Very comprehensive problem to practice stacks! Together with asteroid collision and daily temps, one can argue understanding those 3 problems alone are a solid prep for stack problems on interviews.
@ShivangiSingh-wc3gk2 жыл бұрын
Did this myself and came to see the solution. I am so happy to see my progress. Thank you soooo much!!!
@gazijarin88664 ай бұрын
The fact that you appended the string AFTER the pop made the problem so easy. I was shaking my head in horror trying to reverse the string once after appending it.
@harishsn48662 жыл бұрын
I know you probably hear this a lot but your explanations are so clear and easy to grasp. Thanks a ton for this.
@CostaKazistov2 жыл бұрын
It's no wonder Google hired him in a heartbeat. NeetCode has a great talent for reducing complex problems into simplest and digestible way.
@Iamnoone563 жыл бұрын
this was asked in my amazon sde 1 interview somehow i managed t solved it. holy cow!
@xinli74772 жыл бұрын
Wow, they ask such difficult questions for sde 1? Congrats on solving it!
@PP-pe3fs Жыл бұрын
You have my respect
@deathbombs2 жыл бұрын
Great explanation and diagrams!! This is what I got: The things to decode have this pattern: Coefficient(content) 2 things needed:coefficient, and content My approach using stack was adding just the {}, and tracking the indexes for substring , but I like your approach is cleaner by adding everything to stack. General approach: for all chars in string if stack is Empty: if isDigit: calculate the numerical part/coefficient, if (, add to stack, save startindex if is character, add to string builder if stack is not empty: add everything if is ), remove from stack if stack is empty, recursively call helper(s.substring(startIndex+1, endIndex)
@kylefan84783 жыл бұрын
this is a very good explanation, very concise and clear code. I implemented this in C++ and got 100% time and 96% memory.
@watchlistsclips31962 жыл бұрын
please send me cpp code i am getting wrong answer in one test case
@watchlistsclips31962 жыл бұрын
This is my code: class Solution { public: string stuff(int n,string s) { string t; while(n--) t+=s; return t; } int stringToNum(string s) { int num=0; for(int i=0;i
@SriHarishPopuri3 ай бұрын
The sub string calculation in this solution (which is done twice btw) is a costly operation to do, both in time and space. Strings are immutable and this above way of calculating substrings can lead to quadratic time complexity when calculating the multiplier or inner string between square brackets, when there are large inputs. Instead, the characters can be appended to a list and joined using "".join(list) method, which will have linear time complexity. Thats a lot better in terms of the time and space complexities.
@amogchandrashekar81593 жыл бұрын
You make things feel so easy! Thank you so much 😀
@varunshrivastava27062 жыл бұрын
Then maybe its just me who still didn't understood it.
@victoronofiok5202 жыл бұрын
@@varunshrivastava2706 I would ask that you watch it again if so and jott what you can as you follow along Bless🙏
@LeetCodeSimplified2 жыл бұрын
According to LeetCode premium, the time complexity of this solution is actually O(maxK^countK * n), where maxK is the maximum value of k, countK is the count of nested k values and n is the maximum length of the encoded string. Example, for s = 20[a10[bc]], maxK is 20, countK is 2 as there are 2 nested k values (20 and 10). Also, there are 2 encoded strings a and bc with the maximum length of the encoded string n as 2.
@shubhamshrivastava86492 жыл бұрын
Amazingly explained, was able to implement without even looking at code. Thank you!
@AnupBhatt2 жыл бұрын
First coding channel on KZbin that I put the bell icon to receive all updates for !!
@CostaKazistov2 жыл бұрын
Same
@susmi519103 жыл бұрын
You explain these problems so well! can you please do a video on the problem " Guess the word" ?
@begenchorazgeldiyev52982 жыл бұрын
I don't know why I am still using java. I came up with the same solution with a stack but it is at least twice longer thanks to java. This is so easy to read and comprehend.
@utsavshrestha71622 жыл бұрын
Lol same bro. Python is the best language for interviews in my opinion.
@chrischika70262 ай бұрын
yup, hope you made the siwtch.
@brandenimmerzeel81825 ай бұрын
Thanks, i ended up solving this with recursion on my first attempt. I used this video to learn how to apply stacks to the problem. Thank you.
@carloscarrillo2012 жыл бұрын
You are coding god, man. You're in my idol list, right next Van Halen!
@ren-hauchuang20052 жыл бұрын
This is the way better solution than official ones
@wangyex2 жыл бұрын
This is actually the best tutorial I found on the internet
@arghya_0802 Жыл бұрын
One of the best solution availabe on YT. Great work sir. Huge fan of the way you break tough and/or complex problems into simpler versions!!😍😍
@thndesmondsaid3 ай бұрын
aw man, tried this on my own and thought to use a stack but couldn't figure out the algo. Thank you!
