scholarly journals Random-Cluster Correlation Inequalities for Gibbs Fields

2018 ◽  
Vol 173 (2) ◽  
pp. 249-267
Author(s):  
Alberto Gandolfi
Author(s):  
Zainab Alimoradi ◽  
Nourossadat Kariman ◽  
Fazlollah Ahmadi ◽  
Masoumeh Simbar ◽  
Hamid AlaviMajd

Abstract Introduction The aim of this study was to design and evaluate the psychometric properties of an instrument for understanding female adolescents’ reproductive and sexual self-care behaviors. Methods A methodological study was conducted. In the qualitative phase, individual in-depth interviews were performed to develop the initial questionnaire. In the quantitative part, the psychometric properties of the questionnaire were evaluated. Findings The initial questionnaire with 128 items was reviewed by the research team and taking into account the cut-off point 1.5 for the item impact and 0.62 for the content validity ratio (CVR), the number of questions fell to 82 items. S-CVR and S-content validity index (CVI) rations were 0.83 and 0.91, respectively. Exploratory factor analysis led to 74 items in seven dimensions. The alpha Cronbach’s coefficient for the whole questionnaire was 0.895 and the intra-cluster correlation coefficient was 0.91. Conclusion The questionnaire developed in this study is reliable and valid for assessing female adolescents’ sexual and reproductive self-care.


2021 ◽  
Vol 13 (7) ◽  
pp. 3982
Author(s):  
Gloria Pérez de Albéniz-Garrote ◽  
Maria Begoña Medina-Gómez ◽  
Cristina Buedo-Guirado

The purpose of this study to analyse whether compulsive buying in teenagers is related to gender and alcohol and cannabis use in a sample of 573 students aged 14–17 from secondary education schools in Burgos (Spain) (M = 15.65; SD = 1.04). Random cluster sampling was performed to select the sample. The Compulsive Buying Questionnaire was used together with two extra promts: ‘Indicate how much alcohol you consume’ and ‘Indicate how much cannabis you take’. Descriptive statistics were used in data analysis, while MANOVA was used to study gender differences in alcohol and cannabis use, compulsive buying and their interaction. The results show higher scores for female compulsive buyers than for men, higher scores for alcohol and cannabis users’ compulsive buying than for non-users, respectively, and higher scores for female users than for male users. A certain interaction was also observed between alcohol and cannabis use. A higher alcohol consumption entailed a higher score in compulsive buying, with cannabis users who did not consume alcohol obtaining the highest scores. Thus, prevention programmes should consider teenagers’ gender and the risk of taking toxic substances.


2020 ◽  
Vol 102 (24) ◽  
Author(s):  
Geng-Li Zhang ◽  
Wen-Long Ma ◽  
Ren-Bao Liu
Keyword(s):  

2021 ◽  
pp. 174077452110208
Author(s):  
Elizabeth Korevaar ◽  
Jessica Kasza ◽  
Monica Taljaard ◽  
Karla Hemming ◽  
Terry Haines ◽  
...  

Background: Sample size calculations for longitudinal cluster randomised trials, such as crossover and stepped-wedge trials, require estimates of the assumed correlation structure. This includes both within-period intra-cluster correlations, which importantly differ from conventional intra-cluster correlations by their dependence on period, and also cluster autocorrelation coefficients to model correlation decay. There are limited resources to inform these estimates. In this article, we provide a repository of correlation estimates from a bank of real-world clustered datasets. These are provided under several assumed correlation structures, namely exchangeable, block-exchangeable and discrete-time decay correlation structures. Methods: Longitudinal studies with clustered outcomes were collected to form the CLustered OUtcome Dataset bank. Forty-four available continuous outcomes from 29 datasets were obtained and analysed using each correlation structure. Patterns of within-period intra-cluster correlation coefficient and cluster autocorrelation coefficients were explored by study characteristics. Results: The median within-period intra-cluster correlation coefficient for the discrete-time decay model was 0.05 (interquartile range: 0.02–0.09) with a median cluster autocorrelation of 0.73 (interquartile range: 0.19–0.91). The within-period intra-cluster correlation coefficients were similar for the exchangeable, block-exchangeable and discrete-time decay correlation structures. Within-period intra-cluster correlation coefficients and cluster autocorrelations were found to vary with the number of participants per cluster-period, the period-length, type of cluster (primary care, secondary care, community or school) and country income status (high-income country or low- and middle-income country). The within-period intra-cluster correlation coefficients tended to decrease with increasing period-length and slightly decrease with increasing cluster-period sizes, while the cluster autocorrelations tended to move closer to 1 with increasing cluster-period size. Using the CLustered OUtcome Dataset bank, an RShiny app has been developed for determining plausible values of correlation coefficients for use in sample size calculations. Discussion: This study provides a repository of intra-cluster correlations and cluster autocorrelations for longitudinal cluster trials. This can help inform sample size calculations for future longitudinal cluster randomised trials.


1998 ◽  
Vol 26 (3) ◽  
pp. 1139-1178 ◽  
Author(s):  
Timo Seppäläinen

2007 ◽  
Vol 8 (8) ◽  
pp. 1461-1467 ◽  
Author(s):  
Pierluigi Contucci ◽  
Joel Lebowitz

2012 ◽  
Vol 241-244 ◽  
pp. 1028-1032
Author(s):  
Li Wang ◽  
Qi Lin Zhu

In recent years, as the development of wireless sensor network, people do some deep researches on cluster-based protocol, most around the prolongation of the lifetime of WSN and decline of energy consumed by the sensors. This paper analyses of classical clustering routing protocol based on LEACH, aiming at the node energy foot presents energy improved clustering routing algorithm, the random cluster head selection algorithm of threshold to be changed, lowering the threshold, in the original threshold increases the node's remaining energy factor, reduces the communication load of cluster nodes, and simulation. The simulation results show that the LEACH-E improved algorithm, energy saving, reducing balance node energy consumption, effectively prolongs the network lifetime.


1975 ◽  
Vol 41 (1) ◽  
pp. 19-32 ◽  
Author(s):  
Francesco Guerra ◽  
Lon Rosen ◽  
Barry Simon

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