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Examen

ISYE 6501 - Midterm 1 with actual remedy

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Vista previa 4 fuera de 40 páginas

ISYE 6501 - Midterm 1 with actual remedy

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ISYE 6501 Final TEST WITH CORRECT QUIZ AND
SOLUTIONS.

,1-norm - correct ans:Similar to rectilinear distance; measures the sum of the
lengths of each dimension of a vector from the origin. If 𝑧𝑧 1-1-norm - correct
ans:Similar to rectilinear distance; measures the sum of the lengths of each
dimension of a vector from the origin. norm - correct ans:Similar to rectilinear
distance; measures the sum of the lengths of each dimension of a vector
from the origin. = (𝑧𝑧1, 𝑧𝑧2, ... , 𝑧𝑧𝑚𝑚) is a vector in an 𝑚𝑚-dimensional
space, then its 1-norm is �|𝑧𝑧11-norm - correct ans:Similar to rectilinear
distance; measures the sum of the lengths of each dimension of a vector
from the origin. |1 + |𝑧𝑧2|1 + ⋯ + |𝑧𝑧𝑚𝑚| 1 1 = |𝑧𝑧1| + |𝑧𝑧2| + ⋯ + |𝑧𝑧| = ∑
|𝑧𝑧𝑖𝑖| 𝑚𝑚 𝑖𝑖=1 .

2-norm - correct ans:Similar to Euclidian distance; measures the straight-line
length of a vector from the origin. If 𝑧𝑧 = (𝑧𝑧1, 𝑧𝑧2, ... , 𝑧𝑧𝑚𝑚) is a vector in an
𝑚𝑚- dimensional space, then its 2-norm is �(𝑧𝑧1)2 + (𝑧𝑧2)2 + ⋯ + (𝑧𝑧𝑚𝑚)2 2
= �∑ (𝑧𝑧𝑖𝑖) 𝑚𝑚 2 𝑖𝑖=1 2 .



A/B testing - correct ans:Test of two alternatives to see if either one leads to
better outcomes.



Accuracy - correct ans:Fraction of data points correctly classified by a model;
equal to 𝑇𝑇𝑇𝑇+𝑇𝑇𝑇𝑇 𝑇𝑇𝑇𝑇+𝐹𝐹𝐹𝐹+𝑇𝑇𝑇𝑇+𝐹𝐹𝐹𝐹.



Action - correct ans:In ARENA, something that is done to an entity.



Additive seasonality - correct ans:Seasonal effect that is added to a baseline
value (for example, "the temperature in June is 10 degrees above the annual
baseline").



Adjusted R-squared/Adjusted R2 - correct ans:Variant of R2 that encourages
simpler models by penalizing the use of too many variables



AIC - correct ans:Akaike information criterion

,Akaike information criterion (AIC) - correct ans:Model selection technique
that trades off between model fit and model complexity. When comparing
models, the model with lower AIC is preferred. Generally penalizes
complexity less than BIC.



Algorithm - correct ans:Step-by-step procedure designed to carry out a task.



Analysis of Variance/ANOVA - correct ans:Statistical method for dividing the
variation in observations among different sources.



Approximate dynamic program - correct ans:Dynamic programming model
where the value functions are approximated.



Arc - correct ans:Connection between two nodes/vertices in a network. In a
network model, there is a variable for each arc, equal to the amount of flow
on the arc, and (optionally) a capacity constraint on the arc's flow. Also called
an edge.



Area under curve/AUC - correct ans:Area under the ROC curve; an estimate
of the classification model's accuracy. Also called concordance index.



ARIMA - correct ans:Autoregressive integrated moving average.



Arrival rate - correct ans:Expected number of arrivals of people, things, etc.
per unit time -- for example, the expected number of truck deliveries per
hour to a warehouse.



Assignment problem - correct ans:Network optimization model with two sets
of nodes, that finds the best way to assign each node in one set to each node
in the other set

, Attribute - correct ans:A characteristic or measurement - for example, a
person's height or the color of a car. Generally interchangeable with
"feature", and often with "covariate" or "predictor". In the standard tabular
format, a column of data.



Autoregression - correct ans:Regression technique using past values of time
series data as predictors of future values.



Autoregressive integrated moving average (ARIMA) - correct ans:Time series
model that uses differences between observations when data is
nonstationary. Also called Box-Jenkins



Backward elimination - correct ans:Variable selection process that starts with
all variables and then iteratively removes the least-immediately-relevant
variables from the model.



Balanced design - correct ans:Set of combinations of factor values across
multiple factors, that has the same number of runs for all combinations of
levels of one or more factors.



Balking - correct ans:An entity arrives to the queue, sees the size of the line
(or some other attribute), and decides to leave the system.



Bayes' theorem/Bayes' rule - correct ans:Fundamental rule of conditional
probability: 𝑃𝑃(𝐴𝐴|𝐵𝐵) = 𝑃𝑃(𝐵𝐵|𝐴𝐴)𝑃𝑃(𝐴𝐴) 𝑃𝑃(𝐵𝐵) .



Bayesian Information criterion (BIC) - correct ans:Model selection technique
that trades off model fit and model complexity. When comparing models, the
model with lower BIC is preferred. Generally penalizes complexity more than
AIC.

Información del documento

Subido en
26 de septiembre de 2026
Número de páginas
40
Escrito en
2026/2027
Tipo
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