@saifmohamed17763 жыл бұрын
i think if we consider the length of the output string is K then the time complx will be linear in this length K -> O(k) ;
@cherylto5898 Жыл бұрын
Love your videos, the clearest explainations I've come across among all the other ones ... Keep it up!
@pif50238 ай бұрын
Great video! Thanks! This problem showed me stacks are amazing for accruing and backtracking in an organic way!
@jinny50253 жыл бұрын
Best explanation as always!
@satya00155 Жыл бұрын
much easier to understand than upvoted solutions which I could never do interview.
@yondensawyers2778 Жыл бұрын
I solved this a different way in linear time by using two stacks; one of factors where the top of the stack is the last number for the characters and another stack containing the substrings. whenever a ] character is detected it pops the two from their respective stacks, multiplies them, then appends it to the next top of the characters stack.
@sudoaptinstallrana9572 Жыл бұрын
can you share your solution i am thinking in the same way
@iamcarlostovias2 ай бұрын
This was my original intuition as well.
@ashutosh15412 жыл бұрын
Man this is so easy in python .. i was doing it in C++ . i had the same logic but implementation was so tough for it
@kashishshukla232 жыл бұрын
Best explanation man! TYSM for your efforts.
@october35182 жыл бұрын
wow usually I feel a bit anxious when not able to come up with a soln, I have been watching ur few vids! explanations r crisp and easy to understand, I even like it's in python while I code in cpp lol
@Gnaneshh3 жыл бұрын
Terrific explanation!!
@samridhshubham8109 Жыл бұрын
A very excellent problem and explanation!
@pushpitkaushik76092 ай бұрын
How are you accounting for this edge case ? “vvvlo” Your algo would return “vlovv” or “” Where a string is possible “vlvov”
@atulkumar-bb7vi Жыл бұрын
Explanation put very simple way, thanks for this!
@arun-ph9cn2 жыл бұрын
WOW. the solution and explanation is simply superb!!
@adityavikrant38473 ай бұрын
Great solution! Could you explain why we need to check whether the stack exists before popping digits?
@prafulparashar98493 жыл бұрын
Great explanation !! I was wondering whether we can do it solely by recursion calls?
@Cloud-5772 жыл бұрын
yes you can
@chenhaibin20103 жыл бұрын
Great clear explanation as always. thanks
@dipeshprajapat1203 Жыл бұрын
Your way of explanation awsome
@joydeep_4 ай бұрын
Phenomenal explanation!!
@bumpin77892 жыл бұрын
How long do you actually take to solve these questions for the first time? It seems to take more than 1.5hrs for me.
@ethanwong22722 жыл бұрын
It's much easier to write it in Python than in Java.
@CostaKazistov2 жыл бұрын
And even easier in Kotlin 😉
@nemesis_rc3 жыл бұрын
Well explained.
@hhcdghjjgsdrt235 Жыл бұрын
stack makes this problem pretty much easier
@boybi6122 жыл бұрын
very neat code
@abhitripathi Жыл бұрын
You are amazing, Thanks a lot Lots of love
@ekanshsharma1309 Жыл бұрын
thank you so much sir for this amazing explaination🙇♂❤
@Cloud-5772 жыл бұрын
recursive is same as maintaining our own stack
@kakdi773 жыл бұрын
Thanks for the video. Can you also do the Encode verion of this the (Leetcode 471) ?
@k999ford Жыл бұрын
Is there a reason you always do range(len(s)) instead of for x in s or enumerate(s)? I've been watching a lot of of these (great) videos and I noticed that, so I'm wondering...
@denni40702 жыл бұрын
Just got this for a new grad position and I failed it miserably, should have watched more vids :(
@everydaylifeisgood2 жыл бұрын
I was giving this problem for google's phone interview today. I didn't do as well :(
@ksanjay665 Жыл бұрын
This was asked in Zoho software developer role
@Gaurav-ln8ze Жыл бұрын
Thank you so much sir for your great and clear explanation. Here the code in c++ :- class Solution { public: string decodeString(string s) { string ans="", substr="", k; int n=s.size(); stack st; for(int i=0; i
@thanirmalai Жыл бұрын
Amazing explanation but i cant think of why i cant solve it by myself
@andrewpaul6251 Жыл бұрын
It seems leetcode added a testcase and this code no longer works
@kazirafidraiyan2553 Жыл бұрын
**This Works** class Solution: def decodeString(self, s: str) -> str: out_str = [] digit = 0 for i in range(len(s)): if s[i] != "]": out_str.append(s[i]) if s[i].isdigit(): digit += 1 else: sub_str = "" while out_str[-1] != "[": sub_str = out_str.pop() + sub_str out_str.pop() n = "" while out_str and out_str[-1].isdigit(): n = out_str.pop() + n n = int(n) out_str.append(int(n)*sub_str) if digit == len(s): return "" else: return "".join(out_str)
@matthewb2133 Жыл бұрын
great video, thanks
@nagendrabommireddi84372 жыл бұрын
thank you sir
@amitupadhyay65113 жыл бұрын
I did everything same except : substr+=stack.pop() and finally, substr=substr[::-1] and similar for k how m i am failing a test case. Could you please explain the difference ? Failed test case:"3[z]2[2[y]pq4[2[jk]e1[f]]]ef"
@chenhaibin20103 жыл бұрын
I guess you essentially have substr = substr + pop instead of pop + substr, so the order of letters are not the same.
