Results for 'Structural equation modelling'

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  1.  47
    Structural equation modelling of human judgement.Philip T. Smith, Frank McKenna, Claire Pattison & Andrea Waylen - 2001 - Thinking and Reasoning 7 (1):51 – 68.
    Structural equation modelling (SEM) is outlined and compared with two non-linear alternatives, artificial neural networks and ''fast and frugal'' models. One particular non-linear decision-making situation is discussed, that exemplified by a lexicographic semi-order. We illustrate the use of SEM on a dataset derived from 539 volunteers' responses to questions about food-related risks. Our conclusion is that SEM is a useful member of the armoury of techniques available to the student of human judgement: it subsumes several multivariate statistical (...)
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  2.  7
    Structural Equation Model Analysis of Religious Attitudes and Behaviors in Solving Agricultural Production Problems.Bahset Karsli & Süleyman Karaman - 2022 - Cumhuriyet İlahiyat Dergisi 26 (1):153-172.
    In the article, in which religious attitudes and behaviours in rural life and agricultural activities in Antalya have been studied, the religious mentality of the farmers engaged in agricultural activities has been analysed in the context of agricultural perceptions, agricultural production problems and religious attitudes scales. Human being has cultivated the soil to meet his most basic physiological needs, and the stages in these cultivation processes constitute the development stages of human history. In this way, it could be said that (...)
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  3.  13
    A Structural Equation Model of Perceived Autonomy Support and Growth Mindset in Undergraduate Students: The Mediating Role of Sense of Coherence.Chunhua Ma, Yongfeng Ma & Xiaoyu Lan - 2020 - Frontiers in Psychology 11.
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  4.  14
    Applying structural equation model to study the critical risks in business intelligence and analytical system implementation in Indian retail.D. Saravanan & K. Rajesh - 2018 - International Journal of Management Concepts and Philosophy 11 (2):190.
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  5.  6
    Score-Guided Structural Equation Model Trees.Manuel Arnold, Manuel C. Voelkle & Andreas M. Brandmaier - 2021 - Frontiers in Psychology 11.
    Structural equation model trees are data-driven tools for finding variables that predict group differences in SEM parameters. SEM trees build upon the decision tree paradigm by growing tree structures that divide a data set recursively into homogeneous subsets. In past research, SEM trees have been estimated predominantly with the R package semtree. The original algorithm in the semtree package selects split variables among covariates by calculating a likelihood ratio for each possible split of each covariate. Obtaining these likelihood (...)
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  6.  19
    Life Satisfaction: Testing a Structural Equation Model Based on Authenticity and Subjective Happiness.Hakan Sariçam - 2015 - Polish Psychological Bulletin 46 (2):278-284.
    The aim of this research is to examine the relationships between authenticity, subjective happiness, and life satisfaction. The participants were 347 university students. In this study, the Authenticity Scale, the Subjective Happiness Scale, and Satisfaction with Life Scale were used. The relationships between authenticity, subjective happiness and life satisfaction were examined using correlation analysis and Structural Equation Model. In correlation analysis, authentic living was found positively related to subjective happiness. On the other hand, self-alienation, accepting external influence was (...)
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  7.  28
    Learning Linear Causal Structure Equation Models with Genetic Algorithms.Shane Harwood & Richard Scheines - unknown
    Shane Harwood and Richard Scheines. Learning Linear Causal Structure Equation Models with Genetic Algorithms.
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  8.  11
    Analyzing average and conditional effects with multigroup multilevel structural equation models.Axel Mayer, Benjamin Nagengast, John Fletcher & Rolf Steyer - 2014 - Frontiers in Psychology 5.
