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Causal relationships among demographic variables, life-change events, psychosocial functioning, and diabetic disease control.

机译:人口统计学变量,生活变化事件,社会心理功能和糖尿病疾病控制之间的因果关系。

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The study investigates how positive, negative, and neutral events affect diabetes control and whether a weighted or unweighted scale provides a better prediction of diabetes control. This study used linear structural relations (LISREL) to explore causal models of demographic variables, different categories of life-change events, and psychosocial functioning in predicting body weight and blood glucose levels in 213 patients with Non-Insulin-Dependent Diabetes Mellitus (NIDDM). This study also extends previous debates on the dimensionality, desirability, and scaling of life change events by examining the influences of various dimensions of life-change events.; Factor analysis was employed to identify four life-change event dimensions: personal and social activity change, work and financial change, family stability change, and family structure change. Life-change events were also categorized as positive, negative, and neutral depending on individual circumstances. Four causal models were analyzed: two using the weighted and unweighted four dimensions of life-change events and two using positive/negative/neutral life-change events. The causal relationships among demographic variables, life-change events, psychosocial functioning, and diabetic disease control were compared.; Results of this study indicated that patients differences in sex, age, income, and marital status lead to different life-change events. Life-change events have multidimensional characteristics. Only personal and social activity changes and work and financial changes affect body weight and blood glucose levels. Positive and negative events have different influences on diabetes control. Psychosocial functioning only mediated the influence of life-change events on blood glucose levels. Higher body weight, however, led to a lower psychosocial functioning. The weighted and unweighted life-change events indicated differences only on how life-change events are categorized. The weighted and unweighted four dimensions of life-change events models are identical; however, when the life change events were categorized as positive, negative, and neutral, the weighted and unweighted models differ.; In conclusion, different demographic variables lead to different life-change events. Work and financial changes and social activity changes have stronger effects on body weight control. Psychosocial functioning has the strongest effect on blood glucose control. Both body weight and psychosocial functioning are intervening variables in the process by which life-change events influence blood glucose levels.
机译:该研究调查了积极,消极和中性事件如何影响糖尿病控制,以及加权或不加权量表都能更好地预测糖尿病控制。这项研究使用线性结构关系(LISREL)探索人口统计学变量,不同类别的生活变化事件以及心理社会功能的因果模型,以预测213例非胰岛素依赖型糖尿病(NIDDM)患者的体重和血糖水平。通过研究生活变化事件各个方面的影响,本研究还扩展了先前关于生活变化事件的维度,可取性和规模的争论。因子分析被用来识别生活变化事件的四个维度:个人和社会活动变化,工作和财务变化,家庭稳定性变化和家庭结构变化。生活变化事件也根据个人情况分为积极,消极和中立。分析了四个因果模型:两个使用加权和不加权四个维度的生活变化事件,另外两个使用正/负/中性生活变化事件。比较了人口统计学变量,生活变化事件,社会心理功能和糖尿病疾病控制之间的因果关系。这项研究的结果表明,患者的性别,年龄,收入和婚姻状况的差异会导致不同的生活改变事件。生活变化事件具有多维特征。只有个人和社交活动的变化以及工作和财务的变化会影响体重和血糖水平。积极和消极事件对糖尿病的控制有不同的影响。社会心理功能仅介导生活变化事件对血糖水平的影响。然而,较高的体重导致较低的社会心理功能。加权和未加权的生活变化事件仅在对生活变化事件进行分类方面显示出差异。生命变化事件模型的加权和不加权四个维度是相同的。但是,当生活变化事件分为正面,负面和中立时,加权和未加权模型会有所不同。总之,不同的人口统计学变量会导致不同的生活变化事件。工作和财务变化以及社会活动变化对体重控制的影响更大。社会心理功能对血糖的控制作用最强。体重和社会心理功能都是生活变化事件影响血糖水平过程中的干预变量。

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