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UGC NET Paper 2 Computer Science Mock Test - 8 - UGC NET MCQ


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30 Questions MCQ Test UGC NET Mock Test Series 2024 - UGC NET Paper 2 Computer Science Mock Test - 8

UGC NET Paper 2 Computer Science Mock Test - 8 for UGC NET 2024 is part of UGC NET Mock Test Series 2024 preparation. The UGC NET Paper 2 Computer Science Mock Test - 8 questions and answers have been prepared according to the UGC NET exam syllabus.The UGC NET Paper 2 Computer Science Mock Test - 8 MCQs are made for UGC NET 2024 Exam. Find important definitions, questions, notes, meanings, examples, exercises, MCQs and online tests for UGC NET Paper 2 Computer Science Mock Test - 8 below.
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UGC NET Paper 2 Computer Science Mock Test - 8 - Question 1

In C++, which of the following system-provided functions is called when no handler is provided to deal with an exception?

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 1

This function is automatically called when no catch handler can be found for a thrown exception, or for some other exceptional circumstance that makes impossible to continue the exception handling process.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 2

Consider a schema R(ABCD) and functional dependencies A → B, C → D. The decomposition of R into R1(AB) and R2(CD) is

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 2

Dependency Preserving Decomposition:

Decomposition of R into R1 and R2 is a dependency preserving decomposition if closure of functional dependencies after decomposition is same as closure of of FDs before decomposition.

A simple way is to just check whether we can derive all the original FDs from the FDs present after decomposition.

In the above question R(A, B, C, D) is decomposed into R1 (A, B) and R2(C, D) and there are only two FDs A -> B and C -> D. So, the decomposition is dependency preserving

Lossless-Join Decomposition:

Decomposition of R into R1 and R2 is a lossless-join decomposition if at least one of the following functional dependencies are in F+ (Closure of functional dependencies)

R1 ∩ R2 → R1

OR

R1 ∩ R2 → R2

In the above question R(A, B, C, D) is decomposed into R1(A, B) and R2(C, D), and R1 ∩ R2 is empty. So, the decomposition is not lossless.

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UGC NET Paper 2 Computer Science Mock Test - 8 - Question 3

Consider a sequence F00 defined as

F00(0) = 1, F00(1) = 1

F00(n) = 

What shall be the set of values of the sequence F00?

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 3

F00(2)=  =110

F00(3)=  = 1200

So, Option (A) is correct.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 4

LL grammar for the language L = {anbmcn+m | m ≥ 0, n ≥ 0} is

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 4

Key Points
L = {anbmcn+m | m ≥ 0, n ≥ 0}

L1 is the language when n = 0, m = 0 = {λ}

L2 is the language when only n = 0 = { bc, bbcc , bbbccc,..}

L3 is the language when only m = 0 = { ac, aacc, aaaccc,..}

L4 is the language when n ! = 0 and m ! = 0 = { abcc, aabbcccc, aaabbbcccccc,...}

L= {L1U L2 U L3 U L4}

L accepts the strings like, {{λ, bc, bbcc, bbbccc, ac, aacc, aaaccc, abcc, aabbcccc, aaabbbcccccc,...}

Option 1: S → aSc | S1 ; S1 → bS1c | λ

False, The above doesn't accept the strings of L3 is the language when only m=0= { ac, aacc, aaaccc,..}

Option 2: S → aSc | S1 | λ ; S1 → bS1c

False, The above doesn't accept the strings of L2 is the language when only n = 0 = { bc, bbcc, bbbccc,..}

Option 3: S → aSc | S1 | λ ; S1 → bS1c | λ

True, it can generate all the strings generated by the language L.

Option 4: S → aSc | λ ; S1 → bS1c | λ

False, state S1 is unreachable in it. And option 4 can't generate strings like { bc, bbcc, bbbccc, abcc, aabbcccc, aaabbbcccccc,... }

Hence the correct answer is S → aSc | S1 | λ; S1 → bS1c | λ.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 5

Consider the following non-deterministic automaton, where s1 is the start state and s4 is the final (accepting) state. The alphabet is {a, b}. A transition with label can be taken without consuming any symbol from the input.

