Friday, September 16, 2011

Given a list of N line segments on the X axis: (x1[i], x2[i]) where i = 1 to N; And then a list of M queries. Each query inputs one x-coordinate and you need to output the set of all {i} that overlaps this point.


A 7 digit number consists of 7 distinct digits (from 0..9 ofcourse); The product of the first 3 digits = product of central 3 digits = product of last 3 digits; Find the middle digit.


Wednesday, September 14, 2011

Given two words of equal length that are in a dictionary, write a method to transform one word into another word by changing only one letter at a time. The new word you get in each step must be in the dictionary


Numbers are randomly generated and passed to a method. Write a program to find and maintain the median value as new values are generated.


Given an Array of Strings . Write a program to find the longest word made of other words efficiently ?


Given two arrays [5 6 2 8 1] or [4 7 9 2 4]. you have to find possible pairs where sum of numbers in both arrays of a pair is equal....eg for the first case it will be [5 6] and [2 8 1] efficiently .


Use Google Chrome For Better View of Contents on Blog :)

Dear Readers,
                              I am getting regular suggestion & useful comments from many geeks to re-arrange the question according to type, i will try to do this asap i get time as i have to edit HTML Code & also some  people are saying that contents are good but unable to view them. for this problem try Google Chrome Until I change the GUI & edit Html Code.

Thanks  For Giving Suggestion to Solving Problems Efficiently 
Happy Coding
Shashank !!!

Monday, September 5, 2011

Find the smallest number expressible as the sum of cubes of two numbers in two different ways. Indeed, 10^3 + 9^3 =12^3+1^3=1729 , Do It Efficiently


Problem:
A mathematician G. H. Hardy was on his way to visit his collaborator S. Ramanujan an who was in the hospital. Hardy remarked to Ramanujan that he traveled in taxi cab number 1729 which seemed a dull one and he hoped it was not a bad omen. To this, Ramanujan replied that 1729 was a very interesting number-it was the smallest number expressible as the sum of cubes of two numbers in two different ways. Indeed,
103 + 93 =123 + 1 3 二1729.

Hint: This problem is very similar to another very popular problem that is asked in interviews. You are given a  η ×η matrix in which both rows and columns are sorted in ascending order and you are supposed
to find a given number in the matrix.


Algorithm:
In this case, we are essentially looking for an implicit matrix A such that A(i,j) =i^3十j^3. In our case, the matrix will have n^1/3 rows and columns and this matrix of size n^1/3 * n^1/3 we try to search k=i^3+j^3 isn't it  ans algorithms for searching for a number in such a matrix that are linear in the number of rows.

One approach is to start by comparing x to An,1. If  x = An ,l , stop.Otherwise, there are two cases:
- x < A1,n in which case x is less than element at Column n at 1,n position. which mean we can escape whole row itself . we decrement column pointer to left.e.g. previous column.
- x > A1,n , in which case if x > a[1][n] is greater than it will be greater then all elements in Row 1.. we increment the row pointer to next row.


Efficient Solution:
Here is the Pseudo Code For The Same.
int IsNumberEqualstoSumeTwoCubes(int n)
{
       int row=Ceil(Pow(n,1/3));// Pow Has Complexity of O(logn) Ceil(1729)=577
       int column=row;
       int i=0;int j=column;
      while(i<row && j>=0)
     {
               int m=i*i*i+j*j*j;
               if(m==n)
                   return 1; // print i^3 and j^3 these are two such numbers
              else if ( m < n)
               i++;
              else
               j--;
      }
return 0; //such number DNE
}

Complexity Analysis:
In either case, we have a matrix with η fewer elements to search. In each iteration, we remove a row or a column, which means we inspect 2η-1 elements.


We claim that our algorithm that solves the matrix search problem will have to compare x with each of the 2n-l elements shown (i.e the diagonal elements (in case of column element matching )and  the elements immediately below them (in case of row elements matching )and this is obvious just draw a diagram in which both row & column are in sorted order & try to run the above algorithm ).
Call these elemmts the # elements..
Comparing x with any other elements in matrix does not eliminate the any of the # elements.we can easily Proof this by Contradiction:Suppose X algorithm doesn't compare x with  any of the above # elements.
then we could make that element x ( instead of x-1 got to prev. column  or x+1 go to next row.).hence we will get wrong result.

