@Spatzist: You are my Saviour

so much thanks for your link... i'm in hell before reading the wiki... i have to learn more on dynammic programming....

Thank you sooo much for this link.It helped me a lot.

Thank you for the link! Really helped understand the concept of obtaining the LCS.

thanks for the link, I had stubbornly been banging my head on this one for quite a while (some days) before checking in here :)

So if someone else is struggling with their python3 solution here is mine with explanations on what is happening and why.

To see the sequence of letters just uncomment the lines working on the lcs_letters matrix, it wont pass all tests though

def commonChild(s1, s2):
    # row 0 = 0, column 0  = 0
    l1 = len(s1)
    l2 = len(s2)
    # we only need history of previous row
    lcs = [[0]*(len(s1)+1) for _ in range(2)]
    #lcs_letters = [['']*(len(s1)+1) for _ in range(2)]
    
    # i in s1 = i+1 in lcs
    for i in range(l1):
        # get index pointers for current and previous row
        li1 = (i+1)%2
        li = i%2
        # j in s1 = j+1 in lcs
        for j in range(l2):
            # i and j are used to step forward in each string.
            # Now check if s1[i] and s2[j] are equal 
            if s1[i] == s2[j]:
                # Now we have found one longer sequence 
                # than what we had previously found.
                # so add 1 to the length of previous longest
                # sequence which we could have found at
                # earliest previous position of each string,
                # therefore subtract -1 from both i and j
                lcs[li1][j+1] = (lcs[li][j] + 1) 
                #lcs_letters[li1][j+1] = lcs_letters[li][j]+s1[li]

            # if not matching pair, then
            # get the biggest previous value
            elif lcs[li1][j] > lcs[li][j+1]:
                lcs[li1][j+1] = lcs[li1][j] 
                #lcs_letters[li1][j+1] = lcs_letters[li1][j]
            else:
                lcs[li1][j+1] = lcs[li][j+1] 
                #lcs_letters[li1][j+1] = lcs_letters[li][j+1]
    #print(lcs_letters[(i+1)%2][j+1])
    return lcs[(i+1)%2][j+1]

Thank you so much. Been beating my brains over this, and it's nice to know that it's a common problem in Computer Science.

Thank you, you save me

Thank you so much Spatzist this link is really helpful even if i didn't understand the whole article but i understant the essatial, because there a lot of details.

thanks man, i have forgotten all that too quickly

In case you want to get to the point and avoid unnecessary info on wikipedia, check out this video: https://www.youtube.com/watch?v=NnD96abizww It explains how to solve the longest common subsequence problem. Using that I was able to implement a solution to this problem. Cheers :)

Thanks! That made enough of a difference to pass test #5.

Thanks! your comment helps a lot to pass test #5!

I would have never figured out why I was timing out in case #5 without this hint. Where can I find out more about the relative performance of file scope vs function scope in python?

I am unsure what you mean by this. I am not an expert python programmer. Could you suggest further sources / examples where I can read up on what you mean? I created a function as described, with the non-recursive version of the algorithm. However, I am still facing the timeout issue in case 5. I am also using O(2m) additional memory.

Are there any other optimizations that I am missing?

I was surprised that moving my code into a function solved TLE for last 5 test cases. Had a hard time figuring this out, but I see that rdn32 has already mentioned it. Something I learned today.

Wow! Interesting, thanks!

Its really interesting! while same code only passes half of the test cases with Python3, with Python2 it passes all test cases. Why it differs that much? Any answer is appreciated!

In c++:

string s1;
cin >> s1;
string s2;
cin >> s2;

// matrix c stores the char count of child string
vector < vector<int> > c(s1.length()+1,vector<int>(s2.length()+1));
for (int i=1;i<=s1.length();i++) {
    for (int j=1;j<=s2.length();j++) {        
        if (s1[i-1]==s2[j-1]) c[i][j]=c[i-1][j-1]+1;
        else c[i][j]=max(c[i][j-1], c[i-1][j]);
    }
} 

cout << c[s1.length()][s2.length()]; 

Also keep poping old rows from memo which are not needed any more.

python2 works fine but python3 gives TLE.......!

Indeed. That's pretty weird.

Thanks!

Bless you!

Indeed so.
Kept banging my head against the keyboard for a couple of days...
Even invented algorithm faster than N^2 using binary trees, which was much faster on smaller strings, but was 4 times slower on 5000 length.

Then gave up and looked at Discussion :)

No need to use dynamic memory. Max string size is 5000. Just use a big statically allocated array.

I tried allocating dynamic memory and also increasing the stack space using pragma directive and still my program shows segmentation fault for the fifth test case. can anyone pls help me..thank you

Dynamic memory is not the correct way to handle this. The correct way is to use an iterative solution rather than the recursive solution.

Need to make dp array global. I don't understand how that solves the problem but it does.

like this

int **array = new int*[length + 1];
for (int i = 0; i < length + 1; ++i)
{
array[i] = new int[length + 1];
}

Dynamic allocation of 2D array helped me pass all the test cases. Thanks.

Thanks for sharing. I am studying on this solution.

Nice try，Thx

This was helpful to me. No idea why max is so much slower than else if.

Same problem in Python3: eliminate it and it goes fast enough.

Not sure about the points but I agree about the "Dynamic Programming" part.

Agree with you @sigbusyff. On the other hand, the "Resources" section give good hints about how to solve the problems. In this particular exercise, "Dynamic Programming Basics" is in the list BTW.

Hi. why are you keeping the size of arr as s1.length()+1 and s2.length()+1?

I tried still 6 timeouts, python 3