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Chunking as a rational strategy for lossy data compression in visual working memory

机译:分块是视觉工作内存中有损数据压缩的合理策略

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摘要

The nature of capacity limits for visual working memory has been the subject of an intense debate that has relied on models that assume items are encoded independently. Here we propose that instead, similar features are jointly encoded through a “chunking” process to optimize performance on visual working memory tasks. We show that such chunking can: 1) facilitate performance improvements for abstract capacity-limited systems, 2) be optimized through reinforcement, 3) be implemented by center-surround dynamics, and 4) increase effective storage capacity at the expense of recall precision. Human performance on a variant of a canonical working memory task demonstrated performance advantages, precision detriments, inter-item dependencies, and trial-to-trial behavioral adjustments diagnostic of performance optimization through center-surround chunking. Models incorporating center-surround chunking provided a better quantitative description of human performance in our study as well as in a meta-analytic dataset, and apparent differences in working memory capacity across individuals were attributable to individual differences in the implementation of chunking. Our results reveal a normative rationale for center-surround connectivity in working memory circuitry, call for re-evaluation of memory performance differences that have previously been attributed to differences in capacity, and support a more nuanced view of visual working memory capacity limitations: strategic tradeoff between storage capacity and memory precision through chunking contribute to flexible capacity limitations that include both discrete and continuous aspects.
机译:视觉工作记忆的容量限制的性质一直是激烈辩论的主题,该辩论依赖于假设项目是独立编码的模型。在这里,我们建议通过“分块”过程共同编码相似的功能,以优化视觉工作记忆任务的性能。我们展示了这样的分块可以:1)促进抽象的容量受限系统的性能改进,2)通过增强进行优化,3)通过中心环绕动态实现,以及4)以召回精度为代价提高有效存储容量。规范工作记忆任务的变体上的人类绩效展示了性能优势,精度损失,项目间依存关系以及通过围绕中心的分块对性能优化进行的从试验到试验的行为调整诊断。包含中心周围分块的模型在我们的研究以及元分析数据集中提供了更好的人类绩效定量描述,并且个体间工作记忆能力的明显差异归因于分块实施中的个体差异。我们的结果揭示了工作内存电路中中心周围连接的规范性原理,要求重新评估以前归因于容量差异的内存性能差异,并支持对视觉工作内存容量限制的更细微的看法:战略权衡通过分块实现存储容量与内存精度之间的差异会导致灵活的容量限制,包括离散和连续方面。

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