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Examen

COS2621 – Computer Organisation | January/February 2026 Supplementary Exam Memo (UNISA South Africa)

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This COS2621 Computer Organisation Supplementary Exam Memo is fully updated for the January/February 2026 UNISA examination period and aligned with University of South Africa undergraduate assessment standards. It covers all core examinable areas including computer architecture fundamentals, CPU organisation, instruction sets, memory hierarchy, input/output systems, performance measurement, and basic assembly-level concepts, with clear explanations tailored for exam application. The memo provides structured, concise, and exam-focused answers, making it an effective revision resource for second-year UNISA Computer Science students preparing for the COS2621 supplementary examination.

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Subido en
23 de enero de 2026
Número de páginas
26
Escrito en
2025/2026
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Examen
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ECS4863 – Advanced Econometrics | January/February
2026 Supplementary Exam Memo (UNISA South Africa)

,Question 1:
What is the main assumption underlying Ordinary Least Squares (OLS) estimation?
A) Homoscedasticity
B) Independence
C) Linearity
D) All of the above
Correct Option: D) All of the above
Rationale: OLS estimation relies on multiple assumptions, including linearity,
independence of errors, and homoscedasticity. All are essential for the unbiased and
efficient estimation of the regression parameters.


Question 2:
Which of the following is a consequence of multicollinearity in a regression model?
A) Biased coefficients
B) Inflated standard errors
C) Difficulty in determining individual variable effects
D) Increased R-squared
Correct Option: C) Difficulty in determining individual variable effects
Rationale: Multicollinearity affects the estimation of regression coefficients, making it
hard to ascertain the individual contribution of each predictor variable. While it does not
bias coefficients, it inflates standard errors.


Question 3:
In time series analysis, what does the term 'stationarity' refer to?
A) Constant mean and variance over time
B) Predictability of the series
C) The absence of trends
D) A and C only
Correct Option: D) A and C only
Rationale: Stationarity implies that a time series has a constant mean and variance
over time and does not exhibit trends. Non-stationary data can lead to unreliable
statistical inference.


Question 4:

, Which test would you use to check for heteroscedasticity in a regression model?
A) Breusch-Pagan test
B) Durbin-Watson test
C) Dickey-Fuller test
D) Chow test
Correct Option: A) Breusch-Pagan test
Rationale: The Breusch-Pagan test is specifically designed to detect the presence of
heteroscedasticity in the residuals of a regression model.


Question 5:
Instrumental Variables (IV) estimation is primarily used to address which issue in
regression analysis?
A) Measurement error
B) Endogeneity
C) Model specification
D) Autocorrelation
Correct Option: B) Endogeneity
Rationale: IV estimation is employed when model predictors are correlated with the
error term, leading to endogeneity, which can bias results. Instruments help provide
consistent estimates.
Question 6:
Which of the following tests is used to determine whether a time series is
stationary?
A) Breusch-Pagan test
B) Granger causality test
C) Augmented Dickey-Fuller test
D) Chow test
Correct Option: C) Augmented Dickey-Fuller test
Rationale: The Augmented Dickey-Fuller (ADF) test is commonly used to test for the
presence of a unit root, which indicates non-stationarity in a time series.


Question 7:
In a multiple regression model, what does the term 'adjusted R-squared' account
for?
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