EBK ESSENTIALS OF MIS
EBK ESSENTIALS OF MIS
12th Edition
ISBN: 8220101459305
Author: LAUDON
Publisher: PEARSON
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Chapter 8, Problem 6DQ
Program Plan Intro

System vulnerability:

  • When huge data amounts are been kept in electronic form, it becomes susceptible to many threats.
  • The information systems in many locations are been interconnected through communication networks.
  • The unauthorized access can occur at many access points in network and is not limited to single location.
  • The data flowing over networks could be accessed; valuable information could be stolen while transmission or data could be altered without authorization.
  • The denial-of-service attacks are launched by intruders to disrupt website operations.
  • Internets are vulnerable than internal networks as it is open to everyone.

Program Plan Intro

Business continuity plan:

  • A business continuity plan provides a roadmap for continuation and restoration of critical functions after disaster event.
  • It includes functions and tasks to be performed after and before the event.
  • The details of sites should be designed and included properly.
  • It denotes process of system creation for prevention as well as recovery to deal with threats to a company.
  • The event that could create a negative impact on operations is been included in the plan.

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I need help to solve a simple problem using Grover’s algorithm, where the solution is not necessarily known beforehand. The problem is a 2×2 binary sudoku with two rules: • No column may contain the same value twice. • No row may contain the same value twice.   Each square in the sudoku is assigned to a variable as follows:   We want to design a quantum circuit that outputs a valid solution to this sudoku. While using Grover’s algorithm for this task is not necessarily practical, the goal is to demonstrate how classical decision problems can be converted into oracles for Grover’s algorithm.   Turning the Problem into a Circuit   To solve this, an oracle needs to be created that helps identify valid solutions. The first step is to construct a classical function within a quantum circuit that checks whether a given state satisfies the sudoku rules.   Since we need to check both columns and rows, there are four conditions to verify: v0 ≠ v1   # Check top row   v2 ≠ v3   # Check bottom row…
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