Data 被引量:1
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作者 Ming Lei Pilian He Zhichao Li 《通讯和计算机(中英文版)》 2006年第8期20-24,共5页
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The Grammatical Categorization of Mandarin在/zài:Spatiality,Temporality and Semantic Construal
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作者 LIU Xing 《Journal of Literature and Art Studies》 2023年第4期295-303,共9页
Mandarin在(pinyin:zài)is the most frequently used character in representing spatial and temporal relationship.Current studies mostly focus on its lexical meaning and syntactic structure while cognitive features o... Mandarin在(pinyin:zài)is the most frequently used character in representing spatial and temporal relationship.Current studies mostly focus on its lexical meaning and syntactic structure while cognitive features of its grammatical categories have been neglected.This paper investigates into the categorization of zài by conducting a morphosyntactic test among College English majors in China.The results show that:prototypes are organizing the grammatical categories of zài at all levels in terms of intra-categorial gradience;the semantic construal of zài construction could significantly influence the accuracy of the grammatical categorization of zài;the syntactic structure can provide viable cue for the identification of grammatical categories of zài;spatiality,temporality and the status of existing are three essential semantic features encoded by zài,the concurrence of which leads to various degree of inter-categorial vagueness,indicating a conflict between the rigid grammatical classification and the indeterminate nature of the grammatical functions of zai,suggesting the necessity to reconsider the efficacy of applying indiscriminately the Anglo-Saxon grammar into the study of Chinese spatial-temporal constructions. 展开更多
关键词 Mandarin zài grammatical categorization TEMPORALITY SPATIALITY semantic construal
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A Study on Second Language Vocabulary Acquisition Under the Categorization Theory
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作者 Ting Xiao 《Journal of Contemporary Educational Research》 2023年第12期142-150,共9页
In cognitive linguistics,debates on the status and functions of categorization have been a heated issue.In semantics and second language acquisition,scholars have discussed and achieved vocabulary acquisition from dif... In cognitive linguistics,debates on the status and functions of categorization have been a heated issue.In semantics and second language acquisition,scholars have discussed and achieved vocabulary acquisition from different perspectives and academic levels.Vocabulary learning exerts a fundamental role in second language vocabulary acquisition(SLVA),and it is closely related to learners’cognitive competence.However,studies on second language vocabulary acquisition under the categorization theory in cognitive linguistics have received less attention from linguists when compared with other studies.This paper employs two representative dimensions,the basic-level effect and the prototype effect,under the categorization theory to further delve into the implications on second language vocabulary acquisition.This article first provides a comprehensive introduction to the nature and the approaches of the categorization theory,and then analyzes the relations and implications for second language vocabulary acquisition under the categorization theory from the perspective of the basic-level and the prototype effects.The research results showed that the basic-level effect on SLVA is mainly on the classification of word categories distinguished from the superordinate and subordinate categories,while the prototype effect is more on understanding the complexity and use of word meaning. 展开更多
关键词 categorIZATION Second language vocabulary acquisition Basic-level PROTOTYPE
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论客体对数据基本产权和分类确权的决定作用 被引量:6
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作者 刘士国 《政法论丛》 CSSCI 北大核心 2024年第1期69-80,共12页
数据二十条构建了基本数据产权,但要进一步确权立法,必须依据数据关系客体的不同对数据基本产权作出总体规定,并应根据客体类型作出分别规定。数据及其产品是新型民事关系客体,可被多人同时使用,其财产关系依合同产生具有相对性,这一客... 数据二十条构建了基本数据产权,但要进一步确权立法,必须依据数据关系客体的不同对数据基本产权作出总体规定,并应根据客体类型作出分别规定。数据及其产品是新型民事关系客体,可被多人同时使用,其财产关系依合同产生具有相对性,这一客观规律决定数据产权为不同于所有权的有限产权。数据产权包括人格性权利和财产性权利,财产性权利以人格性权利为基础。数据确权立法的基本框架包括数据流通中当事人享有的数据持有权、加工使用权、数据产品经营权等基本数据财产权,著作类电子产品当事人的权利,数据直接生成产品当事人的权利,货币结算与比特币的规定,法院管辖、涉外法律适用、仲裁等内容。 展开更多
关键词 数据关系客体 基本产权 分类确权 决定作用
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定向·定位·定型·定力:分类评价与地方应用型本科高校的实践与超越 被引量:1
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作者 许文静 田桂芬 《淮阴工学院学报》 CAS 2024年第3期66-73,共8页
分类评价作为重要的政策工具,在地方应用型本科高校定向、定位、定型以及形成定力过程中发挥了重要引导作用。但总体而言,政府定类基础上的“选位评价”、规范性基础上的“竞争性评价”、多元数据基础上的“单一性评价”等分类评价举措... 分类评价作为重要的政策工具,在地方应用型本科高校定向、定位、定型以及形成定力过程中发挥了重要引导作用。但总体而言,政府定类基础上的“选位评价”、规范性基础上的“竞争性评价”、多元数据基础上的“单一性评价”等分类评价举措具有明显的管理导向,在高等教育高质量发展的背景下,政府应从“管理者”转向“促进者”,评价依据应从“断面数据”转向“成长数据”,评价过程应从“群体画像”转向“个案剖析”。当前,要重点关注在分类管理政策基础上,完善间接制度环境;在横向类型维度基础上,纵向划分发展阶段;在多主体参与基础上,强化协同创新。 展开更多
关键词 地方应用型本科高校 分类评价 大学转型
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