An ontology on property for physical, chemical, and biological systems.

APMIS. Supplementum Pub Date : 2004-01-01
René Dybkaer
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Abstract

Current metrological literature, including the International vocabulary of basic and general terms in metrology (VIM 1993), presents a special language slowly evolved without consistent use of the procedures of terminological work; furthermore, nominal properties are excluded by definition. Both deficiencies create problems in fields, such as laboratory medicine, which have to report results of all types of property, preferably in a unified systematic format. The present text aims at forming a domain ontology around "property", with intensional definitions and systematic terms, mainly using the terminological tools--with some additions--provided by the International Standards ISO 704, 1087-1, and 10241. "System" and "component" are defined, "quantity" is discussed, and the generic concept "property" is given as 'inherent state- or process-descriptive feature of a system including any pertinent components'. Previously, the term 'kind-of-quantity' and quasi-synonyms have been used as primitives; the proposed definition of "kind-of-property" is 'common defining aspect of mutually comparable properties'. "Examination procedure", "examination method", "examination principle", and "examination" are defined, avoiding the term 'test'. The need to distinguish between instances of "characteristic", "property", "type of characteristic", "kind-of-property", and "property value" is emphasized; the latter is defined together with "property value scale". These fundamental concepts are presented in a diagram, and the effect of adding essential characteristics to give expanded definitions is exemplified. Substitution usually leads to unwieldy definitions, but reveals circularity as does exhaustive consecutive listing of defining concepts. The top concept may be generically divided according to many terminological dimensions, especially regarding which operators are allowed among the four sets =, not equal to; <, >; +, -; and x, :. The coordinate concepts defined are termed by the modifiers 'nominal', 'ordinal', 'differential', and 'rational' before '...property'. Other possibilities are given, based on the literature, especially the stepwise division into "nominal property" and "quantity"; "ordinal quantity" and "unitary quantity"; "differential unitary quantity" and "rational unitary quantity". As top concepts, , , , , and are i.a. divided homologously to . The term 'observation' and the modifiers 'qualitative', 'semi-quantitative', and 'quantitative' are avoided. "Metrological unit" and "system of metrological units" are defined together with a number of specific concepts. Some problems with characteristics of "SI unit" are discussed and an alternative system shown. The conceptions of "metrological dimension" are outlined, leading to a definition and specific concepts. The generally accepted IUPAC/IFCC syntax for designations of instantiated properties is 'System (specification)--Component(specification); kind-of-property (specification)', and' 'dedicatedkind-of-property" is defined as 'kind-of-property with given sort of system and any pertinent sorts of component'. The related systematic terms may be generated according to ENV 1614 using generative patterns from ENV 12264. The elements of the appellation and examination result of a singular rational property are diagrammed. Finally, the possibilities of representing properties and their results by the formalisms of relation and function from Set Theory and Object-Oriented Analysis are exemplified.

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关于物理、化学和生物系统属性的本体论。
目前的计量文献,包括国际计量基本术语和通用术语词汇(VIM 1993),呈现出一种特殊的语言,在没有一致使用术语工作程序的情况下缓慢演变;此外,根据定义,标称属性不包括在内。这两种缺陷都给检验医学等领域带来了问题,因为检验医学必须报告所有类型的结果,最好采用统一的系统格式。本文旨在围绕“属性”形成一个领域本体,具有内涵定义和系统术语,主要使用国际标准ISO 704, 1087-1和10241提供的术语工具(加上一些补充)。定义了“系统”和“组件”,讨论了“数量”,并给出了一般概念“属性”,即“包含任何相关组件的系统的固有状态或过程描述性特征”。以前,术语“数量种类”和准同义词被用作原语;拟议的“财产种类”的定义是“相互比较财产的共同定义方面”。界定“审查程序”、“审查方法”、“审查原则”、“审查”,避免使用“试验”一词。强调需要区分“特征”、“财产”、“特征类型”、“财产种类”和“财产价值”等实例;后者与“财产价值规模”一起定义。这些基本概念用图表表示,并举例说明添加基本特征以给出扩展定义的效果。替换通常会导致笨拙的定义,但会显示出循环性,就像定义概念的详尽连续列表一样。顶部概念可以根据许多术语维度进行一般划分,特别是关于四个集合中允许哪些操作符=,不等于;;+、-;x是。所定义的坐标概念是通过修饰语“标称的”、“序数的”、“微分的”和“有理数的”在“…属性”之前命名的。根据文献,给出了其他可能性,特别是逐步划分为“名义属性”和“数量”;“序数”与“酉数”;“微分酉量”和“有理酉量”。作为顶级概念,,,,,和在内部同源地被划分为。避免使用术语“观察”和修饰语“定性”、“半定量”和“定量”。“计量单位”和“计量单位制”连同一些具体概念一起被定义。讨论了“单位制”特性中的一些问题,并提出了一种替代系统。概述了“计量尺寸”的概念,给出了定义和具体概念。一般接受的IUPAC/IFCC用于实例化属性指定的语法是“系统(规范)—组件(规范);“属性类型(规格)”和“专用属性类型”被定义为“具有给定类型系统和任何相关类型组件的属性类型”。相关的系统术语可以根据ENV 1614使用来自ENV 12264的生成模式生成。对奇异有理性质的称谓要素和检验结果进行了图解。最后,举例说明了用集合论和面向对象分析中的关系和函数的形式化表示属性及其结果的可能性。
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