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Combining Clickstream Analyses and Graph-Modeled Data Clustering for Identifying Common Response Processes

Esther Ulitzsch, Qiwei He, Vincent Ulitzsch, Hendrik Molter, André Nichterlein, Rolf Niedermeier, Steffi Pohl

2021Psychometrika50 citationsDOIOpen Access PDF

Abstract

Complex interactive test items are becoming more widely used in assessments. Being computer-administered, assessments using interactive items allow logging time-stamped action sequences. These sequences pose a rich source of information that may facilitate investigating how examinees approach an item and arrive at their given response. There is a rich body of research leveraging action sequence data for investigating examinees' behavior. However, the associated timing data have been considered mainly on the item-level, if at all. Considering timing data on the action-level in addition to action sequences, however, has vast potential to support a more fine-grained assessment of examinees' behavior. We provide an approach that jointly considers action sequences and action-level times for identifying common response processes. In doing so, we integrate tools from clickstream analyses and graph-modeled data clustering with psychometrics. In our approach, we (a) provide similarity measures that are based on both actions and the associated action-level timing data and (b) subsequently employ cluster edge deletion for identifying homogeneous, interpretable, well-separated groups of action patterns, each describing a common response process. Guidelines on how to apply the approach are provided. The approach and its utility are illustrated on a complex problem-solving item from PIAAC 2012.

Topics & Concepts

ClickstreamComputer scienceCluster analysisData miningAction (physics)CategorizationSimilarity (geometry)Machine learningGraphArtificial intelligenceTheoretical computer scienceWorld Wide WebPhysicsWeb APIWeb modelingQuantum mechanicsImage (mathematics)Web serviceOnline Learning and AnalyticsMental Health Research Topics
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