Starting Out with Programming Logic and Design (5th Edition) (What's New in Computer Science)
Starting Out with Programming Logic and Design (5th Edition) (What's New in Computer Science)
5th Edition
ISBN: 9780134801155
Author: Tony Gaddis
Publisher: PEARSON
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Chapter 11, Problem 2SA

Explanation of Solution

Menus:

A menu-driven program shows a list of actions, which it can execute on the screen. This type of program will allows the user to select any one of the actions that the user wants the program to execute at a time.

  • The list of actions, which is displayed on the screen is referred as menu.
  • This program will ask the user to enter the selection using keyboard, which displays a character such as a letter or a number that resides next to each menu options.

Validating user’s choice:

It is necessary to validate the user’s selection for the menu-driven programs. Hence the program must use a code to validate the choice using following methods:

  • A user can include the “default” section in a case decision structure.
  • A user can include an input validation loop in the program. This loop will immediately validate the input after the program reads the user’s menu selection.

Example:

Consider the following C++program, which uses a case decision structure for a menu driven program as follow as:

Program:

#include<iostream>

#include<string>

using namespace std;

int main()

{

//declare the required variables

int a = 5, b = 3;

char x;

//Menu list

cout << "A...

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Create an original network topology consisting of at least seven routers and twelve links, assigning arbitrary positive weights to each link. Using this topology, apply Dijkstra's Link-State Algorithm to compute the shortest paths from a source router of your choice to all other routers in the network. Your topology must be entirely your own design and should not resemble any examples from the textbook, lecture slides, or other students' work. Al-generated topologies are not permitted. Create a PowerPoint presentation that follows the format and style of slides 11 to 23 from Lecture Slide Set 06 (LS06). You should copy those slides and make any necessary changes, additions, or deletions to reflect your own topology, shortest-path calculations, and update tables. Do not alter the original slide style, layout, or formatting.
Create an original network topology consisting of at least seven routers and twelve links, assigning arbitrary positive weights to each link. Using this topology, apply Dijkstra's Link-State Algorithm to compute the shortest paths from a source router of your choice to all other routers in the network. Your topology must be entirely your own design and should not resemble any examples from the textbook, lecture slides, or other students' work. Al-generated topologies are not permitted. Create
x3003 x3008 1110 0000 0000 1100 1110 0010 0001 0000 0101 0100 1010 0000 x3004 0010 0100 0001 0011 x3005 0110 0110 0000 0000 X3006 0110 1000 0100 0000 x3007 0001 0110 1100 0100 0111 0110 0000 What does the following LC-3 program do? Trace Step by Step, SHOW ALL YOUR WORK. x3001 x3002 0000 x3009 0001 0000 0010 0001 X300A 0001 0010 0110 0001 x300B 0001 0100 1011 1111 x300C 0000 0011 1111 1000 X300D 1111 0000 0010 0101 x300E 0000 0000 0000 0101 x300F 0000 0000 0000 0100 x3010 0000 0000 0000 0011 x3011 0000 0000 0000 0110 x3012 0000 0000 0000 0010 x3013 x3014 0000 0000 0000 0000 0000 0100 0000 0111 x3015 0000 0000 0000 0110 x3016 0000 0000 0000 1000 x3017 0000 0000 0000 0111 x3018 0000 0000 0000 0101

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