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Indirect Observation in Everyday Contexts: Concepts and Methodological Guidelines within a Mixed Methods Framework

机译:日常情况下的间接观察:混合方法框架内的概念和方法学指南

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摘要

Indirect observation is a recent concept in systematic observation. It largely involves analyzing textual material generated either indirectly from transcriptions of audio recordings of verbal behavior in natural settings (e.g., conversation, group discussions) or directly from narratives (e.g., letters of complaint, tweets, forum posts). It may also feature seemingly unobtrusive objects that can provide relevant insights into daily routines. All these materials constitute an extremely rich source of information for studying everyday life, and they are continuously growing with the burgeoning of new technologies for data recording, dissemination, and storage. Narratives are an excellent vehicle for studying everyday life, and quantitization is proposed as a means of integrating qualitative and quantitative elements. However, this analysis requires a structured system that enables researchers to analyze varying forms and sources of information objectively. In this paper, we present a methodological framework detailing the steps and decisions required to quantitatively analyze a set of data that was originally qualitative. We provide guidelines on study dimensions, text segmentation criteria, ad hoc observation instruments, data quality controls, and coding and preparation of text for quantitative analysis. The quality control stage is essential to ensure that the code matrices generated from the qualitative data are reliable. We provide examples of how an indirect observation study can produce data for quantitative analysis and also describe the different software tools available for the various stages of the process. The proposed method is framed within a specific mixed methods approach that involves collecting qualitative data and subsequently transforming these into matrices of codes (not frequencies) for quantitative analysis to detect underlying structures and behavioral patterns. The data collection and quality control procedures fully meet the requirement of flexibility and provide new perspectives on data integration in the study of biopsychosocial aspects in everyday contexts.
机译:间接观察是系统观察中的最新概念。它主要涉及分析从自然环境中的言语行为的录音转录(例如,对话,小组讨论)间接产生的文本材料,或者直接从叙述(例如,投诉信,推文,论坛帖子)产生的文本材料。它也可能具有看似不显眼的对象,可以为日常工作提供相关的见解。所有这些材料构成了用于研究日常生活的极其丰富的信息资源,并且随着用于数据记录,传播和存储的新技术的兴起,它们也在不断增长。叙事是研究日常生活的绝佳工具,而量化则被认为是整合定性和定量元素的一种手段。但是,这种分析需要一个结构化的系统,使研究人员能够客观地分析各种形式和信息源。在本文中,我们提供了一个方法框架,详细介绍了定量分析一组原始数据所需的步骤和决策。我们提供有关研究范围,文本细分标准,临时观察工具,数据质量控制以及用于定量分析的文本编码和准备的指南。质量控制阶段对于确保从定性数据生成的代码矩阵是可靠的至关重要。我们提供了有关间接观察研究如何产生定量分析数据的示例,并描述了过程各个阶段可用的不同软件工具。所提出的方法是在一种特定的混合方法方法中构架的,该方法包括收集定性数据,然后将其转换为代码矩阵(不是频率),以进行定量分析以检测基础结构和行为模式。数据收集和质量控制程序完全满足灵活性的要求,并在日常情况下的生物心理社会方面的研究中为数据集成提供了新的视角。

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