Which of the following regular expressions corresponds to the language accepted by this automaton?

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 5

The correct answer is option 1.

Key Points

The regular expressions accept the strings with a minimum length is "aba". It accepts the strings {aba ,aaba ,baba ,abbaba,... }. And also we can say the regular grammar which accepts every string with ending with "aba".

Option 1: (a + b)*aba

True, It accepts all string which generated by above automata.

Option 2: aba(a + b)*aba

False, It can not accept the string "aba" and this grammar minimum string is "abaaba".

Option 3: (a + b)aba(b + a)*

False, It accepts the string "aabab" and "aabab" is not accepted by the above automata.

Option 4: aba(a + b)*

False, It accepts the string "aabab" and "aabab" is not accepted by the above automata.

Option 5: (ab)*aba

False, It can not accept the string "baba" and "baba" is accepted by the above automata.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 6

The following figure represents access graphs of two modules M1 and M2. The filled circles represent methods and the unfilled circles represent attributes. If method m is moved to module M2 keeping the attributes where they are, what can we say about the average cohesion and coupling between modules in the system of two modules?

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 6

The correct answer is option 1.

Key Points

  • The degree to which the elements within a module belong together is referred to as cohesion.
  • The degree of interdependence between software modules is referred to as coupling. A measure of how closely two routines or modules are linked.

Coupling between M1 and M2 =

The cohesion of M1 =

After moving method m to M2, we get the following graph as


Hence the correct answer is There is no change.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 7

Which of the following statement are true?

Statement 1: Depth First Search uses the stack data structure.

Statement 2: Breadth First Search uses the queue data structure.

Statement 3: Depth First Search uses a backtracking technique.

Statement 4: Breadth-first search uses the Branch-and-Bound traverse technique.

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 7

The correct answer is option 4.

Concept:

Statement 1: Depth First Search uses the stack data structure.

True, When a dead end occurs in any iteration, the Depth First Search (DFS) method traverses a graph in a depth ward motion and utilizes a stack to remember to acquire the next vertex to start a search.

Statement 2: Breadth First Search uses the queue data structure.

True, When a dead end occurs during any iteration, the Breadth First Search (BFS) algorithm uses a queue to keep track of where to get the next vertex to begin a search.

Statement 3: Depth First Search uses a backtracking technique.

True, Depth First Search uses a backtracking technique. Backtracking is a method for problem-solving based on an algorithm. It constructs a solution step by step, increasing values over time, and then employs recursive calling to discover the answer. Based on the limitations provided to answer the problem, it eliminates solutions that don't lead to the solution.

Statement 4: Breadth-first search uses the Branch-and-Bound traverse technique.

True, Breadth-first search uses the Branch-and-Bound traverse technique. Branch and bound is an algorithm design paradigm that is generally used for solving combinatorial optimization problems.

Hence the correct answer is only 1, 2, 3, and 4.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 8

Consider the given three address code table given below:

Which of the following expression represents the above given three address code?

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 8

Three address code: In this a type of intermediate code which is easy to generate and can be easily converted to machine code uses at most three addresses and one operator to represent an expression and the value computed at each instruction is stored in temporary variable generated by compiler.

Calculation:

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 9

Consider the following Statements

S1: Regular languages are a subset of the set of languages accepted by TMs which do not write anything on the tape.

S2: The set of languages accepted by halting TMs with a bidirectional infinite tape is a proper superset of decidable language.

S3: Every decidable language can be accepted by a DFA with a priority queue.

Which of the statements are not true?

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 9

The correct answer is option 4.

Key Points

S1: Regular languages are a subset of the set of languages accepted by TMs which do not write anything on the tape.

