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Updated: Mar 25, 2026

Cross-Modal Multivariate Pattern Analysis
Published on: November 9, 2011
Reverse inference of memory retrieval processes underlying metacognitive monitoring of learning using multivariate
Peter Stiers1, Luciana Falbo1, Alexandros Goulas1
1Department of Neuropsychology and Psychopharmacology, Maastricht University, Maastricht, The Netherlands.
Abstract:
Monitoring of learning is only accurate at some time after learning. It is thought that immediate monitoring is based on working memory, whereas later monitoring requires re-activation of stored items, yielding accurate judgements. Such interpretations are difficult to test because they require reverse inference, which presupposes specificity of brain activity for the hidden cognitive processes. We investigated whether multivariate pattern classification can provide this specificity. We used a word recall task to create single trial examples of immediate and long term retrieval and trained a learning algorithm to discriminate them. Next, participants performed a similar task involving monitoring instead of recall. The recall-trained classifier recognized the retrieval patterns underlying immediate and long term monitoring and classified delayed monitoring examples as long-term retrieval. This result demonstrates the feasibility of decoding cognitive processes, instead of their content.
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