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Competition Dynamics Shape Algorithmic Phases of In-Context Learning
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In-Context Learning (ICL) has significantly expanded the general-purpose nature of large language models, allowing them to adapt to novel tasks using merely the inputted context. This has motivated a series of papers that analyze tractable synthetic domains and postulate precise mechanisms that may underlie ICL. However, the use of relatively distinct setups that often lack a sequence modeling nature to them makes it unclear how general the reported insights from such studies are. Motivated by this, we propose a synthetic sequence modeling task that involves learning to simulate a finite mixture of Markov chains. As we show, models trained on this task reproduce most well-known results on ICL, hence offering a unified setting for studying the concept. Building on this setup, we demonstrate we can explain a model's behavior by decomposing it into four broad algorithms that combine a fuzzy retrieval vs. inference approach with either unigram or bigram statistics of the context. These algorithms engage in a competition dynamics to dominate model behavior, with the precise experimental conditions dictating which algorithm ends up superseding others: e.g., we find merely varying context size or amount of training yields (at times sharp) transitions between which algorithm dictates the model behavior, revealing a mechanism that explains the transient nature of ICL. In this sense, we argue ICL is best thought of as a mixture of different algorithms, each with its own peculiarities, instead of a monolithic capability. This also implies that making general claims about ICL that hold universally across all settings may be infeasible.
Forward citations
Cited by 3 Pith papers
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Mechanistic Foundations of Goal-Directed Control
Context window k is the critical parameter for arbitration-gate formation in an embodied control architecture: no circuit below k≤4, resolved phase structure above k≥8, with EMA-like commitment dynamics.
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Sequential Correlations Change In-Context Learning: Effective Context Length and Architectural Mismatch
Within-context token correlations reduce ICL to an effective shorter i.i.d. context length, while query–context correlations lower error and favor softmax over linear attention.
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Distinct Computations Emerge From Compositional Curricula in In-Context Learning
When transformer models see easy component examples before a harder combined math problem in one prompt, they solve unseen versions of the combined problem and store intermediate steps internally, unlike models traine...
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