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      Conversational artificial intelligence in the AEC industry: A review of present status, challenges and opportunities

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          Preferred reporting items for systematic reviews and meta-analyses: the PRISMA statement.

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            Interrater reliability: the kappa statistic

            The kappa statistic is frequently used to test interrater reliability. The importance of rater reliability lies in the fact that it represents the extent to which the data collected in the study are correct representations of the variables measured. Measurement of the extent to which data collectors (raters) assign the same score to the same variable is called interrater reliability. While there have been a variety of methods to measure interrater reliability, traditionally it was measured as percent agreement, calculated as the number of agreement scores divided by the total number of scores. In 1960, Jacob Cohen critiqued use of percent agreement due to its inability to account for chance agreement. He introduced the Cohen’s kappa, developed to account for the possibility that raters actually guess on at least some variables due to uncertainty. Like most correlation statistics, the kappa can range from −1 to +1. While the kappa is one of the most commonly used statistics to test interrater reliability, it has limitations. Judgments about what level of kappa should be acceptable for health research are questioned. Cohen’s suggested interpretation may be too lenient for health related studies because it implies that a score as low as 0.41 might be acceptable. Kappa and percent agreement are compared, and levels for both kappa and percent agreement that should be demanded in healthcare studies are suggested.
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              Photo-Realistic Single Image Super-Resolution Using a Generative Adversarial Network

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                Author and article information

                Journal
                Advanced Engineering Informatics
                Advanced Engineering Informatics
                14740346
                January 2023
                January 2023
                : 55
                : 101869
                Article
                10.1016/j.aei.2022.101869
                79da5d6d-e848-4d44-922b-d02a77760ff8
                © 2023

                https://www.elsevier.com/tdm/userlicense/1.0/

                http://creativecommons.org/licenses/by/4.0/

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