    Conventionally, multilevel analysis of covariance (ML-ANCOVA) has been the recommended approach for analyzing treatment effects in quasi-experimental multilevel designs with treatment application at the cluster-level. In this paper, we introduce the generalized ML-ANCOVA with linear effect functions that identifies average and conditional treatment effects in the presence of treatment-covariate interactions. We show how the generalized ML-ANCOVA model can be estimated with multigroup multilevel structural equation models that offer considerable advantages compared to traditional ML-ANCOVA. The proposed model takes into (...)
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  9.  15
    Factors influencing microgame adoption among secondary school mathematics teachers supported by structural equation modelling-based research.Tommy Tanu Wijaya, Yiming Cao, Martin Bernard, Imam Fitri Rahmadi, Zsolt Lavicza & Herman Dwi Surjono - 2022 - Frontiers in Psychology 13.
    Microgames are rapidly gaining increased attention and are highly being considered because of the technology-based media that enhances students’ learning interests and educational activities. Therefore, this study aims to develop a new construct through confirmatory factor analysis, to comprehensively understand the factors influencing the use of microgames in mathematics class. Participants of the study were the secondary school teachers in West Java, Indonesia, which had a 1-year training in microgames development. We applied a quantitative approach to collect the data via (...)
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  10.  41
    Using path diagrams as a structural equation modelling tool.Peter Spirtes, Thomas Richardson, Chris Meek & Richard Scheines - unknown
    Linear structural equation models (SEMs) are widely used in sociology, econometrics, biology, and other sciences. A SEM (without free parameters) has two parts: a probability distribution (in the Normal case specified by a set of linear structural equations and a covariance matrix among the “error” or “disturbance” terms), and an associated path diagram corresponding to the functional composition of variables specified by the structural equations and the correlations among the error terms. It is often thought that (...)
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  11.  49
    Bayesian estimation and testing of structural equation models.Richard Scheines - unknown
    The Gibbs sampler can be used to obtain samples of arbitrary size from the posterior distribution over the parameters of a structural equation model (SEM) given covariance data and a prior distribution over the parameters. Point estimates, standard deviations and interval estimates for the parameters can be computed from these samples. If the prior distribution over the parameters is uninformative, the posterior is proportional to the likelihood, and asymptotically the inferences based on the Gibbs sample are the same (...)
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  12.  17
    Analysis of Influencing Factors of Teaching Effect Based on Structural Equation Model.Xin Xu - 2021 - Complexity 2021:1-10.
    Structural equation model is a multivariate statistical analysis method. It can not only test some unpredictable abstract ideas, but also design parameters for the causal connection model between independent variables and dependent variables. Among them, the analysis of various latent variables is based on the verification factor analysis technology. The research first collects various relevant data, derives the latent variables and measurement variables, then composes the measurement model, and then verifies the adaptability of the measurement model structure mode (...)
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  13.  81
    Using path diagrams as a structural equation modelling tool.Clark Glymour - unknown
    Linear structural equation models (SEMs) are widely used in sociology, econometrics, biology, and other sciences. A SEM (without free parameters) has two parts: a probability distribution (in the Normal case specified by a set of linear structural equations and a covariance matrix among the “error” or “disturbance” terms), and an associated path diagram corresponding to the causal relations among variables specified by the structural equations and the correlations among the error terms. It is often thought that (...)
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  14.  21
    The consequences of ignoring measurement invariance for path coefficients in structural equation models.Nigel Guenole & Anna Brown - 2014 - Frontiers in Psychology 5.
    We report a Monte Carlo study examining the effects of two strategies for handling measurement non-invariance – modeling and ignoring non-invariant items – on structural regression coefficients between latent variables measured with item response theory models for categorical indicators. These strategies were examined across four levels and three types of non-invariance – non-invariant loadings, non-invariant thresholds, and combined non-invariance on loadings and thresholds – in simple, partial, mediated and moderated regression models where the non-invariant latent variable occupied predictor, mediator, (...)
