Results 71 to 80 of about 16,361 (164)

Minimum Penalized ϕ-Divergence Estimation under Model Misspecification

open access: yesEntropy, 2018
This paper focuses on the consequences of assuming a wrong model for multinomial data when using minimum penalized ϕ -divergence, also known as minimum penalized disparity estimators, to estimate the model parameters.
M. Virtudes Alba-Fernández   +2 more
doaj   +1 more source

Complexity and Misspecification

open access: yes
We propose a tractable model of repeated decision problems that combines concern about model misspecification, as in robust control, with a complexity cost, such as Shannon entropy, that makes pessimistic beliefs trade off statistical plausibility against simplicity. In a static setting, stronger complexity aversion selects more concentrated worst-case
Fudenberg, Drew, Mudekereza, Florian
openaire   +2 more sources

Robust Portfolio Optimization with Environmental, Social, and Corporate Governance Preference

open access: yesRisks
This study addresses the crucial but under-explored topic of ambiguity aversion, i.e., model misspecification, in the area of environmental, social, and corporate governance (ESG) within portfolio decisions.
Marcos Escobar-Anel, Yiyao Jiao
doaj   +1 more source

Uncertainty quantification for misspecified machine learned interatomic potentials

open access: yesnpj Computational Materials
The use of high-dimensional regression techniques from machine learning has significantly improved the quantitative accuracy of interatomic potentials. Atomic simulations can now plausibly target quantitative predictions in a variety of settings, which ...
Danny Perez   +3 more
doaj   +1 more source

Newsvendor under Ambiguity and Misspecification

open access: yesManufacturing & Service Operations Management
We consider a newsvendor problem with unknown demand distribution, where we distinguish ambiguity under which the newsvendor does not differentiate demand distributions of common characteristics (e.g., mean and variance) and misspecification under which such characteristics might be misspecified (due to, e.g., estimation error and/or distribution shift)
Feng Liu   +3 more
openaire   +2 more sources

MULTIPARAMETRIC AND HIERARCHICAL SPATIAL AUTOREGRESSIVE MODELS: THE EVALUATION OF THE MISSPECIFICATION OF SPATIAL EFFECTS USING A MONTE CARLO SIMULATION

open access: yesActa Universitatis Lodziensis. Folia Oeconomica, 2014
The aim of this paper is to evaluate the spatial and hierarchical models for data generating processes with spatial heterogeneity and spatial dependence at the higher level.
Edyta Łaszkiewicz
doaj  

A partially heterogeneous weighted fusion learning method for potential heterogeneous treatment effect in multi-site survival study

open access: yesBMC Medical Research Methodology
Background In multi-site studies in clinical practice, the treatment effects may exhibit potential heterogeneity across different sites. Additionally, propensity score methods used to adjust for confounding may suffer from model misspecification, which ...
Chen Huang   +3 more
doaj   +1 more source

Detecting heritable phenotypes without a model using fast permutation testing for heritability and set-tests

open access: yesNature Communications, 2018
Standard approaches for heritability and set testing in statistical genetics rely on parametric models that might not hold in reality and give inflated p-values.
Regev Schweiger   +9 more
doaj   +1 more source

Investigating item complexity as a source of cross-national DIF in TIMSS math and science

open access: yesLarge-scale Assessments in Education
Background Large scale international assessments depend on invariance of measurement across countries. An important consideration when observing cross-national differential item functioning (DIF) is whether the DIF actually reflects a source of bias, or ...
Qi Huang, Daniel M. Bolt, Weicong Lyu
doaj   +1 more source

DSGE Estimation Using Generalized Empirical Likelihood and Generalized Minimum Contrast

open access: yesEntropy
We investigate the performance of estimators of the generalized empirical likelihood and minimum contrast families in the estimation of dynamic stochastic general equilibrium models, with particular attention to the robustness properties under ...
Gilberto Boaretto   +1 more
doaj   +1 more source

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