Data warehouses (DW) must integrate information from the different areas and sources of an organization in order to extract knowledge relevant to decision-making. The DW development is not an easy task, which is why v...Data warehouses (DW) must integrate information from the different areas and sources of an organization in order to extract knowledge relevant to decision-making. The DW development is not an easy task, which is why various design approaches have been put forward. These approaches can be classified in three different paradigms according to the origin of the information requirements: supply-driven, demand-driven, and hybrids of these. This article compares the methodologies for the multidimensional design of DW through a systematic mapping as research methodology. The study is presented for each paradigm, the main characteristics of the methodologies, their notations and problem areas exhibited in each one of them. The results indicate that there is no follow-up to the complete process of implementing a DW in either an academic or industrial environment;however, there is also no evidence that the attempt is made to address the design and development of a DW by applying and comparing different methodologies existing in the field.展开更多
An often unrecognized problem is the geology and glacial history paradigm’s inability to explain topographic map drainage system and erosional landform evidence, which means geology research studies rarely address th...An often unrecognized problem is the geology and glacial history paradigm’s inability to explain topographic map drainage system and erosional landform evidence, which means geology research studies rarely address that type of topographic map evidence. The problem originated in the late 19<sup>th</sup> century with William Morris Davis who is sometimes called the father of geomorphology and was one of the first geologists to interpret what in the late 19<sup>th</sup> century were newly available topographic maps. An 1889 Davis paper describes selected drainage system evidence observed on an advance copy of the 1890 Doylestown (Pennsylvania) topographic map and an 1892 Ward paper written after discussions with Davis describes additional selected drainage system evidence seen on the same map. Both papers fail to mention the majority of the Doylestown map’s drainage system features including most barbed tributaries, asymmetric drainage divides, and through (dry) valleys crossing major drainage divides. Had Davis used all of the map’s drainage system and erosional landform evidence he should have recognized the map evidence shows headward erosion of an east-oriented Neshaminy Creek valley captured southwest-oriented streams which headward erosion of the south-oriented Delaware River valley and its east-oriented tributary Tohickon Creek valley had beheaded. Consciously or unconsciously, Davis chose not to alert future investigators that Doylestown topographic map evidence did not support his yet-to-be-published Pennsylvania and New Jersey erosion history interpretations and instead Davis proceeded to develop and promote erosion history interpretations which the map evidence did not support.展开更多
科学数据的开放共享推动了学术界对于其公共学术价值的认识和利用,大数据、科研基础设施和科研环境信息化使得科学研究向第四研究范式转型,科学数据复用为新的科学发现和知识创新提供了有效途径。科学数据复用研究受到学术界的关注,相...科学数据的开放共享推动了学术界对于其公共学术价值的认识和利用,大数据、科研基础设施和科研环境信息化使得科学研究向第四研究范式转型,科学数据复用为新的科学发现和知识创新提供了有效途径。科学数据复用研究受到学术界的关注,相关研究成果在近20年来日益丰富,但该学科领域的知识体系尚未建立。本研究以Web of Science核心合集数据库作为数据采集来源,运用HistCite和CiteSpace软件绘制知识图谱并结合文本内容分析,梳理了科学数据复用研究的发展态势、演进过程及研究结构,研究发现:科学数据复用研究经历了萌芽阶段(2006年前)、发展阶段(2007—2014年)和爆发阶段(2015年至今),主要包括基本内涵、共享与复用关系、数据复用影响因素、学科领域研究以及数据复用伦理等五个方面的研究主题。基于此,本研究从保障平台、理论基础、研究分支和方法工具四个层面构建科学数据复用研究的知识体系,并提出科学数据公共学术价值、科学数据复用行为及机制、科学数据复用评价及影响力、科学数据复用政策和领域科学数据复用研究等几个亟须深入开展的研究主题。本研究为今后开展科学数据复用的相关研究提供理论和实践指导。展开更多
文摘Data warehouses (DW) must integrate information from the different areas and sources of an organization in order to extract knowledge relevant to decision-making. The DW development is not an easy task, which is why various design approaches have been put forward. These approaches can be classified in three different paradigms according to the origin of the information requirements: supply-driven, demand-driven, and hybrids of these. This article compares the methodologies for the multidimensional design of DW through a systematic mapping as research methodology. The study is presented for each paradigm, the main characteristics of the methodologies, their notations and problem areas exhibited in each one of them. The results indicate that there is no follow-up to the complete process of implementing a DW in either an academic or industrial environment;however, there is also no evidence that the attempt is made to address the design and development of a DW by applying and comparing different methodologies existing in the field.
文摘An often unrecognized problem is the geology and glacial history paradigm’s inability to explain topographic map drainage system and erosional landform evidence, which means geology research studies rarely address that type of topographic map evidence. The problem originated in the late 19<sup>th</sup> century with William Morris Davis who is sometimes called the father of geomorphology and was one of the first geologists to interpret what in the late 19<sup>th</sup> century were newly available topographic maps. An 1889 Davis paper describes selected drainage system evidence observed on an advance copy of the 1890 Doylestown (Pennsylvania) topographic map and an 1892 Ward paper written after discussions with Davis describes additional selected drainage system evidence seen on the same map. Both papers fail to mention the majority of the Doylestown map’s drainage system features including most barbed tributaries, asymmetric drainage divides, and through (dry) valleys crossing major drainage divides. Had Davis used all of the map’s drainage system and erosional landform evidence he should have recognized the map evidence shows headward erosion of an east-oriented Neshaminy Creek valley captured southwest-oriented streams which headward erosion of the south-oriented Delaware River valley and its east-oriented tributary Tohickon Creek valley had beheaded. Consciously or unconsciously, Davis chose not to alert future investigators that Doylestown topographic map evidence did not support his yet-to-be-published Pennsylvania and New Jersey erosion history interpretations and instead Davis proceeded to develop and promote erosion history interpretations which the map evidence did not support.
文摘科学数据的开放共享推动了学术界对于其公共学术价值的认识和利用,大数据、科研基础设施和科研环境信息化使得科学研究向第四研究范式转型,科学数据复用为新的科学发现和知识创新提供了有效途径。科学数据复用研究受到学术界的关注,相关研究成果在近20年来日益丰富,但该学科领域的知识体系尚未建立。本研究以Web of Science核心合集数据库作为数据采集来源,运用HistCite和CiteSpace软件绘制知识图谱并结合文本内容分析,梳理了科学数据复用研究的发展态势、演进过程及研究结构,研究发现:科学数据复用研究经历了萌芽阶段(2006年前)、发展阶段(2007—2014年)和爆发阶段(2015年至今),主要包括基本内涵、共享与复用关系、数据复用影响因素、学科领域研究以及数据复用伦理等五个方面的研究主题。基于此,本研究从保障平台、理论基础、研究分支和方法工具四个层面构建科学数据复用研究的知识体系,并提出科学数据公共学术价值、科学数据复用行为及机制、科学数据复用评价及影响力、科学数据复用政策和领域科学数据复用研究等几个亟须深入开展的研究主题。本研究为今后开展科学数据复用的相关研究提供理论和实践指导。