Selecting the Correct Number of Factors in Approximate Factor Models

Selecting the Correct Number of Factors in Approximate Factor Models
Title Selecting the Correct Number of Factors in Approximate Factor Models PDF eBook
Author Mehmet Caner
Publisher
Pages 0
Release 2014
Genre
ISBN

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This paper proposes a group bridge estimator to select the correct number of factors in approximate factor models. It contributes to the literature on shrinkage estimation and factor models by extending the conventional bridge estimator from a single equation to a large panel context. The proposed estimator can consistently estimate the factor loadings of relevant factors and shrink the loadings of irrelevant factors to zero with a probability approaching one. Hence, it provides a consistent estimate for the number of factors. We also propose an algorithm for the new estimator; Monte Carlo experiments show that our algorithm converges reasonably fast and that our estimator has very good performance in small samples. An empirical example is also presented based on a commonly used US macroeconomic data set.

Large Dimensional Factor Analysis

Large Dimensional Factor Analysis
Title Large Dimensional Factor Analysis PDF eBook
Author Jushan Bai
Publisher Now Publishers Inc
Pages 90
Release 2008
Genre Business & Economics
ISBN 1601981449

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Large Dimensional Factor Analysis provides a survey of the main theoretical results for large dimensional factor models, emphasizing results that have implications for empirical work. The authors focus on the development of the static factor models and on the use of estimated factors in subsequent estimation and inference. Large Dimensional Factor Analysis discusses how to determine the number of factors, how to conduct inference when estimated factors are used in regressions, how to assess the adequacy pf observed variables as proxies for latent factors, how to exploit the estimated factors to test unit root tests and common trends, and how to estimate panel cointegration models.

Time Series in High Dimension: the General Dynamic Factor Model

Time Series in High Dimension: the General Dynamic Factor Model
Title Time Series in High Dimension: the General Dynamic Factor Model PDF eBook
Author Marc Hallin
Publisher World Scientific Publishing Company
Pages 764
Release 2020-03-30
Genre Business & Economics
ISBN 9789813278004

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Factor models have become the most successful tool in the analysis and forecasting of high-dimensional time series. This monograph provides an extensive account of the so-called General Dynamic Factor Model methods. The topics covered include: asymptotic representation problems, estimation, forecasting, identification of the number of factors, identification of structural shocks, volatility analysis, and applications to macroeconomic and financial data.

Determining the Number of Factors in Approximate Factor Models

Determining the Number of Factors in Approximate Factor Models
Title Determining the Number of Factors in Approximate Factor Models PDF eBook
Author Jushan Bai
Publisher
Pages 0
Release 2002
Genre
ISBN

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In this paper we develop some econometric theory for factor models of large dimensions. The focus is the determination of the number of factors (r), which is an unresolved issue in the rapidly growing literature on multifactor models. We first establish the convergence rate for the factor estimates that will allow for consistent estimation of r. We then propose some panel criteria and show that the number of factors can be consistently estimated using the criteria. The theory is developed under the framework of large cross-sections (N) and large time dimensions (T). No restriction is imposed on the relation between N and T. Simulations show that the proposed criteria have good finite sample properties in many configurations of the panel data encountered in practice.

A Test for the Number of Factors in an Approximate Factor Model

A Test for the Number of Factors in an Approximate Factor Model
Title A Test for the Number of Factors in an Approximate Factor Model PDF eBook
Author Robert A. Korajczyk
Publisher
Pages 47
Release 2009
Genre
ISBN

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An important issue in applications of multifactor models of asset returns is the appropriate number of factors. Most extant tests for the number of factors are valid only for strict factor models, in which diversifiable returns are uncorrelated across assets. In this paper we develop a test statistic to determine the number of factors in an approximate factor model of asset returns, which does not require that diversifiable components of returns be uncorrelated across assets. We find evidence for one to six pervasive factors in the cross-section of New York Stock Exchange and American Stock Exchange stock returns.

A Testing Procedure for Determining the Number of Factors in Approximate Factor Models with Large Datasets

A Testing Procedure for Determining the Number of Factors in Approximate Factor Models with Large Datasets
Title A Testing Procedure for Determining the Number of Factors in Approximate Factor Models with Large Datasets PDF eBook
Author
Publisher
Pages
Release 2005
Genre
ISBN

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A test for the number of factors in an approximate factor model

A test for the number of factors in an approximate factor model
Title A test for the number of factors in an approximate factor model PDF eBook
Author Gregory Connor
Publisher
Pages 32
Release 1992
Genre
ISBN

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