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Field validation of secondary data sources: a novel measure of representativity applied to a Canadian food outlet database

机译:二级数据源的现场验证:应用于加拿大食品出口数据库的代表度的新度量

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摘要

BackgroundValidation studies of secondary datasets used to characterize neighborhood food businesses generally evaluate how accurately the database represents the true situation on the ground. Depending on the research objectives, the characterization of the business environment may tolerate some inaccuracies (e.g. minor imprecisions in location or errors in business names). Furthermore, if the number of false negatives (FNs) and false positives (FPs) is balanced within a given area, one could argue that the database still provides a “fair” representation of existing resources in this area. Yet, traditional validation measures do not relax matching criteria, and treat FNs and FPs independently. Through the field validation of food businesses found in a Canadian database, this paper proposes alternative criteria for validity.
机译:背景用于表征邻里食品企业的辅助数据集的验证研究通常会评估数据库代表地面真实情况的准确性。根据研究目标,对业务环境的描述可能会容忍某些不准确之处(例如,位置的不精确性或业务名称中的错误)。此外,如果假阴性(FN)和假阳性(FP)的数量在给定区域内达到平衡,则可能会认为该数据库仍然可以“公平”地表示该区域内现有资源。但是,传统的验证措施无法放宽匹配标准,并独立对待FN和FP。通过加拿大数据库中食品企业的现场验证,本文提出了有效性的替代标准。

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