Absolute legend! Recently I have been realizing how extremely helpful people in the competitive coding community are. Quite shocking to be honest. Like you! How much effort you have put in to help out others is amazing!
Damn, I looked at the problem from your list of 75 problems as I am preparing for an interview, the first time I looked at the problem, I went black, I had a 15 minute timer, I just didn't know what to do and how to proceed. not even close. never could comprehend that a 2D matrix could be a way to look at problems like that, You just opened up my thought process. I have more than 10+ years of experience but I never attempted competitive programming (I'm from a systems engineering background (devops/sre sort) and never required these sorts of problems to be solved, neither in real life nor in any interview). Thanks a ton, Dude for all your efforts. Really appreciate it.
@@PhanNghia-fk5rv He said he never had any interviews or required to solve problems in the past. But as said in the first line, he is preparing for an interview now
Great solution, as always, but even if you solve this starting at the first cell of the table, it would still be a bottom-up approach. Tabulation is called bottom-up because we are starting from a smaller problem and we are building up to the larger problem's solution. Memoization is called a top-down approach because we start from the larger problem and break into smaller problems using recursion (something like recursiveFunction(n - 1)). So, basically, tabulation DP, which is what is done here, is bottom-up. Memoization DP is top-down.
It depends on what the 2d table represents right. I think from this video dp[i][j] represents the lcs of text1[i:] and text2[j:] so in this case starting from the first cell (dp[0][0]) would be a memoization.
I didn't understand this concept until you explained it. As an educator I can confidently say fantastic job! I'm working on this concept on Codecademy and it took me a minute to realize that you set the no character columns as bottom and right, whereas Codecademy does them as left and top. Seeing it done both ways and the subtle differences in the code was extremely helpful to fully comprehend the purpose of this exercise. Thank you!
Thanks for the explanation. It has been exremely helpful as usual!! Note to others: when initialising dp in the beginning, doing dp = [[0] * (len(text2) + 1)] * (len(text1) + 1) does NOT work because this creates "len(text1) + 1" number of REFERENCES, so updating one array will update everything else. You can try and print the dp array and see for yourself. I found this explanation from the LC discuss section, and didn't realise this in my solution and I was stumped on why my answer was incorrect!
If you want to avoid double for loop list comprehension you can only do that in the inner loop so it should look like this instead: dp = [[0] * (len(text2) + 1) for _ in range(len(text1) + 1)]
This is the most incredible explanation of 2D Dynamic Programing solutions I have ever seen. Props to NeetCode for that *Fantastic* visual representation
We could use a full-size 2d grid, but all we really need it 2 rows with the length of the x-axis, in this case, text2. - Time complexity: O(len(text1) * len(text2)) - Space complexity: O(len(text2)) class Solution: def longestCommonSubsequence(self, text1: str, text2: str) -> int: prevRow = [0] * (len(text2) + 1) for r in range(len(text1) - 1, -1, -1): curRow = [0] * (len(text2) + 1) for c in range(len(text2) - 1, -1, -1): if text1[r] == text2[c]: curRow[c] = prevRow[c + 1] + 1 else: curRow[c] = max(curRow[c + 1], prevRow[c]) prevRow = curRow return prevRow[0]
@@ritikajaiswal3824 Try to solve the problem for 30min if you are unable to solve it then look for a video solution. Problem Solving is a skill that will take a lot of time to master!!!!
@@ritikajaiswal3824 What an arrogant statement that is, we can do a math in our mind if it comes to algorithm certain formula/approach needed. Certainly his video helped me to improve a lot and able to apply the concept in other problems too.
Wow! That is something! Had to watch couple of times to understand the very difficult concept.. but as usual, you made it so simmple with your impeccable explanation. Amazing stuff! Thanks a lot!
The best visual explanation for this problem. I finally understand why do we take the 2D DP array. Because every cell in the array holds information to compare every possible subsequence
My favorite channel on youtube!!! Thanks a lot for the great work, it helps me so much! Continue to solve more leetcode problems and help more people to understand it.