True, Regular languages are a subset of the set of languages accepted by TMs Which do not write anything on the tape. The subset of regular languages is not closed under regular grammar.

S2: The set of languages accepted by halting TMs with a bidirectional infinite tape is a proper superset of decidable language.

False, The set of languages accepted by halting TMs with a bidirectional infinite tape is a proper superset of decidable language. Halting Turing machine accepts recursive languages. Proper superset of recursive languages is an undecidable language.

S3: Every decidable language can be accepted by a DFA with a priority queue.

True, Every decidable language can be accepted by a DFA with a priority queue.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 10

Given F(A,B,C,D) = Σm (0, 1, 2, 5, 10, 15)

d(A, B, C, D) = Σm (6, 7, 8, 13)

Then Number of prime implicants and essential prime implicants respectively are__________:

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 10

Essential prime implicant means implicant which can not be replaced by any another implicant.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 11

A participant uses two prime numbers p and q are 5 and 13 in an RSA cryptosystem, to create public and private keys. If the participant's public key is 11 and the ciphertext (C) is 8, what is the original message (M)?

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 11

Key Points

In RSA encryption, the ciphertext (C) is computed using the public key (e, n) and the original message (M) as follows:

Here, e is the public exponent, and n is the product of the two prime numbers (p and q) used to generate the keys.

Given that the participant's public key is e = 11, and the product of the two prime numbers n = pq = 5 times 13 = 65, and the ciphertext C = 8, we can set up the equation:

Now, we need to find the value of M.

To solve this equation, we can use the Chinese Remainder Theorem or simply try different values of M until we find one that satisfies the congruence.

Let's check each option:

1)
2)
3)
4)

Therefore, the correct answer is 4) 57.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 12

Consider the following strings:

S1 = PQPTSR

S2 = QPRQPS

Find the length of the longest common subsequence by using dynamic programming.

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 12

Here, longest common subsequence is PQPS.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 13

Consider a system with a logical address of 23 bits, a physical address of 128 MB, and a page size of 8 KB. Calculate the page table size in bytes.

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 13

The correct answer is 2 KB.

The steps to find the page table size are:

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 14
If |A| = 50, |A ∩ B| = 45 and |B| = 48, then what is |P(A − B)|?
Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 14

Concept Used:

P(A) represents the Powerset of A i.e., the set of all subsets of A.

|P(A)| = 2|A|

A - B = {x| x ∈ A and x ∉ B}

Calculation:

|A| = 50, |A ∩ B| = 45 and |B| = 48

⇒ A and B have 45 elements in common.

Hence, A - B must have only 5 elements i.e., |A - B| = 5

Hence, |P(A − B)| = 2|(A − B)| = 25

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 15

For any three sets A, B and C the set

(A U B U C) ∩ (A ∩ B' ∩ C')' ∩ C' is equal to

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 15

Calculation:

(A ∩ B' ∩ C')' = A' U B U C

∴ (A U B U C) ∩ (A ∩ B' ∩ C')'

= (A U B U C) ∩ (A' U B U C)

= (A ∩ A') U (B U C) [By distributivity of U over ∩]

= ϕ U (B U C) = B U C

Hence,

(A U B U C) ∩ (A ∩ B' ∩ C')' U C'

⇒ (B U C) ∩ C' = (B ∩ C') U (C ∩ C') = B ∩ C'

∴ Correct answer is option 1.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 16

Consider the following Statements

Statement 1: Greedy technique solves the problem correctly and always provides an optimized solution to the problem.

Statement 2: Bellman ford, Floyd-warshal, and Prim’s algorithms use the Dynamic Programming technique to solve the Path problems.

Which of the following is true?

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 16

Statement 1: Greedy technique solves the problem correctly and always provides an optimized solution to the problem.

This Statement is False. Since the Greedy technique does not always solve a problem correctly.

Statement 2: Bellman ford, Floyd-warshal, and Prim’s algorithms use the Dynamic Programming technique to solve the Path problems.

