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Robin M. Kowalski Brooke Allison Gary W. Giumetti Julia Turner Elizabeth Whittaker Laura Frazee 《The Journal of social psychology》2014,154(4):278-282
The present study was designed to investigate the relationships among mindfulness, happiness, and the expression of pet peeves. Previous research has established a positive correlation between happiness and mindfulness, but, to date, no research has examined how each of these variables is related to complaining in the form of pet peeves. Four hundred ten male and female college students listed the pet peeves they had with a current or former relationship partner. They also completed measures of happiness, positive and negative affect, depression, mindfulness, relationship satisfaction, and satisfaction with life. Pet peeves were negatively correlated with relationship satisfaction, well-being, and mindfulness. Consistent with hypotheses, support was found for the mediating role of mindfulness in the relationship between happiness and pet peeves. 相似文献
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Keenan A. Pituch Megha Joshi Molly E. Cain Tiffany A. Whittaker Wanchen Chang Ryoungsun Park 《Multivariate behavioral research》2020,55(5):704-721
AbstractIn intervention studies having multiple outcomes, researchers often use a series of univariate tests (e.g., ANOVAs) to assess group mean differences. Previous research found that this approach properly controls Type I error and generally provides greater power compared to MANOVA, especially under realistic effect size and correlation combinations. However, when group differences are assessed for a specific outcome, these procedures are strictly univariate and do not consider the outcome correlations, which may be problematic with missing outcome data. Linear mixed or multivariate multilevel models (MVMMs), implemented with maximum likelihood estimation, present an alternative analysis option where outcome correlations are taken into account when specific group mean differences are estimated. In this study, we use simulation methods to compare the performance of separate independent samples t tests estimated with ordinary least squares and analogous t tests from MVMMs to assess two-group mean differences with multiple outcomes under small sample and missingness conditions. Study results indicated that a MVMM implemented with restricted maximum likelihood estimation combined with the Kenward–Roger correction had the best performance. Therefore, for intervention studies with small N and normally distributed multivariate outcomes, the Kenward–Roger procedure is recommended over traditional methods and conventional MVMM analyses, particularly with incomplete data. 相似文献
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When people engage in conversation, they tailor their utterances to their conversational partners, whether these partners are other humans or computational systems. This tailoring, or adaptation to the partner takes place in all facets of human language use, and is based on a mental model or a user model of the conversational partner. Such adaptation has been shown to improve listeners’ comprehension, their satisfaction with an interactive system, the efficiency with which they execute conversational tasks, and the likelihood of achieving higher level goals such as changing the listener’s beliefs and attitudes. We focus on one aspect of adaptation, namely the tailoring of the content of dialogue system utterances for the higher level processes of persuasion, argumentation and advice-giving. Our hypothesis is that algorithms that adapt content for these processes, according to a user model, will improve the usability, efficiency, and effectiveness of dialogue systems. We describe a multimodal dialogue system and algorithms for adaptive content selection based on multi-attribute decision theory. We demonstrate experimentally the improved efficacy of system responses through the use of user models to both tailor the content of system utterances and to manipulate their conciseness. 相似文献
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