Información de la conferencia

ALT 2027: International Conference on Algorithmic Learning Theory

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Día de Entrega:
2026-10-12 Faltan 53 días
Fecha de Notificación:
2027-01-05
Fecha de conferencia:
2027-03-09
Ubicación:
Leiden, the Netherlands
Ediciones:
CCF: C   ICORE: B   QUALIS: B1   Vistas: 106193   Seguidores: 76   Asistentes: 24

Solicitud de Artículos

ALT 2027 (International Conference on Algorithmic Learning Theory) is a CCF C / ICORE B / QUALIS B1 conference held in Leiden, the Netherlands on 2027-03-09. The paper submission deadline is 2026-10-12. Acceptance notifications are sent on 2027-01-05.

The 38th International Conference on Algorithmic Learning Theory (ALT 2027) will be held March 9–12, 2027, in Leiden, the Netherlands. The conference is dedicated to all theoretical and algorithmic aspects of machine learning. We invite submissions on new or existing learning problems, including but not limited to the following topics: Design and analysis of learning algorithms Classical foundations of learning theory, including statistical, computational, algorithmic, and information-theoretic foundations Online learning, multi-agent learning, and game theory Optimization, including convex and nonconvex methods, implicit bias, and overparameterization Learning paradigms, including supervised, unsupervised, semi-supervised, active, and reinforcement learning Reinforcement learning, including classical control-theoretic perspectives, modern applications such as LLM post-training, and new algorithms Large language models, transformers, and related theoretical questions Theoretical perspectives on trustworthy AI and AI safety, including privacy, adaptive data analysis, fairness, and alignment Robustness, including training-data corruption, adversarial examples, and LLM jailbreaks Learning under distribution shift, including domain adaptation and out-of-distribution generalization Theoretical perspectives on deep learning, including approximation, generalization, and optimization for classical and modern architectures Statistics, including asymptotics, high-dimensional statistics, nonparametric methods, and causality Learning with algebraic or combinatorial structure Bayesian methods Kernel methods Interpretability and explainability Learning under algorithmic constraints, including distributed, communication-efficient, memory-efficient, federated, and streaming learning Learning with different data modalities, including time series, sequence-to-sequence mappings, and graph data Mathematical analysis of sampling methods, including diffusion models and other practical methods Despite the theoretical focus of the conference, authors are welcome to support their analysis with relevant empirical results. Accepted papers will be presented at the conference as full-length talks and published electronically in the Proceedings of Machine Learning Research (PMLR).
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Tasa de aceptación

Tasa de aceptación media: 41.1% en 10 años (2004–2021).

AñoEnviadosAceptadosAceptados(%)
20211574629.3%
20201283829.7%
2019783747.4%
2018953334.7%
2017743344.6%
2008463167.4%
2007502550%
2006532445.3%
2005983030.6%
2004912931.9%

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