RU: Меня просто угнетает тот факт, что я, не зная алгоритма более двух часов пытался решить эту задачу и не смог EN: I’m simply depressed by the fact that, without knowing the algorithm, I tried to solve this problem for more than two hours and could not
There's an important thing to note in solving this problem using bottom up (used here) or top down tabulation approach. Understand that the shorter text has to be the length of the row while the longer text has to be the length of the cols. So in the example, text2 becomes n and text2 m so you can have a nxm mutidimentional array. With this and the excellent explanation here, you can ace this problem in any interview and also show that you understand it making your knowledge of DP better. And also makes you a better programmer.
Couldn't appreciate more, really. My daily routine is basically, continue watching your 75 question playlist, try to solve the problem by myself, then watch your brilliant explanation no matter if I pass it or not. I just completed this 2D DP problem, which I previously feared I couldn't think it through, without watching your code. This feels so good! Simply, thank you!!
Do we really need to hold on to the entire matrix? an optimisation can be done for the space such that we compute row by row as the current value only dependence on the previous row and the right of the current row.
It is still your solution only: but I find normal iteration easier than reverse, it can depend person to person: dp = [[0 for j in range(len(text2)+1)] for i in range(len(text1)+1)] for i in range(1,len(text1)+1): for j in range(1,len(text2)+1): if text1[i-1]==text2[j-1]: dp[i][j] = 1 + dp[i-1][j-1] else: dp[i][j] = max(dp[i-1][j], dp[i][j-1]) return dp[len(text1)][len(text2)]
Hi Rohit , can you explain that why both for loop are not giving string index out of range error as we are doing (len(text1)+1) which will add extra 1 space at last which cannot be iterated at it is not defined.
@@ritvikgaur3444 dp is defined with length +1, and while iterating string we are iterating always i-1, and j-1, so it will always be 1 less than last limit
Since the problem is symmetric (solve start to end or end to start) you can also code a program which starts from 0th index... see this java code : class Solution { public int longestCommonSubsequence(String text1, String text2) { int m= text1.length(), n= text2.length(); int [][] match= new int[m+1][n+1]; for(int i=0; i
Using a top-bottom recursive approach will make the code easier to read in my opinion. The drawing walkthrough helped me to get a more concrete understanding, thanks a lot!
Hey, buddy. I have been watching your videos for a while and learning a lot. I really have to say thank you for the time and efforts you put on. You are doing a great job.
good one!! one of the best explanations I have heard for why the solution of this problem works!! i.e diagonal (when matching chars ) vs max of side way movements during mismatch
Very well explained in a simple and direct way 👍. I initially saw this as inverse of levenshtein algorithm...without the initial values populated in each dimension since we are looking for the max common subsequence instead of no of changes required to turn one string to another. If you change the max comparison to min comparison and start from the beginning you can find the minimum changes required to turn one string to another. This algorithm will work if you iterate from beginning as well. It took me 3-4 hrs to understand levenshtein first time i came across.
You are a saviour man!!! If you have a solution for a question, I always visit yours first (not to mention I never need to visit any other video/blog after that)
I find this problem easier to understand in terms of a decision tree / recursive DP, then bottom up. And this can be optimized fairly easily to O(n) memory complexity.
Hi, Great video. There is one improvement in terms of space complexity. You really don't need to cache all that table. You just need the three values of dp[i+1][j] , dp[i][j+1] and dp[i+1][j+1] you can update these values as you go up and that's it. you dont need more memory. I thought it might be helpful to add it.
The top down also works. That (top down) was the first thing that came to my mind when I first saw the question and when I saw this video, I got confused but when I saw the leetcode solutions then I found out I was right.
