ArticlePsychological medicine2022
Challenging the negative learning bias hypothesis of depression: reversal learning in a naturalistic psychiatric sample.
Article in Psychological medicine, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers.
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Who cites it
6 citing papers in PubMed.
- From uniform pharmacotherapy to precision psychiatry: reinforcement sensitivity associations with SSRI outcomes.Psychopharmacology · 2026Article
- Reviewing explore/exploit decision-making as a transdiagnostic target for psychosis, depression, and anxiety.Cognitive, affective & behavioral neuroscience · 2024Review
- Comparable roles for serotonin in rats and humans for computations underlying flexible decision-making.Neuropsychopharmacology : official publication of the American College of Neuropsychopharmacology · 2024Article
- Simulated synapse loss induces depression-like behaviors in deep reinforcement learning.Frontiers in computational neuroscience · 2024Article
- Inattentive responding can induce spurious associations between task behaviour and symptom measures.Nature human behaviour · 2023Article
- No Evidence for the Involvement of Cognitive Immunisation in Updating Beliefs About the Self in Three Non-Clinical Samples.Cognitive therapy and research · 2022Article
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Authors and funding
10 authors.
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Abstract
backgroundClassic theories posit that depression is driven by a negative learning bias. Most studies supporting this proposition used small and selected samples, excluding patients with comorbidities. However, comorbidity between psychiatric disorders occurs in up to 70% of the population. Therefore, the generalizability of the negative bias hypothesis to a naturalistic psychiatric sample as well as the specificity of the bias to depression, remain unclear. In the present study, we tested the negative learning bias hypothesis in a large naturalistic sample of psychiatric patients, including depression, anxiety, addiction, attention-deficit/hyperactivity disorder, and/or autism. First, we assessed whether the negative bias hypothesis of depression generalized to a heterogeneous (and hence more naturalistic) depression sample compared with controls. Second, we assessed whether negative bias extends to other psychiatric disorders. Third, we adopted a dimensional approach, by using symptom severity as a way to assess associations across the sample.
methodsWe administered a probabilistic reversal learning task to 217 patients and 81 healthy controls. According to the negative bias hypothesis, participants with depression should exhibit enhanced learning and flexibility based on punishment v. reward. We combined analyses of traditional measures with more sensitive computational modeling.
resultsIn contrast to previous findings, this sample of depressed patients with psychiatric comorbidities did not show a negative learning bias.
conclusionsThese results speak against the generalizability of the negative learning bias hypothesis to depressed patients with comorbidities. This study highlights the importance of investigating unselected samples of psychiatric patients, which represent the vast majority of the psychiatric population.
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