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This section includes 124 Mcqs, each offering curated multiple-choice questions to sharpen your Computer Science Engineering (CSE) knowledge and support exam preparation. Choose a topic below to get started.
51. |
Feature of ANN in which ANN creates its own organization or representation of information it receives during learning time is |
A. | adaptive learning |
B. | self organization |
C. | what-if analysis |
D. | supervised learning |
Answer» C. what-if analysis | |
52. |
There are also other operators, more linguistic in nature, called that can be applied to fuzzy set theory. |
A. | hedges |
B. | lingual variable |
C. | fuzz variable |
D. | none of the mentioned |
Answer» B. lingual variable | |
53. |
A fuzzy set has a membership function whose membership values are strictly monotonically increasing or strictly monotonically decreasing or strictly monotonically increasing than strictly monotonically decreasing with increasing values for elements in the universe |
A. | convex fuzzy set |
B. | concave fuzzy set |
C. | non concave fuzzy set |
D. | non convex fuzzy set |
Answer» B. concave fuzzy set | |
54. |
decides who becomes parents and how many children the parents have. |
A. | parent combination |
B. | parent selection |
C. | parent mutation |
D. | parent replace |
Answer» C. parent mutation | |
55. |
Basic elements of EA are ? |
A. | parent selection methods |
B. | survival selection methods |
C. | both a and b |
D. | noneof these |
Answer» D. noneof these | |
56. |
Applying recombination and mutation leads to a set of new candidates, called as ? |
A. | sub parents |
B. | parents |
C. | offsprings |
D. | grand child |
Answer» D. grand child | |
57. |
Fitness function should be |
A. | maximum |
B. | minimum |
C. | intermediate |
D. | noneof these |
Answer» C. intermediate | |
58. |
Parameters that affect GA |
A. | initial population |
B. | selection process |
C. | fitness function |
D. | all of these |
Answer» E. | |
59. |
EV is considered as? |
A. | adaptive |
B. | complex |
C. | both a and b |
D. | noneof these |
Answer» D. noneof these | |
60. |
EV is dominantly used for solving . |
A. | optimization proble |
B. | mnp problem |
C. | simple problems |
D. | noneof these |
Answer» B. mnp problem | |
61. |
GBML stands for |
A. | genese based machi |
B. | genes based mob |
C. | genetic bsed machi |
D. | noneof these |
Answer» D. noneof these | |
62. |
LCS stands for |
A. | learning classes syste |
B. | learning classifier |
C. | learned class syste |
D. | mnoneof these |
Answer» C. learned class syste | |
63. |
EC stands for? |
A. | evolutionary comput |
B. | evolutionary com |
C. | electronic computa |
D. | noneof these |
Answer» B. evolutionary com | |
64. |
GA stands for |
A. | genetic algorithm |
B. | genetic asssuranc |
C. | genese alforithm |
D. | noneof these |
Answer» B. genetic asssuranc | |
65. |
Discrete events and agent-based models are usuallly used for . |
A. | middle or low level o |
B. | high level of abstr |
C. | very high level of ab |
D. | none of these |
Answer» B. high level of abstr | |
66. |
doesnot usually allow decision makers to see how a solution to a en |
A. | simulation ,complex |
B. | simulation,easy p |
C. | genetics,complex p |
D. | genetics,easy problem |
Answer» B. simulation,easy p | |
67. |
Determining the duration of the simulation occurs before the model is validated and te |
A. | true |
B. | false |
Answer» C. | |
68. |
cannot easily be transferred from one problem domain to another |
A. | optimal solution |
B. | analytical solution |
C. | simulation solutuon |
D. | none of these |
Answer» D. none of these | |
69. |
What are different types of crossover |
A. | discrete and interme |
B. | discrete and conti |
C. | continuous and inte |
D. | none of these |
Answer» B. discrete and conti | |
70. |
What is the first step in Evolutionary algorithm |
A. | termination |
B. | selection |
C. | recombination |
D. | initialization |
Answer» E. | |
71. |
Elements of ES are/is |
A. | parent population siz |
B. | survival populatio |
C. | both a and b |
D. | none of these |
Answer» D. none of these | |
72. |
in ES survival is |
A. | indeterministic |
B. | deterministic |
C. | both a and b |
D. | none of these |
Answer» E. | |
73. |
Evolution Strategies typically uses |
A. | real-valued vector re |
B. | vector representa |
C. | time based represe |
D. | none of these |
Answer» B. vector representa | |
74. |
Evolution Strategies is developed with |
