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common-child.py
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common-child.py
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#!/bin/python3
import math
import os
import random
import re
import sys
def lcs(X , Y):
# find the length of the strings
m = len(X)
n = len(Y)
# declaring the array for storing the dp values
L = [[None]*(n+1) for i in range(m+1)]
"""Following steps build L[m+1][n+1] in bottom up fashion
Note: L[i][j] contains length of LCS of X[0..i-1]
and Y[0..j-1]"""
for i in range(m+1):
for j in range(n+1):
if i == 0 or j == 0 :
L[i][j] = 0
elif X[i-1] == Y[j-1]:
L[i][j] = L[i-1][j-1]+1
else:
L[i][j] = max(L[i-1][j] , L[i][j-1])
# L[m][n] contains the length of LCS of X[0..n-1] & Y[0..m-1]
return L[m][n]
# Complete the commonChild function below.
def commonChild(s1, s2):
common_letters = set(s1) & set(s2)
print("intersect: {}".format(common_letters))
if (not bool(common_letters)):
return 0
s1_filt = "".join([x for x in s1 if x in common_letters])
s2_filt = "".join([x for x in s2 if x in common_letters])
print("s1_filt: {}".format(s1_filt))
print("s2_filt: {}".format(s2_filt))
#return LCSubStr(s1_filt, s2_filt, len(s1_filt), len(s2_filt))
return lcs(s1, s2)
if __name__ == '__main__':
fptr = open(os.environ['OUTPUT_PATH'], 'w')
s1 = input()
s2 = input()
result = commonChild(s1, s2)
fptr.write(str(result) + '\n')
fptr.close()