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评估风险因素调查数据的质量:来自世界卫生组织莫尼卡项目的经验教训。

Assessing the quality of risk factor survey data: lessons from the WHO MONICA Project.

作者信息

Tolonen Hanna, Dobson Annette, Kulathinal Sangita

机构信息

Department of Epidemiology and Health Promotion, National Public Health Institute, Helsinki, Finland.

出版信息

Eur J Cardiovasc Prev Rehabil. 2006 Feb;13(1):104-14. doi: 10.1097/01.hjr.0000185974.36641.65.

Abstract

BACKGROUND AND PURPOSE

Survey data quality is a combination of the representativeness of the sample, the accuracy and precision of measurements, data processing and management with several subcomponents in each. The purpose of this paper is to show how, in the final risk factor surveys of the WHO MONICA Project, information on data quality were obtained, quantified, and used in the analysis.

METHODS AND RESULTS

In the WHO MONICA (Multinational MONItoring of trends and determinants in CArdiovascular disease) Project, the information about the data quality components was documented in retrospective quality assessment reports. On the basis of the documented information and the survey data, the quality of each data component was assessed and summarized using quality scores. The quality scores were used in sensitivity testing of the results both by excluding populations with low quality scores and by weighting the data by its quality scores.

CONCLUSIONS

Detailed documentation of all survey procedures with standardized protocols, training, and quality control are steps towards optimizing data quality. Quantifying data quality is a further step. Methods used in the WHO MONICA Project could be adopted to improve quality in other health surveys.

摘要

背景与目的

调查数据质量是样本代表性、测量的准确性和精确性、数据处理与管理(每个方面又包含若干子成分)的综合体现。本文旨在展示在世界卫生组织心血管疾病监测(MONICA)项目的最终危险因素调查中,数据质量信息是如何获取、量化并用于分析的。

方法与结果

在世界卫生组织心血管疾病监测(MONICA)项目中,有关数据质量成分的信息记录在回顾性质量评估报告中。基于记录的信息和调查数据,使用质量分数对每个数据成分的质量进行评估和总结。质量分数通过排除质量分数低的人群以及按质量分数对数据加权两种方式用于结果的敏感性测试。

结论

采用标准化方案、培训和质量控制对所有调查程序进行详细记录是优化数据质量的步骤。量化数据质量是更进一步的举措。世界卫生组织心血管疾病监测(MONICA)项目中使用的方法可用于提高其他健康调查的质量。

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