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What to do with Contradictory Data? Approaches to the Integration of Multiple Malingering Measures

机译:如何处理矛盾数据?多种恶意手段整合的方法

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This study describes the potential problems and possible solutions to the integration of multiple malingering measures. Multivariate prediction models, using both discriminant function analyses and regression tree approaches, are compared. Study measures, including an abbreviated version of the SIRS (SIRS-A), the MMPI-2, the TOMM and the VIP Verbal subtest, were administered to 29 community members instructed to malinger and 87 psychiatric patients instructed to respond honestly. Predictive accuracy varied substantially across measures and the correlations between tests ranged from .19 to .79. Further, 48% of the psychiatric sample were misclassified as malingering by at least one test and 46% of the malingering sample were classified as honest by at least one test; “unanimous” findings occurred in only half of the cases. Multivariate models identified the SIRS-A as the strongest predictor of malingering, but the MMPI-2, TOMM, and VIP provided significant contributions to these models. The implications of these findings for the problem of multiple, contradictory indicators in general, and the specific problems associated with clinical assessments of malingering in particular, are discussed.
机译:这项研究描述了整合多种恶意措施的潜在问题和可能的解决方案。比较了使用判别函数分析和回归树方法的多变量预测模型。研究措施,包括SIRS的缩写版本(SIRS-A),MMPI-2,TOMM和VIP Verbal子测验,被施用于29名指示患病的社区成员和87名接受诚实回答的精神病患者。预测准确度在各种度量之间有很大差异,并且测试之间的相关性介于0.19至.79之间。此外,至少有一项测试将48%的精神病学样本误认为是恶意行为,而至少一项测试将46%的恶意行为样本归为诚实。 “一致”的发现仅发生在一半的病例中。多元模型确定SIRS-A是最严重的恶意犯罪预测因素,但是MMPI-2,TOMM和VIP为这些模型做出了重要贡献。讨论了这些发现对总体上多个相互矛盾的指标的问题的影响,尤其是与恶意行为临床评估相关的具体问题。

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