This Statement is also False Since Prim's algorithm does not use the Dynamic Programming technique.

Prim's algorithm is a greedy algorithm that finds a minimum spanning tree for a weighted undirected graph.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 17

Which is/are the stages in COCOMO estimation technique?

I. basic COCOMO

II. Intermediate COCOMO

III. complete COCOMO

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 17
  • COCOMO prescribes a three stages process for project estimation
  • In the first stage, an initial estimate is arrived at; Over the next two stages, the initial estimate is refined to arrive at a more accurate estimate
  • COCOMO uses both single and multivariable estimation models at different stages of estimation
  • The three stages of COCOMO estimation technique are basic COCOMO, intermediate COCOMO, and complete COCOMO

Note:

COCOMO stands for Constructive Cost Estimation Model.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 18
Identify the wrong output stack permutation for the Input sequence in 1, 2, 3, 4, 5 and pop can occur at any time in stack.
Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 18

for a)

for b)

So, 2 3 5 4 1

for c)

so, 4 3 5 2 1

for d)

So, the permutation 3, 4, 1, 5, 2 is invalid

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 19
Which design concept implies a program control mechanism without specifying internal details?
Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 19

A procedural abstraction is a named sequence of instructions that has a specific and limited function.

A data abstraction is a named collection of data that describes a data object.

Control abstraction is the third form of abstraction used in software design. Like procedural and data abstraction, control abstraction implies a program control mechanism without specifying internal details. An example of a control abstraction is the synchronization semaphore used to coordinate activities in an operating system.
UGC NET Paper 2 Computer Science Mock Test - 8 - Question 20

Consider the following segment of codes related to process creation. How many times the message “child process created” will be printed?

#include<stdio.h>

void main() {

fork(); fork(); fork();

printf(“child process created”);

}
Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 20

Concept:

Fork system call is used to create a new process also called as child processes.

Formula:

With n fork system calls, number of child processes created are 2n – 1.

Printf statement will be executed 2n times with n system calls.

Explanation:

Here there are 3 fork system calls in the given program.

So, 23 times printf statement will be executed.

i.e. 8 times “child process created” will be printed.
UGC NET Paper 2 Computer Science Mock Test - 8 - Question 21
Up to isomorphism, the number of abelian groups of order 108 is
Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 21

Given:

abelian groups of order 108

Concept:

the number of abelian groups of order n is p(n) ( no of partition of n )

Calculation:

108 = 22⋅33.

Now, p(2) = 2 because 2 = 2 and 2 = 1 + 1,

whereas p(3) = 3 because 3 = 3, 3 = 1 + 2, and 3 = 1 + 1 + 1.

Hence, the number of abelian groups of order 108 up to isomorphism is p(2) × p(3) = 2 × 3 = 6.

Hence the option (3) is correct.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 22

State whether True or False.

I. If two regular expressions denote the same language, then both are said to be equivalent.

II. The regular expression a* denotes the set of all strings of one or more a’s
Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 22

I. If two regular expressions denote the same language, then both are said to be equivalent.

Given statement is true. There can be more than one regular expression for a language. But if two regular expressions denote same language then it means both are equivalent. Example: (a*b*)* and (a + b)* both represent same language. They both are equivalent.

II. The regular expression a* denotes the set of all strings of one or more a’s

This statement is incorrect. The regular expression a* generates the strings of type {ϵ, a, aa, aaa, aaaa,….} i.e. 0 or more occurrences of a. To generate set of all strings of one or more a’s , regular expression used is : a+.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 23

What is the minimum number of nodes that must be examined in order to find the minimum value in an AVL tree of height 5?