Awesome video. We can actually make this O(min(m,n)) space because notice we only have to keep track of 2 rows at any given time. I found the most logical way to write this is to ensure text2 is the smaller variable and base our arrays around that. The reason for that is, we need the bigger string to be the outer loop and the smaller string to be our inner loop in order to make the tabulation work correctly, since we're swapping our rows after each inner loop, and our rows are based around the len(text2). The video solution is perfectly fine, but if you can start with that and get to an ever better space optimization in an interview, it'll look impressive! Passes all test cases. class Solution: def longestCommonSubsequence(self, text1: str, text2: str) -> int: if len(text1) < len(text2): text1, text2 = text2, text1 # text2 is the smaller one, so we base our rows around that cur_row = [0] * (len(text2) + 1) prev_row = [0] * (len(text2) + 1)
for i in range(len(text1) - 1, -1, -1): for j in range(len(text2) - 1, -1, -1): if text1[i] == text2[j]: cur_row[j] = 1 + prev_row[j + 1] else: cur_row[j] = max(cur_row[j + 1], prev_row[j]) prev_row, cur_row = cur_row, prev_row
thank you for your content Neetcode, it's really helpful, i'm following your 75 leetcode question on a daily basis. I appreciate your work, sending love from North Africa
How it's possible to come up with such elegant solution directly at the interview without being genius and seeing the problem for the first time? )))))))
It can be solved in memory complexity of O(n). check my code. row = [0]*(len(text2)+1) for i in range(len(text1)-1, -1,-1): newrow = [0]*(len(text2)+1) for j in range(len(text2)-1, -1, -1): if text1[i]==text2[j]: newrow[j] = 1 + row[j+1] else: newrow[j] = max(row[j], newrow[j+1]) row = newrow return row[0]
Why does my code not work when I initialize my DP matrix like this: mat = [ [0] * (N2 + 1)] * (N1 + 1) , but it does work when I initialize like this: mat = [[ 0 for j in range(N2 + 1)] for i in range(N1 + 1)] ? N1 is len(text1) and N2 is len(text2)
Sorry if by any chance this is a dupe comment. Exploiting the symmetry of the problem, it seems, one can pad on left and top and iterate from left to right going from the first row to the last.
Its quite unclear to me, how am i even supposed to understand this is a 2D DP problem during the interview. It would be really helpful if you would go into the solution by following some kind of decision tree you would normally do for other DP problem and explain how that come to be a 2D DP table problem.
Lord save us if this is one of the problems we get in an interview and none of the hints make sense. At least when I'm stuck on comparison of two string problem, I always try exploring 2D comparisons
A useful way to think about that is, this kind of question needs to feel like a medium to you to know that you're at the level required to solve this question in an interview. So that's how much you have to improve. Just keep practicing and you'll find that noticing the patterns gets easier over time.
Is it possible to implement a recursive w/ caching solution to this problem, similar to the other DP problems you have solved? If so, do you think you could describe the approach?
I dont understand why most solutions have the intuition to start at the end of both strings and work back up to [0, 0]. It works either way, and to me it just made sense to start at the top left and end at the bottom right -- why does everyone intuit the other way?
@NeetCode : Thanks for explanation BUT why and how we directly jump to Tabulation approach ? What's the brute force way to think and solve before jumping to Tabulation aka DP. That's what interviewer will ask, else it will look like I have memorized without showing brute-force approach. let me know your thoughts !!!!! Also what tool are you using for your visuals ? TIA !
I am just starting leetcode and am at about 15 problems only. Please share how many problems you guys have done and some strategies that might be helpful.
How would you then use the DP table to obtain the actual best sequence? I suppose you start at the top left. If you find same symbol, move diagonally down. Otherwise take the max of bottom or right. Does that always work?
Same. DP is highly varied, that's the reason. Core idea is simple, but the way it's applied each time can seem like it's such a difficult strategy to master. Also, there is Advanced DP (which is commonly used in Competitive Programming), which is way harder than LeetCode questions.
