Hackety Hacking Problem Longsum Implemented Ruby: Difference between revisions
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'''Anubhav please see the program I have complicated it a bit as i want to avoid any factor of limit if i use array of char.Please check it..... |
'''Anubhav please see the program I have complicated it a bit as i want to avoid any factor of limit if i use array of char.Please check it..... |
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[[Category: Hackety Lesson Plan]] |
Latest revision as of 20:07, 6 April 2008
Problem Statement
Hi do you know one of the limitations of your compiler.Let me introduce you with it.This is that "size of the integers or number with it can work with is limited".So many a times it happens that you cannot do a sum on your compiler because it exceeds the size of integer supported by the compiler.So lets do something so that you can do the calculations without caring about the size of the integer and not even losing precision. Write a program that takes two no and gives output as its sum.
HINT: Use strings to achieve the task.
Sample Output
Enter the first no: 5555555555555555555555555 Enter the second no.4444444444444444444444444 The sum of the two numbers is : 9999999999999999999999999
Curriculum Connections
This problem gives student help in understanding few thins mentioned below:
- How to convert data from one type to another(TYPECASTING)
- Why typecasting is useful
- The benefit of using STRINGS
- Knowing about the limitations of the compiler
Solution
#include<iostream> //Header file #include<string> #include<algorithm> using namespace std; //Namespace a bit of syntax int main() { //these are two strings used to save the two numbers as there is no bound on the size of the string string a; string b; string c; //take the two numbers cout<<"Enter the first no : "; cin>>a; reverse(a.begin(),a.end()); //this command reverses the string so that we can eeasily manipulate it cout<<"\nEnter the second no : "; cin>>b; reverse(b.begin(),b.end()); int i; int maxm=max(a.length(),b.length()); int minm=min(a.length(),b.length()); //this block formats the shorter string to be equal to that of the larger array by appending zeros in the end if(a.length()<b.length()) { for(i=minm;i<maxm;i++) { a[i]='0'; } } else { for(i=minm;i<maxm;i++) { b[i]='0'; } } for(i=0;i<=maxm;i++) c[i]='0'; //This for loop used to carry out the sum starting from the LSB(Least significant bit) for(i=0;i<maxm;i++) { c[i]=char(c[i]+a[i]-'0'+b[i]-'0'); if(c[i]>'9') { c[i+1]++; } } //This loop is used to check if there is any carry for the last digit if(c[maxm]=='0') { i=maxm-1; } //This block is used to print the output on the screen cout<<"The sum of the two numbers is: "; //This loop prints the sum in reverse order as we have to show MSB(Most significant Bit) First for(;i>=0;i--) { cout<<c[i]; } return 0; }
Anubhav please see the program I have complicated it a bit as i want to avoid any factor of limit if i use array of char.Please check it.....