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 23
The minimum number of nodes in an AVL tree can be calculated as follows:

Minimum number of nodes of height h, N(h) = N(h-1) + N(h-2) + 1

Where, N(0) = 1 and N(1) = 2

So,

N(2) = N(1) + N(0) + 1 = 2 + 1 + 1 = 4,

N(3) = N(2) + N(1) + 1 = 4 + 2 + 1 = 7,

N(4) = N(3) + N(2) + 1 = 7 + 4 + 1 = 12,

N(5) = N(4) + N(3) + 1 = 12 + 7 + 1 = 20.

Therefore, to find the minimum number of nodes of an AVL tree of height 5, the values of N(2), N(3) and N(4) must be found. So, the values of 3 nodes have to be found.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 24

______ structure is usually used to connect I/O devices.

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 24
Single bus structure is usually used to connect I/O devices. BUS is a bunch of wires which carry addresses, control signals and data. It is used to connect various components of the computer. In a single bus structure, one common bus is used to communicate between peripherals and microprocessors
UGC NET Paper 2 Computer Science Mock Test - 8 - Question 25

A heavy line on a video monitor could be displayed as:

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 25
A heavy line could be displayed as adjacent parallel lines on a video monitor, while a pen plotter might require pen changes to draw a thick line. Implementation of line-width options depends on the capabilities of the output device. Thicker lines are displayed as positive integer multiples of the standard line by plotting additional pixels along adjacent parallel lines paths.
UGC NET Paper 2 Computer Science Mock Test - 8 - Question 26

The processes that are residing in main memory and are ready and waiting to execute are kept on a list called _____________.

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 26
The processes that are residing in main memory and are ready and waiting to execute are kept on a list called ready queue. The ready queue is a simplified version of a kernel data structure consisting of a queue with one entry per priority. Each entry in turn consists of another queue of the threads that are READY at the priority. Any threads that aren't READY aren't in any of the queues but they will be when they become READY.
UGC NET Paper 2 Computer Science Mock Test - 8 - Question 27

The importance of software design can be summarized in a single word which is:

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 27
The importance of software design can be summarized in a single word which is quality. The quality of functional software, functional depicts how well it can conform with or adapts to a given design based on functional requirements or specifications.
UGC NET Paper 2 Computer Science Mock Test - 8 - Question 28

Direction:- Consider the following postfix expression with single digit operands:

623∗/42∗+68∗−

The top two elements of the stack after the second ∗ is evaluated, are:

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 28

Push 6 into the stack, Push 2 into the stack, Push 3 into the stack.

Now we encounter an operator. So, pop top 2 elements and apply the operator between them, it should be like:

( second_pop operator first_pop ) ==> 2 * 3 but not 3 * 2

result is 6 ==> push into the stack.

Now we encounter an operator. So, pop top 2 elements and apply the operator between them, it should be like:

( second_pop operator first_pop ) ==> 6 / 6

result is 1 ==> push into the stack.

Push 4 into the stack, Push 2 into the stack.

Now we encounter an operator. So, pop top 2 elements and apply the operator between them, it should be like:

( second_pop operator first_pop ) ==> 4 * 2

result is 8 ==> push into the stack.

question is asking about till evaluate up to 2nd * evaluated, ==> our task complete.

The top of the two elements of our stacks is 8,1 in the order from top to bottom.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 29

Which is the best way to solve game playing problem?

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 29

The best way to solve game playing problem is Heuristic approach. You use a Heuristic approach, as it will find out brute force computation, looking at hundreds of thousands of positions. e.g Chess competition between Human and AI-based Computers. A heuristic, or a heuristic technique, is an approach to problem-solving that uses a practical method or various shortcuts in order to produce solutions that may not be optimal but are sufficient given a limited timeframe or deadline.

UGC NET Paper 2 Computer Science Mock Test - 8 - Question 30

A language can be generated from simple primitive language in a simple way if and only if:

Detailed Solution for UGC NET Paper 2 Computer Science Mock Test - 8 - Question 30

A language is regular if and only if it can be accepted by a finite automaton. Secondly, It supports no concept of auxiliary memory as it loses the data as soon as the device is shut down.

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