A. | selection |
B. | mutation |
C. | a population of size |
D. | all of these |
Answer» E. | |
75. |
what are the parameters that affect GA are/is |
A. | selection process |
B. | initial population |
C. | both a and b |
D. | none of these |
Answer» D. none of these | |
76. |
Evolutionary programming was developef by |
A. | fredrik |
B. | fodgel |
C. | frank |
D. | flin |
Answer» C. frank | |
77. |
Chromosomes are actually ? |
A. | line representation |
B. | string representa |
C. | circular representat |
D. | all of these |
Answer» C. circular representat | |
78. |
Idea of genetic algorithm came from |
A. | machines |
B. | birds |
C. | aco |
D. | genetics |
Answer» E. | |
79. |
Evolutionary algorithms are a based approach |
A. | heuristic |
B. | metaheuristic |
C. | both a and b |
D. | noneof these |
Answer» B. metaheuristic | |
80. |
Survival is approach. |
A. | deteministic |
B. | non deterministic |
C. | semi deterministic |
D. | noneof these |
Answer» B. non deterministic | |
81. |
recombination is applied on candidates. |
A. | one |
B. | two |
C. | more than two |
D. | noneof these |
Answer» C. more than two | |
82. |
LCS belongs to based methods? |
A. | rule based learning |
B. | genetic learning |
C. | both a and b |
D. | noneof these |
Answer» B. genetic learning | |
83. |
mutation is applied on candidates. |
A. | one |
B. | two |
C. | more than two |
D. | noneof these |
Answer» B. two | |
84. |
Genetic algorithms are example of |
A. | heuristic |
B. | evolutionary algo |
C. | aco |
D. | pso |
Answer» C. aco | |
85. |
which of the following is a sequence of steps taken in designning a fuzy logic machine |
A. | fuzzification->rule ev |
B. | deffuzification->r |
C. | rule evaluation->fuz |
D. | rule evaluation->defuz |
Answer» B. deffuzification->r | |
86. |
All of the follwing are suitable problem for genetic algorithm EXCEPT |
A. | pattern recognization |
B. | simulation of biol |
C. | simple optimization |
D. | dynamic process contr |
Answer» D. dynamic process contr | |
87. |
Tabu search is an example of ? |
A. | heuristic |
B. | evolutionary algo |
C. | aco |
D. | pso |
Answer» B. evolutionary algo | |
88. |
can a crisp set be a fuzzy set? |
A. | no |
B. | yes |
C. | depends |
D. | all of the above |
Answer» C. depends | |
89. |
Fuzzy logic deals with which of the following |
A. | fuzzy set |
B. | fuzzy algebra |
C. | both a and b |
D. | none of the above |
Answer» D. none of the above | |
90. |
What denotes the core(A) in a fuzzy set? |
A. | {x|ua(x)>0} |
B. | {x|ua(x)=1} |
C. | {x|ua(x)>=0.5} |
D. | {x|ua(x)>0.8} |
Answer» C. {x|ua(x)>=0.5} | |
91. |
What denotes the support(A) in a fuzzy set? |
A. | {x|ua(x)>0} |
B. | {x|ua(x)<0} |
C. | {x|ua(x)<=0} |
D. | {x|ua(x)<0.5} |
Answer» B. {x|ua(x)<0} | |
92. |
A={1/a,0.3/b,0.2/c,0.8/d,0/e} B={0.6/a,0.9/b,0.1/c,0.3/d,0.2/e} What will be the inte |
A. | {0.6/a,0.3/b,0.1/c,0.3 |
B. | {0.6/a,0.8/b,0.1/c |
C. | {0.6/a,0.3/b,0.1/c,0 |
D. | {0.6/a,0.3/b,0.2/c,0.3/ |
Answer» B. {0.6/a,0.8/b,0.1/c | |
93. |
A={1/a,0.3/b,0.2/c,0.8/d,0/e} B={0.6/a,0.9/b,0.1/c,0.3/d,0.2/e} What will be the co |
A. | m{0/a,0.7/b,0.8/c,0.2/ |
B. | {0/a,0.9/b,0.7/c,0 |
C. | {0.8/a,0.7/b,0.8/c,0 |
D. | {0/a,0.7/b,0.8/c,0.9/d, |
Answer» B. {0/a,0.9/b,0.7/c,0 | |
94. |
A={1/a,0.3/b,0.2/c,0.8/d,0/e} B={0.6/a,0.9/b,0.1/c,0.3/d,0.2/e} What will be the uni |
A. | {1/a,0.9/b,0.1/c,0.5/ |
B. | {0.8/a,0.9/b,0.2/c |
C. | {1/a,0.9/b,0.2/c,0.8 |
D. | {1/a,0.9/b,0.2/c,0.8/d, |
Answer» D. {1/a,0.9/b,0.2/c,0.8/d, | |
95. |
The bandwidth(A) in a fuzzy set is given by |
A. | (a)=|x1*x2| |
B. | (a)=|x1+x2| |
C. | (a)=|x1-x2| |
D. | (a)=|x1/x2| |
Answer» D. (a)=|x1/x2| | |
96. |
The intersection of two fuzzy sets is the of each element from two sets |
A. | maximum |
B. | minimum |
C. | equal to |
D. | not equal to |
Answer» C. equal to | |
97. |
The a cut of a fuzzy set A is a crisp set defined by :- |
A. | {x|ua(x)>a} |
B. | {x|ua(x)>=a} |
C. | {x|ua(x)<a} |
D. | {x|ua(x)<=a} |
Answer» C. {x|ua(x)<a} | |
98. |
A Fuzzy rule can have |
A. | multiple part of ante |
B. | only single part of |
C. | multiple part of ant |
D. | only single part of ante |
Answer» D. only single part of ante | |
99. |
Which of the following is/are type of fuzzy interference method |
A. | mamdani |
B. | sugeno |
C. | rivest |
D. | only a and b |
Answer» E. | |
100. |
Which of the folloowing is not defuzzifier method |
A. | centroid of area |
B. | mean of maximu |
C. | largest of maximum |
D. | hypotenuse of triangle |
Answer» E. | |