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Contamination Bias in Linear Regressions

Social Science Research Network, 2021
We study regressions with multiple treatments and a set of controls that is flexible enough to purge omitted variable bias. We show these regressions generally fail to estimate convex averages of heterogeneous treatment effects—instead, estimates of each
Paul Goldsmith-Pinkham   +2 more
semanticscholar   +1 more source

Multiple Linear Regression

2011
The main purpose of this chapter is to predict the value of some variable Y based on a given set of variables X i where i = 1, 2, …, p − 1 and p is an integer larger than or equal to 2. The following example will be examined in detail throughout this chapter.
  +5 more sources

Multiple Linear Regression

2017
In the previous chapter, we discussed situations where we had only one independent variable (X ) and evaluated its relationship with a dependent variable (Y ). This chapter goes beyond that and deals with the analysis of situations where we have more than one X (predictor) variable, using a technique called multiple regression.
Paul D. Berger   +2 more
  +5 more sources

Multiple Linear Regression

2014
This chapter provides an overview of multiple linear regression, a statistical technique that predicts values of a quantitative dependent variable from values of two or more independent variables. By including more than one independent variable, a multiple linear regression can often account for more variability in the dependent variable than can a ...
William H. Holmes, William C. Rinaman
openaire   +2 more sources

Multiple Linear Regression

2012
Chapters 13 and 14 examined in detail the simple regression model with one independent variable (such as amount of fertilizer) and one dependent variable (such as yield of corn). In many cases, however, more than one factor can affect the outcome under study. In addition to fertilizer, rainfall and temperature certainly influence the yield of corn.
Cheng-Few Lee, John C. Lee, Alice C. Lee
  +4 more sources

Regression: multiple linear

International Journal of Injury Control and Safety Promotion, 2018
Simple linear regression models study the relationship between a single continuous dependent variable Y and one independent variable X (Bangdiwala, 2018).
openaire   +2 more sources

Multiple lineare Regression

2017
Sie lernen in Erweiterung der Ihnen bekannten einfachen linearen Regression, wie man aus den Daten einer Stichprobe eine lineare funktionale Beziehung zwischen einem abhangigen Merkmal und mehreren unabhangigen Merkmalen gewinnt. Sie haben verstanden, dass die grundsatzlichen Uberlegungen ganz weitgehend analog zum Fall der einfachen Regression sind ...
Thomas Schuster, Arndt Liesen
openaire   +1 more source

Multiple Linear Regression

1991
The multiple linear regression model is the most commonly applied statistical technique for relating a set of two or more variables. In Chapter 3 the concept of a regression model was introduced to study the relationship between two quantitative variables X and Y.
openaire   +1 more source

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