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engin
Description
Wooldridge Source: Thada Chaisawangwong, a former graduate student at MSU, obtained these data for a term project in applied econometrics. They come from the Material Requirement Planning Survey carried out in Thailand during 1998. Data loads lazily.
Usage
data('engin')
Format
A data.frame with 403 observations on 17 variables:
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male: =1 if male
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educ: highest grade completed
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wage: monthly salary, Thai baht
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swage: starting wage
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exper: years on current job
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pexper: previous experience
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lwage: log(wage)
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expersq: exper^2
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highgrad: =1 if high school graduate
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college: =1 if college graduate
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grad: =1 if some graduate school
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polytech: =1 if a polytech
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highdrop: =1 if no high school degree
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lswage: log(swage)
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pexpersq: pexper^2
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mleeduc: male*educ
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mleeduc0: male*(educ - 14)
Notes
This is a nice change of pace from wage data sets for the United States. These data are for engineers in Thailand, and represents a more homogeneous group than data sets that consist of people across a variety of occupations. Plus, the starting salary is also provided in the data set, so factors affecting wage growth – and not just wage levels at a given point in time – can be studied. This is a good data set for a common term project that tests basic understanding of multiple regression and the interpretation of models with a logarithm for a dependent variable.
Used in Text: not used
Source
https://www.cengage.com/cgi-wadsworth/course_products_wp.pl?fid=M20b&product_isbn_issn=9781111531041
Examples
str(engin)