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Answering the Call for a Standard Reliability Measure for Coding Data

Communication Methods and MeasuresPublished 1 April 2007
Andrew F. Hayes, Klaus Krippendorff
Citations4,002
SJR quartileQ1
SJR score2.29
SNIP3.05

TL;DR

This work proposes Krippendorff's alpha as the standard reliability measure, general in that it can be used regardless of the number of observers, levels of measurement, sample sizes, and presence or absence of missing data.

Abstract

In content analysis and similar methods, data are typically generated by trained human observers who record or transcribe textual, pictorial, or audible matter in terms suitable for analysis. Conclusions from such data can be trusted only after demonstrating their reliability. Unfortunately, the content analysis literature is full of proposals for so-called reliability coefficients, leaving investigators easily confused, not knowing which to choose. After describing the criteria for a good measure of reliability, we propose Krippendorff's alpha as the standard reliability measure. It is general in that it can be used regardless of the number of observers, levels of measurement, sample sizes, and presence or absence of missing data. To facilitate the adoption of this recommendation, we describe a freely available macro written for SPSS and SAS to calculate Krippendorff's alpha and illustrate its use with a simple example.

Keywords

Social SciencesDecision SciencesComputer Science