First thing that came to my mind when I saw this question was using two pointer. I tried so but failed. Is it possible to solve this question using two pointer? Also, do I have to memorize that questions like this requires the use of dp? Did you also memorize it or did it come to you intuitively? Thanks
i have two question 1. is it posible if size of J is more than size of I ? 2. what the LCS of this quest, if I = [a e d a b] and J = [d e b c a g] ? [e d a b] or [d e b a] ?
🚀 neetcode.io/ - I created a FREE site to make interview prep a lot easier, hope it helps! ❤
Absolute legend! Recently I have been realizing how extremely helpful people in the competitive coding community are. Quite shocking to be honest. Like you! How much effort you have put in to help out others is amazing!
Damn, I looked at the problem from your list of 75 problems as I am preparing for an interview, the first time I looked at the problem, I went black, I had a 15 minute timer, I just didn't know what to do and how to proceed. not even close. never could comprehend that a 2D matrix could be a way to look at problems like that, You just opened up my thought process.
I have more than 10+ years of experience but I never attempted competitive programming (I'm from a systems engineering background (devops/sre sort) and never required these sorts of problems to be solved, neither in real life nor in any interview).
Thanks a ton, Dude for all your efforts. Really appreciate it.
If the computer man cannot how can lesser mortals like some of us could😢?
Ty for ur sharing, i have an westion what bring u here to leetcode as u said that u dont need it for job
@@PhanNghia-fk5rv He said he never had any interviews or required to solve problems in the past. But as said in the first line, he is preparing for an interview now
Great solution, as always, but even if you solve this starting at the first cell of the table, it would still be a bottom-up approach. Tabulation is called bottom-up because we are starting from a smaller problem and we are building up to the larger problem's solution.
Memoization is called a top-down approach because we start from the larger problem and break into smaller problems using recursion (something like recursiveFunction(n - 1)).
So, basically, tabulation DP, which is what is done here, is bottom-up.
Memoization DP is top-down.
Thanks!
It depends on what the 2d table represents right. I think from this video dp[i][j] represents the lcs of text1[i:] and text2[j:] so in this case starting from the first cell (dp[0][0]) would be a memoization.
I didn't understand this concept until you explained it. As an educator I can confidently say fantastic job!
I'm working on this concept on Codecademy and it took me a minute to realize that you set the no character columns as bottom and right, whereas Codecademy does them as left and top. Seeing it done both ways and the subtle differences in the code was extremely helpful to fully comprehend the purpose of this exercise. Thank you!
Thanks for the explanation. It has been exremely helpful as usual!!
Note to others: when initialising dp in the beginning, doing dp = [[0] * (len(text2) + 1)] * (len(text1) + 1) does NOT work because this creates "len(text1) + 1" number of REFERENCES, so updating one array will update everything else. You can try and print the dp array and see for yourself. I found this explanation from the LC discuss section, and didn't realise this in my solution and I was stumped on why my answer was incorrect!
If you want to avoid double for loop list comprehension you can only do that in the inner loop so it should look like this instead:
dp = [[0] * (len(text2) + 1) for _ in range(len(text1) + 1)]
Thank you. Was wondering the same.
Oh woww thank you man I was so perplexed 🤣
thanks for this
dude, I never write comments but thank you !!! I hope you know that you have made an impact on several people's lives for the better.
This is the most incredible explanation of 2D Dynamic Programing solutions I have ever seen.
Props to NeetCode for that *Fantastic* visual representation
Your channel has the best content on Dynamic Programming, both from the theory as well as the coding perspective!
We could use a full-size 2d grid, but all we really need it 2 rows with the length of the x-axis, in this case, text2.
