Multifaceted aspects of chunking enable robust algorithms.
نویسندگان
چکیده
Sequence production tasks are a standard tool to analyze motor learning, consolidation, and habituation. As sequences are learned, movements are typically grouped into subsets or chunks. For example, most Americans memorize telephone numbers in two chunks of three digits, and one chunk of four. Studies generally use response times or error rates to estimate how subjects chunk, and these estimates are often related to physiological data. Here we show that chunking is simultaneously reflected in reaction times, errors, and their correlations. This multimodal structure enables us to propose a Bayesian algorithm that better estimates chunks while avoiding overfitting. Our algorithm reveals previously unknown behavioral structure, such as an increased error correlations with training, and promises a useful tool for the characterization of many forms of sequential motor behavior.
منابع مشابه
Multi-faceted aspects of chunking enable robust algorithms 1 Running head: ALGORITHM FOR CHUNKING INFERENCE Multi-faceted aspects of chunking enable robust algorithms
Sequence production tasks are a standard tool to analyze motor learning, consolidation, and habituation. As sequences are learned, movements are typically grouped into subsets or chunks. For example, most Americans memorize telephone numbers in two chunks of 3 digits, and one chunk of 4. Studies generally use response times or error rates to estimate how subjects chunk, and these estimates are ...
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عنوان ژورنال:
- Journal of neurophysiology
دوره 112 8 شماره
صفحات -
تاریخ انتشار 2014