Above Algorithm Really Requires Deep Understanding of Young_tableau :)

Time Complexity O(row+column)=O(N^1/3+N^1/3)=O(2*N^1/3)=O(N^1/3)
Space Complexity O(1)



Friday, September 2, 2011

Get Rid Off Suffix Tree !!!!! An Online Compilation of Helpful Tutorial

Excellent Study Material For Understanding Algorithms & implementing Suffix Tree

6.http://apps.topcoder.com/forums/?module=RevisionHistory&messageID=1171511
7.http://www.stanford.edu/class/cs97si/suffix-array.pdf

Application of Suffix Tree

1.Longest repeated substring problem:
The longest repeated substring problem is finding the longest substring of a string that occurs at least twice. This problem can be solved in linear time and space by building a suffix tree for the string, and finding the deepest internal node in the tree. The string spelled by the edges from the root to such a node is a longest repeated substring. The problem of finding the longest substring with at least k occurrences can be found by first preprocessing the tree to count the number of leaf descendants for each internal node, and then finding the deepest node with at least k descendants.

By from Sartaj Sahni

Find the longest substring of S that appears at least m > 1 times. This query can be answered in O(|S|) time in the following way:
(a) Traverse the suffix tree labeling the branch nodes with the sum of the label lengths from the root and also with the number of information nodes in the subtrie. (b) Traverse the suffix tree visiting branch nodes with information node count >= m. Determine the visited branch node with longest label length.
Note that step (a) needs to be done only once. Following this, we can do step (b) for as many values of m as is desired. Also, note that when m = 2 we can avoid determining the number of information nodes in subtries. In a compressed trie, every subtrie rooted at a branch node has at least two information nodes in it.

Note that step (a) needs to be done only once. Following this, we can do step (b) for as many values of m as is desired. Also, note that when m = 2 we can avoid determining the number of information nodes in subtries. In a compressed trie, every subtrie rooted at a branch node has at least two information nodes in it.
2. Pattern Searching/Sub-String Searching 
Searching for a substring, pat[1..m], in txt[1..n], can be solved in O(m) time (after the suffix tree for txt has been built in O(n) time).
3. Longest Repeated Substring 
4. Longest Common Subsequence 
5. Longest Palindrome
http://www.cs.helsinki.fi/u/ukkonen/SuffixT1withFigs.pdf





Add a special ``end of string'' character, e.g. `$', to txt[1..n] and build a suffix tree; the longest repeated substring oftxt[1..n] is indicated by the deepest fork node in the suffix tree, where depth is measured by the number of characters traversed from the root, i.e., `issi' in the case of `mississippi'. The longest repeated substring can be found in O(n) time using a suffix tree.
The longest common substring of two strings, txt1 and txt2, can be found by building a generalized suffix tree for txt1 andtxt2: Each node is marked to indicate if it represents a suffix of txt1 or txt2 or both. The deepest node marked for both txt1and txt2 represents the longest common substring.
Equivalently, one can build a (basic) suffix tree for the string txt1$txt2#, where `$' is a special terminator for txt1 and `#' is a special terminator for txt2. The longest common substring is indicated by the deepest fork node that has both `...$...' and `...#...' (no $) beneath it.
(Try it using the HTML FORM above.)


Note that the `longest common substring problem' is different to the `longest common subsequence problem' which is closely related to the `edit-distance problem': An instance of a subsequence can have gaps where it appears in txt1 and in txt2, but an instance of a substring cannot have gaps.
A palindrome is a string, P, such that P=reverse(P). e.g. `abba'=reverse(`abba'). e.g. `ississi' is the longest palindrome in `mississippi'. The longest palindrome of txt[1..n] can be found in O(n) time, e.g. by building the suffix tree for txt$reverse(txt)# or by building the generalized suffix tree for txt and reverse(txt).
(Try it.)



Others 
--


Some Awesome Algorithms/Codes For Suffix Tree Implementation

Sunday, August 28, 2011

Given an array A[] and a integer num. Find four no.s in the array whose sum is equal to given num.

Algorithm :

Naive Algorithm Will O(N^4) Use Four Loop & keep Checking for all four elements.its so Naive ,easily understood-able..

Algorithm:
Little Efficient O(N^3).
Sort the input array. O(nlogn)
Then take 4 pointers p1,p2,p3,p4 where
0<=p1<=n-3               1st loop
p1+1<=p2<=n-2       1st inner loop                                                    

in loop set p3=p1+ & p4=n-1
( e.g. Take 3 Pointer Pointing to three successive indexes from starting  & 4th Pointer pointing to n-1th position. )
Now use same algo we used to check for two elements in sorted array whose sum equals to given element or not 3rd Inner Loop

Most Efficient O(N^2)

Algorithm:
Create an array of all possible PAIR sums..that would be done in O(n^2)
Sort the Above array of size n^2 that can be done in.O(n^2log(n)) .
Then Search this array for two pairs..that sum to the required value..this can be done by maintaining two pointer One at the starting index..and other at the highest index..and moving them accordingly..(if sum of pair exceeds given value..move up highest value pointer..else move down..lowest value pointer) .it Will take O(n)

Total Time Complexity Will be O(n^2logn) +O(nlogn) +O(n)=O(n^2logn).
Space Complexity O(N^2).