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相关论文: Competing with stationary prediction strategies

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Thompson sampling has proven effective across a wide range of stationary bandit environments. However, as we demonstrate in this paper, it can perform poorly when applied to non-stationary environments. We attribute such failures to the…

机器学习 · 计算机科学 2025-05-06 Yueyang Liu , Xu Kuang , Benjamin Van Roy

The problem of continuous machine learning is studied. Within the framework of the game-theoretic approach, when for calculating the next forecast, no assumptions about the stochastic nature of the source that generates the data flow are…

机器学习 · 计算机科学 2023-10-31 Vladimir V'yugin , Vladimir Trunov

We present data-dependent learning bounds for the general scenario of non-stationary non-mixing stochastic processes. Our learning guarantees are expressed in terms of a data-dependent measure of sequential complexity and a discrepancy…

机器学习 · 计算机科学 2018-03-16 Vitaly Kuznetsov , Mehryar Mohri

How do decisions change with the economic environment and with time? This paper studies general nonstationary stopping problems and provides the methodological tools to answer these questions. First, we identify conditions that ensure a…

理论经济学 · 经济学 2024-08-01 Théo Durandard , Matteo Camboni

We consider a non-stationary variant of a sequential stochastic optimization problem, in which the underlying cost functions may change along the horizon. We propose a measure, termed variation budget, that controls the extent of said…

概率论 · 数学 2019-06-07 O. Besbes , Y. Gur , A. Zeevi

In statistical research there usually exists a choice between structurally simpler or more complex models. We argue that, even if a more complex, locally stationary time series model were true, then a simple, stationary time series model…

统计理论 · 数学 2019-08-16 Tobias Kley , Philip Preuß , Piotr Fryzlewicz

Most reinforcement learning methods are based upon the key assumption that the transition dynamics and reward functions are fixed, that is, the underlying Markov decision process is stationary. However, in many real-world applications, this…

机器学习 · 计算机科学 2020-09-23 Yash Chandak , Georgios Theocharous , Shiv Shankar , Martha White , Sridhar Mahadevan , Philip S. Thomas

Stationarity is a very general, qualitative assumption, that can be assessed on the basis of application specifics. It is thus a rather attractive assumption to base statistical analysis on, especially for problems for which less general…

统计理论 · 数学 2019-04-02 Daniil Ryabko

We consider a stationary process (with either discrete or continuous time) and find an adaptive approximating stationary process combining approximation quality and supplementary good properties that can be interpreted as additional…

概率论 · 数学 2020-02-19 Zakhar Kabluchko , Mikhail Lifshits

Many specific problems ranging from theoretical probability to applications in statistical physics, combinatorial optimization and communications can be formulated as an optimal tuning of local parameters in large systems of interacting…

概率论 · 数学 2020-01-23 Bartłomiej Błaszczyszyn , Christian Hirsch

In this paper, we study asynchronous stochastic approximation algorithms without communication delays. Our main contribution is a stability proof for these algorithms that extends a method of Borkar and Meyn by accommodating more general…

机器学习 · 计算机科学 2024-08-15 Huizhen Yu , Yi Wan , Richard S. Sutton

Static analyses overwhelmingly trade precision for soundness and automation. For this reason, their use-cases are restricted to situations where imprecision isn't prohibitive. In this paper, we propose and specify a static analysis that…

编程语言 · 计算机科学 2026-02-10 Abdullah H. Rasheed

In this study, we have developed a dynamic asset allocation investment strategy using reinforcement learning techniques. To begin with, we have addressed the crucial issue of incorporating non-stationarity of financial time series data into…

投资组合管理 · 定量金融 2023-11-10 Yasuhiro Nakayama , Tomochika Sawaki

Making calibrated online predictions is a central challenge in modern AI systems. Much of the existing literature focuses on fully adversarial environments where outcomes may be arbitrary, leading to conservative algorithms that can perform…

机器学习 · 计算机科学 2026-05-25 Junyan Liu , Haipeng Luo , Lillian J. Ratliff

Time series prediction covers a vast field of every-day statistical applications in medical, environmental and economic domains. In this paper we develop nonparametric prediction strategies based on the combination of a set of 'experts' and…

统计方法学 · 统计学 2008-01-03 Gérard Biau , Kevin Bleakley , László Györfi , György Ottucsák

In many real world chaotic systems, the interest is typically in determining when the system will behave in an extreme manner. Flooding and drought, extreme heatwaves, large earthquakes, and large drops in the stock market are examples of…

应用统计 · 统计学 2019-08-19 Michael LuValle

The classic newsvendor model yields an optimal decision for a ``newsvendor'' selecting a quantity of inventory, under the assumption that the demand is drawn from a known distribution. Motivated by applications such as cloud provisioning…

最优化与控制 · 数学 2025-02-21 Lin An , Andrew A. Li , Benjamin Moseley , R. Ravi

This paper introduces a new approach for continual planning and model learning in relational, non-stationary stochastic environments. Such capabilities are essential for the deployment of sequential decision-making systems in the uncertain…

人工智能 · 计算机科学 2024-07-24 Rushang Karia , Pulkit Verma , Alberto Speranzon , Siddharth Srivastava

Methods of estimation and forecasting for stationary models are well known in classical time series analysis. However, stationarity is an idealization which, in practice, can at best hold as an approximation, but for many time series may be…

统计方法学 · 统计学 2021-06-08 Shreyan Ganguly , Peter F. Craigmile

We study a special case of the problem of statistical learning without the i.i.d. assumption. Specifically, we suppose a learning method is presented with a sequence of data points, and required to make a prediction (e.g., a classification)…

机器学习 · 计算机科学 2018-05-22 Steve Hanneke , Liu Yang
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