نتایج جستجو برای: robust optimization portfolio optimization epistemic uncertainty maximum likelihood estimation

تعداد نتایج: 1171072  

Journal: Money and Economy 2014

This paper presents an optimal portfolio selection approach based on value at risk (VaR), conditional value at risk (CVaR), worst-case value at risk (WVaR) and partitioned value at risk (PVaR) measures as well as calculating these risk measures. Mathematical solution methods for solving these optimization problems are inadequate and very complex for a portfolio with high number of assets. For t...

Journal: :European Journal of Operational Research 2010
Dashan Huang Shushang Zhu Frank J. Fabozzi Masao Fukushima

Robust optimization, one of the most popular topics in the field of optimization and control since the late 1990s, deals with an optimization problem involving uncertain parameters. In this paper, we consider the relative robust conditional value-at-risk portfolio selection problem where the underlying probability distribution of portfolio return is only known to belong to a certain set. Our ap...

2011
Onur Dikmen Cédric Févotte

In this paper we describe a maximum likelihood approach for dictionary learning in the multiplicative exponential noise model. This model is prevalent in audio signal processing where it underlies a generative composite model of the power spectrogram. Maximum joint likelihood estimation of the dictionary and expansion coefficients leads to a nonnegative matrix factorization problem where the It...

2007
Gabriel Frahm GABRIEL FRAHM

Traditional portfolio optimization has often been criticized for not taking estimation risk into account. Estimation risk is mainly driven by the parameter uncertainty regarding the expected asset returns rather than their variances and covariances. The global minimum variance portfolio has been advocated by many authors as an appropriate alternative to the classical mean-variance optimal portf...

2005
Katrin Schöttle Ralf Werner

It is a matter of common knowledge that traditional Markowitz optimization based on sample means and covariances performs poorly in practice. For this reason, diverse attempts were made to improve performance of portfolio optimization. In this paper, we investigate three popular portfolio selection models built upon classical meanvariance theory. The first model is an extension of the tradition...

Journal: :تحقیقات مالی 0
رضا راعی دانشیار دانشکده مدیریت دانشگاه تهران، ایران هدایت علی بیکی دانشجوی کارشناسی ارشد مدیریت مالی دانشکده مدیریت دانشگاه تهران

the markowitz’s optimization problem is considered as a standard quadratic programming problem that has exact mathematical solutions. considering real world limits and conditions, the portfolio optimization problem is a mixed quadratic and integer programming problem for which efficient algorithms do not exist. therefore, the use of meta-heuristic methods such as neural networks and evolutionar...

ژورنال: اقتصاد مالی 2020
محمدحسن ابراهیمی سروعلیا میثم امیری, هما هاشمی,

در مساله بهینه سازی پرتفوی ، مدل مارکویتز همچنان به عنوان رویکرد غالب شناخته شده است اما چون محدودیت هایی که در دنیای واقعی نظیر محدودیت تعدادداراییهای سبد یا حداقل و حداکثر مقدار هریک از داراییها در این مدل درنظر گرفته نشده است، این مدل در حل مسائل دنیای واقعی بعضا ناتوان می باشد. به همین دلیل استفاده از الگوریتم های فراابتکاری با توجه به ویژگی های منعطفی که دارند میتوانند مفید واقع شوند. در ...

In this paper, a bi-objective pharmaceutical supply chain network under uncertainty demand and transportation costs is modeled and developed. To control the uncertainty parameters, the robust optimization method is considering. The main objective of this paper determines the number and location of potential facilities such as drug manufacture centers and drug distribution centers by considering...

Journal: :JCS 2014
Mohsen Gharakhani Forough Zarea Fazlelahi Seyed Jafar Sadjadi

Index tracking is an investment approach where the primary objective is to keep portfolio return as close as possible to a target index without purchasing all index components. The main purpose is to minimize the tracking error between the returns of the selected portfolio and a benchmark. In this study, quadratic as well as linear models are presented for minimizing the tracking error. The unc...

2016
Zukui Li Said Rahal

In this paper, we introduced a novel method for asymmetric uncertainty set construction based on the distributional information of sampling data. Deterministic robust counterpart optimization formulation is derived for D-norm induced uncertainty set with the proposed method. Furthermore, the asymmetric set induced robust optimization model is compared with the classical symmetric set induced ro...

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