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相关论文: Efficient Estimation of the Value of Information i…

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The Expected Value of Sample Information (EVSI) is used to calculate the economic value of a new research strategy. While this value would be important to both researchers and funders, there are very few practical applications of the EVSI.…

统计理论 · 数学 2017-09-08 Anna Heath , Ioanna Manolopoulou , Gianluca Baio

Investing efficiently in future research to improve policy decisions is an important goal. Expected Value of Sample Information (EVSI) can be used to select the specific design and sample size of a proposed study by assessing the benefit of…

We study Monte Carlo estimation of the expected value of sample information (EVSI) which measures the expected benefit of gaining additional information for decision making under uncertainty. EVSI is defined as a nested expectation in which…

数值分析 · 数学 2020-10-05 Tomohiko Hironaka , Michael B. Giles , Takashi Goda , Howard Thom

In this paper we develop a very efficient approach to the Monte Carlo estimation of the expected value of partial perfect information (EVPPI) that measures the average benefit of knowing the value of a subset of uncertain parameters…

数值分析 · 数学 2019-12-09 Michael B. Giles , Takashi Goda

Background: Due to the finite size of the development sample, predicted probabilities from a risk prediction model are inevitably uncertain. We apply Value of Information methodology to evaluate the decision-theoretic implications of…

应用统计 · 统计学 2022-04-15 Mohsen Sadatsafavi , Tae Yoon Lee , Paul Gustafson

Objectives: Value of information (VOI) analyses can help policy-makers make informed decisions about whether to conduct and how to design future studies. Historically, a computationally expensive method to compute the Expected Value of…

The expected value of partial perfect information (EVPPI) denotes the value of eliminating uncertainty on a subset of unknown parameters involved in a decision model. The EVPPI can be regarded as a decision-theoretic sensitivity index, and…

统计计算 · 统计学 2016-04-06 Takashi Goda

Estimating information-theoretic quantities such as entropy and mutual information is central to many problems in statistics and machine learning, but challenging in high dimensions. This paper presents estimators of entropy via inference…

机器学习 · 统计学 2022-12-13 Feras A. Saad , Marco Cusumano-Towner , Vikash K. Mansinghka

Objective: The Expected Value of Sample Information (EVSI) quantifies the economic benefit of reducing uncertainty in a health economic model by collecting additional information. This has the potential to improve the allocation of research…

统计方法学 · 统计学 2018-04-26 Anna Heath , Gianluca Baio

Background: The Expected Value of Sample Information (EVSI) determines the economic value of any future study with a specific design aimed at reducing uncertainty in a health economic model. This has potential as a tool for trial design;…

统计方法学 · 统计学 2018-04-26 Anna Heath , Ioanna Manolopoulou , Gianluca Baio

Risk prediction models are often advertised as deterministic functions that map covariates to predicted risks. However, they are typically trained using finite samples, and as such, their predictions are inherently uncertain. This…

统计方法学 · 统计学 2025-06-03 Abdollah Safari , Paul Gustafson , Mohsen Sadatsafavi

Over recent years Value of Information analysis has become more widespread in health-economic evaluations, specifically as a tool to perform Probabilistic Sensitivity Analysis. This is largely due to methodological advancements allowing for…

应用统计 · 统计学 2015-07-10 Anna Heath , Ioanna Manolopoulou , Gianluca Baio

The European Medicines Agency has in recent years allowed licensing of new pharmaceuticals at an earlier stage in the clinical trial process. When trial evidence is obtained at an early stage, the events of interest, such as disease…

统计方法学 · 统计学 2021-03-26 Mathyn Vervaart , Mark Strong , Karl P. Claxton , Nicky J. Welton , Torbjørn Wisløff , Eline Aas

The aim of this paper is to describe a new an integrated methodology for project control under uncertainty. This proposal is based on Earned Value Methodology and risk analysis and presents several refinements to previous methodologies.…

风险管理 · 定量金融 2024-06-06 Fernando Acebes , M Pereda , David Poza , Javier Pajares , Jose M Galan

Background. The Expected Value of Sample Information (EVSI) measures the expected benefits that could be obtained by collecting additional data. Estimating EVSI using the traditional nested Monte Carlo method is computationally expensive…

统计方法学 · 统计学 2024-02-01 Linke Li , Hawre Jalal , Anna Heath

Background: The Expected Value of Sample Information (EVSI) calculates the value of collecting additional information through a study with a given design. Standard EVSI analyses assume that the treatment recommendations based on the new…

统计方法学 · 统计学 2021-05-14 Anna Heath

Computing value of information (VOI) is a crucial task in various aspects of decision-making under uncertainty, such as in meta-reasoning for search; in selecting measurements to make, prior to choosing a course of action; and in managing…

人工智能 · 计算机科学 2015-03-13 David Tolpin , Solomon Eyal Shimony

In designing external validation studies of clinical prediction models, contemporary sample size calculation methods are based on the frequentist inferential paradigm. One of the widely reported metrics of model performance is net benefit…

应用统计 · 统计学 2025-02-28 Mohsen Sadatsafavi , Andrew J Vickers , Tae Yoon Lee , Paul Gustafson , Laure Wynants

Background: Before being used to inform patient care, a risk prediction model needs to be validated in a representative sample from the target population. The finite size of the validation sample entails that there is uncertainty with…

应用统计 · 统计学 2023-07-20 Mohsen Sadatsafavi , Tae Yoon Lee , Laure Wynants , Andrew Vickers , Paul Gustafson

Variational auto-encoders (VAE) are popular deep latent variable models which are trained by maximizing an Evidence Lower Bound (ELBO). To obtain tighter ELBO and hence better variational approximations, it has been proposed to use…

机器学习 · 统计学 2021-07-22 Achille Thin , Nikita Kotelevskii , Arnaud Doucet , Alain Durmus , Eric Moulines , Maxim Panov
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