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  15.  40
    Directed cyclic graphs, conditional independence, and non-recursive linear structural equation models.Peter Spirtes - unknown
    Recursive linear structural equation models can be represented by directed acyclic graphs. When represented in this way, they satisfy the Markov Condition. Hence it is possible to use the graphical d-separation to determine what conditional independence relations are entailed by a given linear structural equation model. I prove in this paper that it is also possible to use the graphical d-separation applied to a cyclic graph to determine what conditional independence relations are entailed to hold by (...)
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  16.  73
    Complexity Relationship between Power and Trust in Hybrid Megaproject Governance: The Structural Equation Modelling Approach.Binchao Deng, Wenwen Xie, Fan Cheng, Jiaojiao Deng & Liang Long - 2021 - Complexity 2021:1-13.
    Intra-organization and inter-organization collaboration and governance are becoming increasingly important for megaprojects. Different stakeholders form intricate links in a network structure. This study explores the role and effect of hybrid governance on complex network projects, such as urban rail transit projects. This included conducting a questionnaire survey with 116 professionals from organizations involved in urban rail transit projects and adopting structural equation modelling to analyze the data. The results analyzed the levels of intra-organization and inter-organization trust under (...)
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  17.  22
    Density of resident farmers and rural inhabitants’ relationship to agriculture: operationalizing complex social interactions with a structural equation model.Ramona Bunkus, Ilkhom Soliev & Insa Theesfeld - 2020 - Agriculture and Human Values 37 (1):47-63.
    The presence of agriculture is diminishing in today’s society: it provides only a small percentage of jobs, and the number of visible farms that can provide exposure to agricultural processes is continuously decreasing. We hypothesize that the direct involvement with farm activities or interaction with farmers and visual appreciation of agricultural processes of all kinds, influences rural inhabitants’ relationship to agriculture. We assume that the latter plays a role in how far inhabitants are attached to their place, and more specifically, (...)
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  18.  9
    Increasing Bike-Sharing Users’ Willingness to Pay — A Study of China Based on Perceived Value Theory and Structural Equation Model.Hanning Song, Gaofeng Yin, Xihong Wan, Min Guo, Zhancai Xie & Jiafeng Gu - 2022 - Frontiers in Psychology 12.
    Bike sharing, as an innovative travel mode featured by mobile internet and sharing, offers a new transport mode for short trips and has a huge positive impact on urban transportation and environmental protection. However, bike-sharing operators face some operational challenges, especially in sustainable development and profitability. Studies show that the customers’ willingness to pay is a key factor affecting bike-sharing companies’ operating conditions. Based on the theories of perceived value, this study conducts an empirical analysis of factors that affect bike-sharing (...)
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  19.  13
    The Psychological Impacts of COVID-19 Home Confinement and Physical Activity: A Structural Equation Model Analysis.Xuehui Sang, Rashid Menhas, Zulkaif Ahmed Saqib, Sajid Mahmood, Yu Weng, Sumaira Khurshid, Waseem Iqbal & Babar Shahzad - 2021 - Frontiers in Psychology 11.
    BackgroundCOVID-19 break out has created panic and fear in society. A strict kind of lockdown was imposed in Wuhan, Hubei province of China. During home confinement due to lockdown, people face multidimensional issues. The present study explored the psychological impacts of COVID-19 home confinement during the lockdown period and Wuhan’s residents’ attitude toward physical activity.MethodsA cross-sectional online survey was conducted to collect the primary data according to the study objectives. The population was Wuhan residents who were in home confinement. A (...)
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  20.  5
    Predicting Students' Attitudes Toward Collaboration: Evidence From Structural Equation Model Trees and Forests.Jialing Li, Minqiang Zhang, Yixing Li, Feifei Huang & Wei Shao - 2021 - Frontiers in Psychology 12.
    Numerous studies have shed some light on the importance of associated factors of collaborative attitudes. However, most previous studies aimed to explore the influence of these factors in isolation. With the strategy of data-driven decision making, the current study applied two data mining methods to elucidate the most significant factors of students' attitudes toward collaboration and group students to draw a concise model, which is beneficial for educators to focus on key factors and make effective interventions at a lower cost. (...)
