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Econometrıcs I (ENG)Ünite 7 Soru-Cevap

Econometrıcs I (ENG) (IKT325U) soru-cevapları.

Why is model selection important?

The precision of prognostications, deductions, and interpretations hinges heavily upon the precise model elected. Hence, if this step is bypassed and analysis is commenced directly (which might encompass estimation or hypothesis testing, for instance), the fruits of one’s labor could potentially dissipate.

According to Hendry and Richard (1983), what are the criteria that a chosen model for empirical analysis should satisfy?

According to Hendry and Richard (1983), a model chosen for empirical analysis should satisfy the following criteria:

• Ensure admissibility of the data

• Align with established theory

• Contain weakly exogenous regressors

• Demonstrate parameter constancy

• Exhibit data coherency

• Be encompassing

During the development of an empirical model, what are the probable specification errors?

• Omission of relevant variable(s)

• Including unnecessary variable(s)

• Adoption of wrong functional form

• Errors of measurement

• Incorrect specification of the stochastic error term

Which methods and approaches are used for identifying specification errors?

To identify the specification errors one can choose either “mechanical choice methods” or “theory based approaches”.

What is the definiton of the problem of excluding a relevant variable or underspecifying the model?

The presence of omitted variables introducing bias in the OLS estimator. 

What happens when a researcher includes an irrelevant variable?

it leads to overfitting of the model

What are the steps for determining the presence of a quadratic or cubic relationship?

1) Conduct an F-test for the joint hypothesis.

2) If the null hypothesis is rejected (indicating evidence against linearity), proceed to perform individual t-tests for each coefficient. 

Why is it necessary to introduce the bias of measurement errors in this equation?

What equation (2.7) states is that instead of utilizing the true values of Yi and Xi , we substitute them with their proxies, Yi * and X1 * , which might contain measurement errors. Therefore, in Equation (2.7), we introduce the bias of measurement errors.

What is the difference between in-sample forecasting and out-of-sample forecasting?

In-sample forecasting provides insights into how well the chosen model fits the data within a specific sample. On the other hand, out-of-sample forecasting focuses on evaluating how effectively a fitted model predicts future values of the dependent variable, considering the given values of the independent variables.

What is goodness of fit?

Goodness of fit is a statistical measure that evaluates how effectively a model aligns with or represents the observed data. It quantifies the level of agreement between the predicted values generated by a model and the actual values observed within a dataset.

How is the assessment of goodness of fit done in the context of regression analysis?

By examination of residuals

What is the CV estimate of variance?

The CV estimate of variance is a method used to estimate the variance or error in a regression model by employing CV techniques.

What is the aim of the CV estimate of variance?

It aims to provide a more robust and accurate estimate of the model’s error compared to traditional methods.

How is CV estimate of variance calculated?

The CV estimate of variance is calculated by taking the average of the squared residuals across all folds and dividing it by the degrees of freedom. The degrees of freedom are typically adjusted to account for the number of model parameters estimated.

What does skewness measure?

Skewness measures the lack of symmetry in a distribution.

How is the skewness of Y is determined?

The skewness of Y is determined by its first, second, and third moments.

Why is the skewness zero in a symmetric distribution?

Because the probabilities of observing values of Y above and below its mean are equal.

In the figure above, what kind of skewness is shown?

Positive skewness

In the figure above, what kind of skewness is shown?

Negative skewness

What is kurtosis used for?

Measureing the extent to which the variance of the variable Y is influenced by extreme values.

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