Anterograde interference in multitask perceptual learning

Abstract Learning to perform multiple tasks robustly is a crucial facet of human intelligence, yet its mechanisms remain elusive. Here, we formulated four hypotheses concerning task interactions and investigated them by analyzing training sequence effects through a continual learning framework. Fort...

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Bibliographic Details
Main Authors: Jia Yang, Fang-Fang Yan, Tingting Wang, Zile Wang, Qingshang Ma, Jinmei Xiao, Xianyuan Yang, Zhong-Lin Lu, Chang-Bing Huang
Format: Article
Language:English
Published: Nature Portfolio 2025-05-01
Series:npj Science of Learning
Online Access:https://doi.org/10.1038/s41539-025-00312-7
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Summary:Abstract Learning to perform multiple tasks robustly is a crucial facet of human intelligence, yet its mechanisms remain elusive. Here, we formulated four hypotheses concerning task interactions and investigated them by analyzing training sequence effects through a continual learning framework. Forty-nine subjects learned seven tasks sequentially, each of the seven groups following a distinct sequence. Results showed that subjects learning a task later in a sequence exhibited poorer performance in six tasks (Contrast, Vernier, Face, Motion, Auditory, and N-back tasks, except for the Shape task) compared to those who learned this task earlier. Interestingly, sequence position had minimal impact on forgetting. A complementary dual-task experiment corroborated these findings. Through detailed analyses of session and block learning curves, we revealed task-specific anterograde interference, but no retrograde interference. These findings support the integrated reweighting theory and shed light on the meta-plasticity mechanism governing how human brain balances plasticity and stability.
ISSN:2056-7936