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  21.  28
    Empathy and cultural competence in clinical nurses: A structural equation modelling approach.Bahare Zarei, Mohaddeseh Salmabadi, Alireza Amirabadizadeh & Seyyed Abolfazl Vagharseyyedin - 2019 - Nursing Ethics 26 (7-8):2113-2123.
    Background:Forgiveness has the potential to resolve painful feelings arising from nurse–patient conflicts. It would be useful to evaluate direct and indirect important factors which are related to forgiveness in order to design interventions that try to facilitate forgiveness.Aim/objective:The purpose of this study was to evaluate the intermediating role of empathy in the cultural competence–forgiveness association among nurses using structural equation modeling.Research design:The research applied a cross-sectional correlational design.Participants and research context:The study included 380 nurses eight hospitals in southern (...)
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  22.  19
    Loneliness, Resilience, Mental Health, and Quality of Life in Old Age: A Structural Equation Model.Eva Gerino, Luca Rollè, Cristina Sechi & Piera Brustia - 2017 - Frontiers in Psychology 8.
  23.  7
    Applying Social Cognitive Theory in Predicting Physical Activity Among Chinese Adolescents: A Cross-Sectional Study With Multigroup Structural Equation Model.Jianxiu Liu, Muchuan Zeng, Dizhi Wang, Yao Zhang, Borui Shang & Xindong Ma - 2022 - Frontiers in Psychology 12.
    This cross-sectional study aimed to assess the applicability of social cognitive determinants among the Chinese adolescents and examine whether the predictability of the social cognitive theory model on physical activity differs across gender and urbanization. A total of 3,000 Chinese adolescents ranging between the ages of 12–15 years were randomly selected to complete a set of questionnaires. Structural equation modeling was applied to investigate the relationships between social cognitive variables and PA in the urbanization and gender subgroups. The (...)
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  24.  12
    Going beyond the DSM in predicting, diagnosing, and treating autism spectrum disorder with covarying alexithymia and OCD: A structural equation model and process-based predictive coding account.Darren J. Edwards - 2022 - Frontiers in Psychology 13.
    BackgroundThere is much overlap among the symptomology of autistic spectrum disorders, obsessive compulsive disorders, and alexithymia, which all typically involve impaired social interactions, repetitive impulsive behaviors, problems with communication, and mental health.AimThis study aimed to identify direct and indirect associations among alexithymia, OCD, cardiac interoception, psychological inflexibility, and self-as-context, with the DV ASD and depression, while controlling for vagal related aging.MethodologyThe data involved electrocardiogram heart rate variability and questionnaire data. In total, 1,089 participant's data of ECG recordings of healthy resting (...)
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  25.  3
    Measuring Information Systems Project Complexity: A Structural Equation Modelling Approach.Nazeer Joseph & Carl Marnewick - 2021 - Complexity 2021:1-15.
    Complexity has emerged as the new norm in the 21st century, and IS projects play a significant role in organisations to address various socio-political concerns. The purpose of this paper is to understand what are the relevant constructs for measuring IS project complexity. A model for measuring IS project complexity is developed using PLS-SEM. The model reveals that organisational complexity, technical complexity, and uncertainty underpin IS project complexity. Organisational complexity in terms of project team, stakeholder management, and strategic drive should (...)
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  26.  16
    The impact of corporate social responsibility on firm value: an application of structural equation modelling.Boonlert Jitmaneeroj - 2017 - International Journal of Business Governance and Ethics 12 (1):1.
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  27.  14
    The impact of corporate social responsibility on firm value: an application of structural equation modelling.Boonlert Jitmaneeroj - 2017 - International Journal of Business Governance and Ethics 12 (4):306.
