Hackety Hacking Problem Factorial: Difference between revisions
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== Solution == |
== Solution == |
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'''Ist Solution''' |
'''Ist Solution''' |
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<pre> |
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f=1 |
f=1 |
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puts("Enter the no. whose factorial to be calculated: ") |
puts("Enter the no. whose factorial to be calculated: ") |
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end |
end |
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puts f |
puts f |
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</pre> |
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Revision as of 03:35, 23 October 2007
Problem Statement
You have a word each made up of different letter no letter repeated.You have been given the length of the word.Now the problem is that you have to print the number of ways in which the letters can be arranged to return a new word. For Example: Word Length=3 take a word "bat" It can be written in 6 different ways: abt atb bat bta tab tba
So you have to write a program which takes the word length as the input from the user,And prints the number of ways in which they can be arranged.
Constrains
- There can be more than one way to solve it.
- You have to use recursion.
- You have to give as many no.of solution as you can give
Help
Have you ever heard the word recursion, if not than let me explain. It is the name for algorithm which is to call the function from within itself but with changed parameters.
Sample Output
Enter the word length : 5 The number of ways the word can be arranged is = 120
Curriculum Connections
Solution
Ist Solution
f=1
puts("Enter the no. whose factorial to be calculated: ")
n=gets.chomp.to_i
def fact(n,k)
k=k*n
k
end
count=1
while count<n
f=fact(count+1,f)
end
puts f