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Book ChapterDOI

How to Write Up and Report PLS Analyses

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TLDR
A discussion of key differences and rationale that researchers can use to support their use of PLS is provided, followed by two examples from the discipline of Information Systems.
Abstract
The objective of this paper is to provide a basic framework for researchers interested in reporting the results of their PLS analyses. Since the dominant paradigm in reporting Structural Equation Modeling results is covariance based, this paper begins by providing a discussion of key differences and rationale that researchers can use to support their use of PLS. This is followed by two examples from the discipline of Information Systems. The first consists of constructs with reflective indicators (mode A). This is followed up with a model that includes a construct with formative indicators (mode B).

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The satisfaction of tourists using bicycle sharing: a structural equation model - the case of Hangzhou, China

TL;DR: The authors explored the impacts of bicycle sharing and the satisfaction of tourists using such services using Hangzhou as a case study and data derived from 552 tourist surveys, a structural equat...

Communication strategies to enhance health behaviour of women in Saudi Arabia

H Alzhrani
TL;DR: Statistics from the Saudi Health Council revealed a dramatic increase in breast cancer in women in Saudi Arabia in the past year.
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Managing brand identity: effects on the employees

TL;DR: In this article, the authors explored how the different dimensions of brand identity management influence employees' attitudinal and behavioral responses and found that the most influential dimension is the employee-client focus, which is a key variable to explain job satisfaction, word-of-mouth and brand citizenship behaviour.
References
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Book

Statistical Power Analysis for the Behavioral Sciences

TL;DR: The concepts of power analysis are discussed in this paper, where Chi-square Tests for Goodness of Fit and Contingency Tables, t-Test for Means, and Sign Test are used.
Journal ArticleDOI

Evaluating Structural Equation Models with Unobservable Variables and Measurement Error

TL;DR: In this paper, the statistical tests used in the analysis of structural equation models with unobservable variables and measurement error are examined, and a drawback of the commonly applied chi square test, in additit...
Journal ArticleDOI

Cross-Validatory Choice and Assessment of Statistical Predictions

TL;DR: In this article, a generalized form of the cross-validation criterion is applied to the choice and assessment of prediction using the data-analytic concept of a prescription, and examples used to illustrate the application are drawn from the problem areas of univariate estimation, linear regression and analysis of variance.
Journal ArticleDOI

A Partial Least Squares Latent Variable Modeling Approach for Measuring Interaction Effects: Results from a Monte Carlo Simulation Study and an Electronic-Mail Emotion/Adoption Study

TL;DR: A new latent variable modeling approach is provided that can give more accurate estimates of interaction effects by accounting for the measurement error that attenuates the estimated relationships.
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