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  28.  14
    A Comparative Study on the Performance of GSCA and CSA in Parameter Recovery for Structural Equation Models With Ordinal Observed Variables.Kwanghee Jung, Pavel Panko, Jaehoon Lee & Heungsun Hwang - 2018 - Frontiers in Psychology 9.
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  29.  16
    The Role of Character Strengths in Depression: A Structural Equation Model.Ata Tehranchi, Hamid T. Neshat Doost, Shole Amiri & Michael J. Power - 2018 - Frontiers in Psychology 9.
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  30.  7
    How does teacher-perceived principal leadership affect teacher self-efficacy between different teaching experiences through collaboration in China? A multilevel structural equation model analysis based on threshold.Zhiyong Xie, Rongxiu Wu, Hongyun Liu & Jian Liu - 2022 - Frontiers in Psychology 13.
    Teacher self-efficacy is one of the most critical factors influencing Students’ learning outcomes. Studies have shown that teacher-perceived principal leadership, teacher collaboration, and teaching experience are the critical factor that affects teacher self-efficacy. However, little is known about the mechanisms behind this relationship. This study examined whether teacher collaboration would mediate the relationship between teacher-perceived principal leadership and teacher self-efficacy, and the moderating role of teaching experience in the mediating process. With an analysis of a dataset from 14,121 middle school (...)
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  31. Structural equations and causation.Ned Hall - 2007 - Philosophical Studies 132 (1):109 - 136.
    Structural equations have become increasingly popular in recent years as tools for understanding causation. But standard structural equations approaches to causation face deep problems. The most philosophically interesting of these consists in their failure to incorporate a distinction between default states of an object or system, and deviations therefrom. Exploring this problem, and how to fix it, helps to illuminate the central role this distinction plays in our causal thinking.
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  32. Structural equations and causation: six counterexamples.Christopher Hitchcock - 2009 - Philosophical Studies 144 (3):391-401.
    Hall [(2007), Philosophical Studies, 132, 109–136] offers a critique of structural equations accounts of actual causation, and then offers a new theory of his own. In this paper, I respond to Hall’s critique, and present some counterexamples to his new theory. These counterexamples are then diagnosed.
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  33. Structural equations and beyond.Franz Huber - 2013 - Review of Symbolic Logic 6 (4):709-732.
    Recent accounts of actual causation are stated in terms of extended causal models. These extended causal models contain two elements representing two seemingly distinct modalities. The first element are structural equations which represent the or mechanisms of the model, just as ordinary causal models do. The second element are ranking functions which represent normality or typicality. The aim of this paper is to show that these two modalities can be unified. I do so by formulating two constraints under which (...)
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  34.  3
    Bifactor exploratory structural equation modeling: A meta-analytic review of model fit.Andreas Gegenfurtner - 2022 - Frontiers in Psychology 13.
    Multivariate behavioral research often focuses on latent constructs—such as motivation, self-concept, or wellbeing—that cannot be directly observed. Typically, these latent constructs are measured with items in standardized instruments. To test the factorial structure and multidimensionality of latent constructs in educational and psychological research, Morin et al. proposed bifactor exploratory structural equation modeling. This meta-analytic review aimed to estimate the extent to which B-ESEM model fit differs from other model representations, including confirmatory factor analysis, exploratory structural equation (...)
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  35.  18
    The Binge Eating Scale: Structural Equation Competitive Models, Invariance Measurement Between Sexes, and Relationships With Food Addiction, Impulsivity, Binge Drinking, and Body Mass Index.Tamara Escrivá-Martínez, Laura Galiana, Marta Rodríguez-Arias & Rosa M. Baños - 2019 - Frontiers in Psychology 10.
    Introduction: The Binge Eating Scale (BES) is a widely-used self-report questionnaire to identify compulsive eaters. However, research on the dimensions and psychometric properties of the BES is limited. Objective: The aim of this study was to examine the properties of the Spanish version of the BES. Method: Confirmatory Factor Analyses (CFAs) were carried out to verify the BES factor structure in a sample of Spanish college students (N = 428, 75.7% women; age range = 18–30). An invariance measurement routine was (...)
