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CS-7638 EXAMINATION STUDY SHEET 2026 QUESTIONS WITH ANSWERS GRADED A+

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CS-7638 EXAMINATION STUDY SHEET 2026 QUESTIONS WITH ANSWERS GRADED A+

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CS-7638 EXAMINATION STUDY SHEET 2026
QUESTIONS WITH ANSWERS GRADED A+



◉What is the role of the equations in the Kalman filter regarding
location and velocity? Answer: The equations propagate constraints
from observations of location to estimate the hidden variable of
velocity.


◉How do observable and hidden variables function in a Kalman
filter? Answer: Observable variables (like location) provide
information that helps estimate hidden variables (like velocity)
through correlation.


◉What is a key advantage of using Kalman filters in motion
estimation? Answer: Kalman filters are efficient for calculating
estimates of both observable and hidden variables in dynamic
systems.


◉What is the formula for predicting the next location in a Kalman
filter? Answer: The formula is x' = x + Δt * x, where x' is the
predicted location, x is the current location, and x is the velocity.

,◉What does a tilted Gaussian indicate in the context of Kalman
filters? Answer: A tilted Gaussian indicates a correlation between
location and velocity, reflecting uncertainty in both variables.


◉What does the covariance in a Kalman filter represent? Answer:
Covariance represents the uncertainty and correlation between the
estimated states (location and velocity).


◉What is the effect of multiple observations on the estimation of
hidden variables in Kalman filters? Answer: Multiple observations
improve the estimates of hidden variables by providing more data to
infer their values.


◉What is the significance of the major axis of the covariance
ellipsoid in Kalman filters? Answer: The major axis indicates the
direction of motion and the correlation between the estimated
states.


◉What is the implication of having a diagonal covariance in a
Kalman filter? Answer: A diagonal covariance indicates no
correlation between the states, leading to maximum uncertainty in
predictions.


◉How does the Kalman filter update its estimates after a new
measurement? Answer: It combines the prior estimates with the

, new measurement to refine the estimates of both location and
velocity.


◉What is the role of the prediction step in the Kalman filter?
Answer: The prediction step estimates future states based on
current estimates and assumed dynamics of the system.


◉What is the relationship between the Kalman filter and self-
driving cars? Answer: Kalman filters are used in self-driving cars to
estimate the locations and velocities of other vehicles based on
limited observations.


◉What does it mean if the covariance does not align strictly with the
principal axes? Answer: It indicates that there is correlation
between the states, affecting the predictions made by the filter.


◉What is a common error in understanding the Kalman filter's
predictions? Answer: A common error is assuming that predicted
Gaussians lie on a diagonal line instead of the correct horizontal line
for constant velocity.


◉What does the term 'states' refer to in the context of Kalman
filters? Answer: 'States' refer to the variables that reflect the
physical conditions of the system, such as location and velocity.

Información del documento

Subido en
29 de abril de 2026
Número de páginas
25
Escrito en
2025/2026
Tipo
Examen
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