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Theoretical implementation of prior knowledge in the design of a multi-scale prosthesis satisfaction questionnaire

机译:多尺度假体满意度问卷设计中先验知识的理论实现

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Background In product development for lower limb prosthetic devices, a set of special criteria needs to be met. Prosthetic devices have a direct impact on the rehabilitation process after an amputation with both perceived technological and psychological aspects playing an important role. However, available psychometric questionnaires fail to consider the important links between these two dimensions. In this article a probabilistic latent trait model is proposed with seven technical and psychological factors which measure satisfaction with the prosthesis. The results of a first study are used to determine the basic parameters of the statistical model. These distributions represent hypotheses about factor loadings between manifest items and latent factors of the proposed psychometric questionnaire. Methods A study was conducted and analyzed to form hypotheses for the prior distributions of the questionnaire’s measurement model. An expert agreement study conducted on 22 experts was used to determine the prior distribution of item-factor loadings in the model. Results Model parameters that had to be specified as part of the measurement model were informed prior distributions on the item-factor loadings. For the current 70 items in the questionnaire, each factor loading was set to represent the certainty with which experts had assigned the items to their respective factors. Considering only the measurement model and not the structural model of the questionnaire, 70 out of 217 informed prior distributions on parameters were set. Conclusion The use of preliminary studies to set prior distributions in latent trait models, while being a relatively new approach in psychological research, provides helpful information towards the design of a seven factor questionnaire that means to identify relations between technical and psychological factors in prosthetic product design and rehabilitation medicine.
机译:背景技术在用于下肢假体装置的产品开发中,需要满足一组特殊标准。假肢在截肢后对康复过程有直接影响,感知的技术和心理方面都起着重要的作用。但是,可用的心理测量问卷无法考虑这两个维度之间的重要联系。本文提出了一种概率潜在特征模型,该模型具有七个技术和心理因素来衡量对假体的满意度。首次研究的结果用于确定统计模型的基本参数。这些分布表示有关拟议的心理测验问卷的清单项目和潜在因素之间的因素负荷的假设。方法进行了一项研究并进行了分析,以形成问卷调查模型的先前分布的假设。对22位专家进行的专家协议研究用于确定模型中项目因子负荷的先前分布。结果预先指定为测量模型一部分的模型参数已被告知项目因子负荷的先前分布。对于调查表中的当前70个项目,设置每个因素负荷以表示专家将项目分配给各自因素的确定性。仅考虑测量模型而不考虑问卷的结构模型,在217个已知的参数先验分布中设置了70个。结论使用初步研究来设定潜在特征模型中的先验分布,虽然是心理学研究中的一种相对较新的方法,但可为设计七因素问卷提供有用的信息,该问卷旨在确定假体产品设计中技术和心理因素之间的关系。和康复医学。

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