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  36.  86
    Interpreting Structural Equation Modeling Results: A Reply to Martin and Cullen.Paul A. Dion - 2008 - Journal of Business Ethics 83 (3):365-368.
    This article briefly review the fundamentals of structural equation modeling for readers unfamiliar with the technique then goes on to offer a review of the Martin and Cullen paper. In summary, a number of fit indices reported by the authors reveal that the data do not fit their theoretical model and thus the conclusion of the authors that the model was “promising” are unwarranted.
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  37.  14
    Structural Equation Modeling of Vocabulary Size and Depth Using Conventional and Bayesian Methods.Rie Koizumi & Yo In’Nami - 2020 - Frontiers in Psychology 11.
    In classifications of vocabulary knowledge, vocabulary size and depth have often been separately conceptualized (Schmitt, 2014). Although size and depth are known to be substantially correlated, it is not clear whether they are a single construct or two separate components of vocabulary knowledge (Yanagisawa & Webb, 2020). This issue has not been addressed extensively in the literature and can be better examined using structural equation modeling (SEM), with measurement error modeled separately from the construct of interest. The current (...)
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  38.  16
    Structural Equations and Analysis of Dispositions.Toby Friend - 2023 - Ergo: An Open Access Journal of Philosophy 10.
    I develop a new schema for analysis of dispositions in terms of structural equations. This schema provides the means to respond to a host of problems that have been posed for other proposals, including the problem of masks, alters, mimickers, tricks, conjunctive multi-track dispositions and dispositional degrees. In the development of this new schema, I will employ structural modelling techniques to highlight features of the problem cases, thereby revealing the utility of these techniques to ongoing discussion.
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  39.  6
    Analysis on the Influence Path of User Knowledge Withholding in Virtual Academic Community – Based on Structural Equation Method-Artificial Neural Network Model.Chengyi Le & Wenxin Li - 2022 - Frontiers in Psychology 13.
    The phenomenon of knowledge withholding is a vital issue that undermines knowledge sharing and innovation, hinders the development of offline and online organizations. Clarifying the relationship between influencing factors and knowledge withholding is significant to improve the phenomenon of knowledge withholding in offline and online organizations. Few types of research focus on the online virtual academic community and integrate the three factors of knowledge, individual, and environment to research knowledge withholding. To solve the limitation, this research is based on sociology (...)
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  40.  6
    A Model of Perceived Co-creation Value in Tourism Service Setting: An Application of Structure Equation Modeling.Kefang Tao, Jiangeng Ye, Hanjie Xiao & Poju Chen - 2022 - Frontiers in Psychology 13.
    This study explores how the perceived co-creation values from tourists’ perspectives are applied in the customized tour arrangement service setting. The sequential qualitative and quantitative methods are adopted for this study. The initial qualitative method in terms of the proactive semi-structured interview is conducted to identify and explore the dimension of the PCV construct and to develop its measurement scale. The quantitative method by the structure equation model is employed for the proposed conceptual model fitness assessment and consolidation. Our (...)
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  41.  4
    Investigating the Effect of the State, Stability, and Change in Deep Approaches to Learning From Kindergarten to Third Grade: A Multilevel Structural Equation Modeling Indicator-Specific Growth Model Approach.Chung Chin Wu - 2022 - Frontiers in Psychology 13.
    Adopting deep approaches to learning can have a profound impact on learning outcomes. The extent of change in the learning approach could be attributed to the effect of contextual factors. After a substantive review, it was found that research interested in investigating the longitudinal effect of deep approaches to learning on learning outcomes were rarely directly concerned with the longitudinal state and trend of the approach itself. Moreover, the limitations of past analytical methods, has not been appropriately acknowledged. This study (...)
