To determine the effects of computer-based interventions aimed at reducing alcohol consumption in adult populations.
The review was undertaken following standard Cochrane and PRISMA guidance for systematic reviews. The literature was searched until December 2008, with no restrictions on language. Randomised trials with parallel comparator groups were identified in the form of published and unpublished data. Two authors independently screened abstracts and papers for inclusion. Data extraction and bias assessment was undertaken by one author and checked by a second author. Studies that measured total alcohol consumption and frequency of binge drinking episodes were eligible for inclusion in meta-analyses. A random-effects model was used to pool mean differences.
Twenty-four studies were included in the review (19 combined in meta-analyses). The meta-analyses suggested that computer-based interventions were more effective than minimally active comparator groups (e.g. assessment-only) at reducing alcohol consumed per week in student and non-student populations. However, most studies used the mean to summarise skewed data, which could be misleading in small samples. A sensitivity analysis of those studies that used suitable measures of central tendency found there was no difference between intervention and minimally active comparator groups in alcohol consumed per week by students. Few studies investigated non-student populations or compared interventions with active comparator groups.
Computer-based interventions may reduce alcohol consumption compared with assessment only the conclusion remains tentative because of methodological weaknesses in the studies.
Future research should consider that the distribution of alcohol consumption data is likely to be skewed and that appropriate measures of central tendency are reported.
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Future research should consider that the distribution of alcohol consumption data is likely to be skewed and that appropriate measures of central tendency are reported.
Read Full Abstract
Request Reprint E-Mail: z.khadjesari@ucl.ac.uk