- Time complexity: O(len(text1) * len(text2))
- Space complexity: O(len(text2))
class Solution:
def longestCommonSubsequence(self, text1: str, text2: str) -> int:
prevRow = [0] * (len(text2) + 1)
for r in range(len(text1) - 1, -1, -1):
curRow = [0] * (len(text2) + 1)
for c in range(len(text2) - 1, -1, -1):
if text1[r] == text2[c]:
curRow[c] = prevRow[c + 1] + 1
else:
curRow[c] = max(curRow[c + 1], prevRow[c])
prevRow = curRow
return prevRow[0]
Bro please upload videos daily. I'm very dependent on you. Your videos are the best to understand.
can you tell me whether watching the solutions helped you in doing good in DSA?
@@ritikajaiswal3824 Try to solve the problem for 30min if you are unable to solve it then look for a video solution. Problem Solving is a skill that will take a lot of time to master!!!!
@@ritikajaiswal3824 What an arrogant statement that is, we can do a math in our mind if it comes to algorithm certain formula/approach needed. Certainly his video helped me to improve a lot and able to apply the concept in other problems too.
@@ritikajaiswal3824 it helped me a lot, in both DS and algorithms
From trivial questions to niche ones, every single video is quality - great stuff man!
Wow! That is something! Had to watch couple of times to understand the very difficult concept.. but as usual, you made it so simmple with your impeccable explanation. Amazing stuff! Thanks a lot!
you make it look so SIMPLE !!! In fact after the visualization/explanation, the code just comes naturally to one's mind.
I've watched a bunch of videos to understand this question, and this one is by far the most intuitive to me. I can't thank you enough. 👏👏👏👏👏
Genius solution. Took 3-4 replays to fully grasp, but I feel great about it now. Thanks for your work!
The best visual explanation for this problem. I finally understand why do we take the 2D DP array. Because every cell in the array holds information to compare every possible subsequence
My favorite channel on youtube!!! Thanks a lot for the great work, it helps me so much!
Continue to solve more leetcode problems and help more people to understand it.
RU: Меня просто угнетает тот факт, что я, не зная алгоритма более двух часов пытался решить эту задачу и не смог
EN: I’m simply depressed by the fact that, without knowing the algorithm, I tried to solve this problem for more than two hours and could not
There's an important thing to note in solving this problem using bottom up (used here) or top down tabulation approach. Understand that the shorter text has to be the length of the row while the longer text has to be the length of the cols. So in the example, text2 becomes n and text2 m so you can have a nxm mutidimentional array. With this and the excellent explanation here, you can ace this problem in any interview and also show that you understand it making your knowledge of DP better. And also makes you a better programmer.
Couldn't appreciate more, really. My daily routine is basically, continue watching your 75 question playlist, try to solve the problem by myself, then watch your brilliant explanation no matter if I pass it or not. I just completed this 2D DP problem, which I previously feared I couldn't think it through, without watching your code. This feels so good! Simply, thank you!!
I love the way you explain complicated problems like this one. There's just some many different approaches!
Thank you so much :)
I am really struggling to wrap my head around coding, but your explanation was so engaging and simple. Thank you so much.
Do we really need to hold on to the entire matrix? an optimisation can be done for the space such that we compute row by row as the current value only dependence on the previous row and the right of the current row.
I have been struggling to get my mind around this until found this video. Thanks 🙏
It is still your solution only:
but I find normal iteration easier than reverse, it can depend person to person:
dp = [[0 for j in range(len(text2)+1)] for i in range(len(text1)+1)]
for i in range(1,len(text1)+1):
for j in range(1,len(text2)+1):
if text1[i-1]==text2[j-1]:
dp[i][j] = 1 + dp[i-1][j-1]
else:
dp[i][j] = max(dp[i-1][j], dp[i][j-1])
return dp[len(text1)][len(text2)]
Yeah, I'll probably do future problems with normal iteration
@@NeetCode hey, you replied me thankyou so much would like to connect more. Since I want to become a faang engineer.