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  42.  4
    How Does Happiness Influence the Loyalty of Karate Athletes? A Model of Structural Equations From the Constructs: Consumer Satisfaction, Engagement, and Meaningful.Estela Núñez-Barriopedro, Pedro Cuesta-Valiño, Pablo Gutiérrez-Rodríguez & Rafael Ravina-Ripoll - 2021 - Frontiers in Psychology 12.
    Federations are concerned about attracting new sportsmen and sportswomen and increasing the number of members. The purpose of this research was to describe karate federations' strategies for attracting and retaining members through happiness. The analysis was carried out by designing a structural equation modeling, which allowed to analyze the main variables that influenced the happiness of the karate athlete and consequently to study their effect on people's loyalty to sports federations. In particular, Partial least squares SEM was applied (...)
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  43.  6
    Can hypnotic susceptibility be explained by bifactor models? Structural equation modeling of the Harvard group scale of hypnotic susceptibility – Form A.Anoushiravan Zahedi & Werner Sommer - 2022 - Consciousness and Cognition 99 (C):103289.
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  44.  25
    Evaluation of model fit in nonlinear multilevel structural equation modeling.Karin Schermelleh-Engel, Martin Kerwer & Andreas G. Klein - 2014 - Frontiers in Psychology 5.
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  45.  5
    A general non-linear multilevel structural equation mixture model.Augustin Kelava & Holger Brandt - 2014 - Frontiers in Psychology 5.
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  46.  10
    The Standardization of Linear and Nonlinear Effects in Direct and Indirect Applications of Structural Equation Mixture Models for Normal and Nonnormal Data.Holger Brandt, Nora Umbach & Augustin Kelava - 2015 - Frontiers in Psychology 6.
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  47. On this page.A. Structural Model Of Turnout & In Voting - 2011 - Emergence: Complexity and Organization 9 (4).
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  48.  77
    Studying Ethical Judgments and Behavioral Intentions Using Structural Equations: Evidence from the Multidimensional Ethics Scale.Nhung T. Nguyen & Michael D. Biderman - 2008 - Journal of Business Ethics 83 (4):627-640.
    The linkage between ethical judgment and ethical behavioral intention was investigated. The Multidimensional Ethics Scale (MES) was used to measure ethical judgment ratings of hypothetical behaviors in retail, sales, and automobile repair scenarios. Confirmatory factor analysis on a sample of 300 undergraduate business students showed that a model with three latent variables representing three correlated ethical dimensions of moral equity, relativism, and contractualism, three correlated scenario latent variables, and correlated residuals presented a good fit to the data. Further, structural (...)
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  49.  3
    A multigroup structural equation modeling analysis of students’ perception, motivation, and performance in computational thinking.Jiachu Ye, Xiaoyan Lai & Gary Ka Wai Wong - 2022 - Frontiers in Psychology 13.
    Students’ perceptions of learning are important predictors of their learning motivation and academic performance. Examining perceptions of learning has meaningful implications for instruction practices, while it has been largely neglected in the research of computational thinking. To contribute to the development of CT education, we explored the influence of students’ perceptions on their motivation and performance in CT acquisition and examined the gender difference in the structural model using a multigroup structural equation modeling analysis. Two hundred and (...)
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  50.  9
    Fusion Validity: Theory-Based Scale Assessment via Causal Structural Equation Modeling.Leslie A. Hayduk, Carole A. Estabrooks & Matthias Hoben - 2019 - Frontiers in Psychology 10:442079.
    Fusion validity assessments employ structural equation models to investigate whether an existing scale functions in accordance with theory. Fusion validity parallels criterion validity by depending on correlations with non-scale variables but differs from criterion validity because it requires at least one theorized effect of the scale, and because both the scale and scaled-items are included in the model. Fusion validity, like construct validity, will be most informative if the scale is embedded in as full a substantive context as (...)
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