💯agree - forward iteration is much easier to follow
Hi Rohit , can you explain that why both for loop are not giving string index out of range error as we are doing (len(text1)+1) which will add extra 1 space at last which cannot be iterated at it is not defined.
@@ritvikgaur3444 dp is defined with length +1,
and while iterating string we are iterating always i-1, and j-1, so it will always be 1 less than last limit
Since the problem is symmetric (solve start to end or end to start) you can also code a program which starts from 0th index... see this java code :
class Solution {
public int longestCommonSubsequence(String text1, String text2) {
int m= text1.length(), n= text2.length();
int [][] match= new int[m+1][n+1];
for(int i=0; i
wasnt expecting the code to be that short. amazing video btw, long your intuition in the beginning
Dude NeetCode you are life savior, keep it up bro
Using a top-bottom recursive approach will make the code easier to read in my opinion.
The drawing walkthrough helped me to get a more concrete understanding, thanks a lot!
you deserve everything this world has to offer
Hey, buddy. I have been watching your videos for a while and learning a lot. I really have to say thank you for the time and efforts you put on. You are doing a great job.
Thank you so much, I have had this problem and I never understood the solution until now! They never taught this algorithm in my DS and Algo class
good one!! one of the best explanations I have heard for why the solution of this problem works!! i.e diagonal (when matching chars ) vs max of side way movements during mismatch
Very well explained in a simple and direct way 👍. I initially saw this as inverse of levenshtein algorithm...without the initial values populated in each dimension since we are looking for the max common subsequence instead of no of changes required to turn one string to another. If you change the max comparison to min comparison and start from the beginning you can find the minimum changes required to turn one string to another. This algorithm will work if you iterate from beginning as well. It took me 3-4 hrs to understand levenshtein first time i came across.
FYI, I did a space compression. The memory complexity is O(n).
def longestCommonSubsequence(self, text1: str, text2: str) -> int:
dp = [0] * (len(text2) + 1)
for i in range(len(text1) - 1, -1, -1):
nextDP = [0] * (len(text2) + 1)
for j in range(len(text2) - 1, -1, -1):
if text1[i] == text2[j]:
nextDP[j] = 1 + dp[j + 1]
else:
nextDP[j] = max(dp[j], nextDP[j + 1])
dp = nextDP
return dp[0]
Genius
The best explanation of LCS I have seen. Thanks man.
You are a saviour man!!! If you have a solution for a question, I always visit yours first (not to mention I never need to visit any other video/blog after that)
I find this problem easier to understand in terms of a decision tree / recursive DP, then bottom up. And this can be optimized fairly easily to O(n) memory complexity.
this is the best video on this problem on yt
great video, thanks as usual. In this case I find it easier to iterate the rows and columns in regular (and not reversed) order.
Hi, Great video. There is one improvement in terms of space complexity. You really don't need to cache all that table. You just need the three values of dp[i+1][j] , dp[i][j+1] and dp[i+1][j+1] you can update these values as you go up and that's it. you dont need more memory. I thought it might be helpful to add it.
You mean to declare 3 variables, lets say, diagonal = 0, right = 0, down = 0 ?
The top down also works. That (top down) was the first thing that came to my mind when I first saw the question and when I saw this video, I got confused but when I saw the leetcode solutions then I found out I was right.
Your explanation made the solution so easy to understand! Thanks a lot for making this video, it was veryyy helpful! Keep up the good work!
Once the logic explanation was done...code looks easy peasy
Great work.
i think this is easy to do after learning the solution but there was no way I would be able to figure out the solution myself
Man you are a good teacher ! Just found out about your channel and subscribed
You don't write code, you write poems.
Awesome video. We can actually make this O(min(m,n)) space because notice we only have to keep track of 2 rows at any given time. I found the most logical way to write this is to ensure text2 is the smaller variable and base our arrays around that. The reason for that is, we need the bigger string to be the outer loop and the smaller string to be our inner loop in order to make the tabulation work correctly, since we're swapping our rows after each inner loop, and our rows are based around the len(text2).
The video solution is perfectly fine, but if you can start with that and get to an ever better space optimization in an interview, it'll look impressive!
Passes all test cases.
class Solution:
def longestCommonSubsequence(self, text1: str, text2: str) -> int:
if len(text1) < len(text2):
text1, text2 = text2, text1
# text2 is the smaller one, so we base our rows around that
cur_row = [0] * (len(text2) + 1)
prev_row = [0] * (len(text2) + 1)
for i in range(len(text1) - 1, -1, -1):
for j in range(len(text2) - 1, -1, -1):
if text1[i] == text2[j]:
cur_row[j] = 1 + prev_row[j + 1]
else:
cur_row[j] = max(cur_row[j + 1], prev_row[j])
prev_row, cur_row = cur_row, prev_row
return prev_row[0]
This was such a simple explanation! Thank you!
As usual, its a wonderful explanation of the bottom up approach. Thank you so much!!!
thank you for your content Neetcode, it's really helpful, i'm following your 75 leetcode question on a daily basis. I appreciate your work, sending love from North Africa
You are AWESOME!! I wish I had known about your channel earlier.
Clear and simple, thanks a lot.
Great explanation to understand! Thanks.
Another great tutorial. Much thanks!
How it's possible to come up with such elegant solution directly at the interview without being genius and seeing the problem for the first time? )))))))
great explanation Thank You NeetCode I am follow you through out my dsa journey
It can be solved in memory complexity of O(n). check my code.
row = [0]*(len(text2)+1)
for i in range(len(text1)-1, -1,-1):
newrow = [0]*(len(text2)+1)
for j in range(len(text2)-1, -1, -1):
if text1[i]==text2[j]:
newrow[j] = 1 + row[j+1]
else:
newrow[j] = max(row[j], newrow[j+1])
row = newrow
return row[0]
You are great at explaining these problems! thank you.
Why does my code not work when I initialize my DP matrix like this: mat = [ [0] * (N2 + 1)] * (N1 + 1) , but it does work when I initialize like this: mat = [[ 0 for j in range(N2 + 1)] for i in range(N1 + 1)] ? N1 is len(text1) and N2 is len(text2)
Sorry if by any chance this is a dupe comment. Exploiting the symmetry of the problem, it seems, one can pad on left and top and iterate from left to right going from the first row to the last.
Its quite unclear to me, how am i even supposed to understand this is a 2D DP problem during the interview. It would be really helpful if you would go into the solution by following some kind of decision tree you would normally do for other DP problem and explain how that come to be a 2D DP table problem.
thank you so much bro u literally answered so much of my confusion.
You have quality content, man. Cheers :)
Lord save us if this is one of the problems we get in an interview and none of the hints make sense.
At least when I'm stuck on comparison of two string problem, I always try exploring 2D comparisons
Your solution is great but how did u find out that this problem is actually 2D DP problem?
Thank you so much! learned a lot from your channel
You are the best as always. Keep it up, dear.
Better than a Uni course in Algorithms.
Holy crap your stuff really helped me out man
for me the top down approach (or recursive or memoized approach) is more intiuitive. I feel like code is take to me in that way
can just maintain 2 rows (the last and 2nd last rows) to optimise for space complexity
Everybody - NeetCode: Subsequence
NeetCode: Subsekence
lol thats true
It's much easier to explain if you start with the full dfs solution. Otherwise, it's hard to give intuition for the the 2D array.
How is this a medium and not a hard 😢
I would categorize it as very very hard
The 2 d approach is hard to grasp, if you think in a recursive or map a decision tree in your mind it will be much easier
A useful way to think about that is, this kind of question needs to feel like a medium to you to know that you're at the level required to solve this question in an interview. So that's how much you have to improve. Just keep practicing and you'll find that noticing the patterns gets easier over time.
I was preparing for interviews and directly jumped to 2 DP. I kinda knew that there are 2 hard DPs but I thought they were 2 DP and 3 DP 😂
superb explanation as always... but can we just do it with 1D dp for last row then update it as we move forward, just like we did in unique paths?
Great explanation, THANK YOU.
Is it possible to implement a recursive w/ caching solution to this problem, similar to the other DP problems you have solved? If so, do you think you could describe the approach?
This was so well explained! thank you so much.
Will the bottom up approach work if you start from the start of the substrings instead of at the end? Great video btw!
yeap it does, but the length is save at the last element in the array.
This was great really made me understood the concept. Thank you! Is there one for three strings?
I felt like top down is more intuitive to me in this case?
The top down is almost always more intuitive. Especially for 2D dp problems
I dont understand why most solutions have the intuition to start at the end of both strings and work back up to [0, 0]. It works either way, and to me it just made sense to start at the top left and end at the bottom right -- why does everyone intuit the other way?
@NeetCode : Thanks for explanation BUT why and how we directly jump to Tabulation approach ? What's the brute force way to think and solve before jumping to Tabulation aka DP. That's what interviewer will ask, else it will look like I have memorized without showing brute-force approach. let me know your thoughts !!!!!
Also what tool are you using for your visuals ? TIA !
I am just starting leetcode and am at about 15 problems only. Please share how many problems you guys have done and some strategies that might be helpful.
blind 75 is the way .. keep at it ...
You can bring it down to O(COLS) space complexity
Superb explanation
Well, I finally understand sequence alignment from my computational genomics class much better...
Its possible to optimise this further by calculating the values in the cells we need only right?
That's exactly what I was thinking as well; it seems like it would be possible to only have two rows
Yes
Here is my bottom up solution:
```python
class Solution:
def longestCommonSubsequence(self, text1: str, text2: str) -> int:
memo = defaultdict(int)
for i in range(len(text1)):
for j in range(len(text2)):
if text1[i] == text2[j]:
memo[(i, j)] = memo[(i - 1, j - 1)] + 1
else:
memo[(i, j)] = max(memo[(i - 1, j)], memo[(i, j -1)])
return memo[i, j]
```
How would you then use the DP table to obtain the actual best sequence? I suppose you start at the top left. If you find same symbol, move diagonally down. Otherwise take the max of bottom or right. Does that always work?
Why not forward to bottom we can get the last value of the matrix right ? Is there any specific reason for bottom up approach ?
wondering the same since top down approach comes to my mind by default. Is there any specific reason that we are doing bottom up ?
@@SolutionHunterz didnt find any but some problems are solved only on that way
may be because we dont need to do array[array.length-1][array[0].length-1] to get the last index
@@FluffyBRudy um but as we are adding a row and a column initially it would be array[n][n] where n is the length of the string
@@FluffyBRudy understood your point, it would be different if the two strings compared with different length, thanks man !!!
Nicely explained.
sigh, every time I think I got this, I know what is DP, I should make use of bottom up strategy, then frustration set in
Same. DP is highly varied, that's the reason. Core idea is simple, but the way it's applied each time can seem like it's such a difficult strategy to master. Also, there is Advanced DP (which is commonly used in Competitive Programming), which is way harder than LeetCode questions.
First thing that came to my mind when I saw this question was using two pointer. I tried so but failed. Is it possible to solve this question using two pointer? Also, do I have to memorize that questions like this requires the use of dp? Did you also memorize it or did it come to you intuitively? Thanks
Thank you I finally understand it ❤
awesome explanation!
when use dp = [[0]*(len(text2)+1)]*(len(text1)+1) for creating 2d array then in some case it fail , but i am not getting why it fail in some cases.
i have two question
1. is it posible if size of J is more than size of I ?
2. what the LCS of this quest, if I = [a e d a b] and J = [d e b c a g] ? [e d a b] or [d e b a] ?
Best explanation out there!