@watchlistsclips31962 жыл бұрын
I even getting the wrong answer in cpp with the same test you failed.Please tell where i did wrong. class Solution { public: string stuff(int n,string s) { string t; while(n--) t+=s; return t; } int stringToNum(string s) { int num=0; for(int i=0;i
@crazier1922 жыл бұрын
The example showed with 54[ab] which has a 2 digits number. But the solution doesn't account for it. Hope you have time to update the video.
@CostaKazistov2 жыл бұрын
Actually it does. Line 15 while loop builds a string which then gets converted to Int on Line 17.
@crazier1922 жыл бұрын
@@CostaKazistov Thank you! It's my bad, sorry.
@rahulpothula1902 Жыл бұрын
my c++ solution(same logic as explained in the video): class Solution { public: string decodeString(string s) { stack stk; string str = ""; for(auto it: s) { if(it >= 'a' and it = '0' and it = "0" and stk.top() 0) counts = stoi(count); for(int i = 0; i < counts - 1; i++) str += str1; stk.push(str); } } string ans = ""; while(!stk.empty()) { ans = stk.top() + ans.substr(0, ans.length()); stk.pop(); } return ans; } };
@tynshjt10 ай бұрын
is there another way to solve this without using Stack?
@ChinmayAnaokar-xm4ci Жыл бұрын
C# code for above logic : public static class AppHelper { public static String DecodeString(String s) { Stack st = new Stack(); for (int i = 0; i < s.Length; i++) { if (s[i] != ']') { st.Push(s[i]); } else { string curr_str = ""; while (st.Peek() != '[') { curr_str = st.Peek() + curr_str; st.Pop(); } st.Pop(); string number = ""; while (st.Count > 0 && Char.IsDigit(st.Peek())) { number = st.Peek() + number; st.Pop(); } int noKTimes = Convert.ToInt32(number); while (noKTimes > 0) { for (int p = 0; p < curr_str.Length; p++) { st.Push(curr_str[p]); } noKTimes--; } } } s = ""; while (st.Count > 0) { s = st.Peek() + s; st.Pop(); } return s; } }
@naodtewodrosasregdew2782 Жыл бұрын
GOAT
@harshitrathore17442 жыл бұрын
Very Nice Explanation. Thanks, Buddy...
@nanyangbuyuweng Жыл бұрын
I don't think the code can cover the corner case as "3"
@MeetManga2 жыл бұрын
should line 16: k = stack.pop() * 10 +k ?
@CostaKazistov2 жыл бұрын
Then the digits of K number would be in the wrong order. Popping from the stack retrieves the digits in reverse order. Stepping it through in a debugger makes it easy to see.
@willcoomans96745 ай бұрын
what is the space complexity?
@edwardteach23 жыл бұрын
U a God
@ryanc16633 жыл бұрын
Thanks bro u the man
@dohunkim29222 жыл бұрын
the part where you did “while stack and stack[-1].isdigit():” kinda confuses me. Isn’t the stack always nonempty? There always has to be an integer in front of ‘[‘, otherwise we don’t even need to use brackets. Validating whether the stack is empty or not doesn’t seem to be necessary, but the code doesn’t work if I don’t validate it. I’m so lost here
@D_T2442 жыл бұрын
If our input is "23[a]", when we get to line 15 our stack will contain just [2, 3], we have to keep popping numbers but we need to stop once the stack is empty else we'll get an index error when doing stack[-1].isdigit() check. The isdigit() check catches the following case: input = 23[a4[b]] then our stack will be [2, 3, [, a, 4] when we get to that line 15, isdigit() will make sure we don't pop past the number 4 for the current substring we're building.
@dohunkim29222 жыл бұрын
@@D_T244 ohh i didnt consider the case where the integer is a 2digit number. Thansk!!
@greatsunday47802 жыл бұрын
It is so difficult to put Sting and Character in the same stack.
@greatsunday47802 жыл бұрын
in java
@vaidehidharkar33483 жыл бұрын
Can someone compare iterative solution vs recursive solution, in terms of time complexity and suggest which one is better approach?
@dadisuperman34722 жыл бұрын
Same thing. No difference
@hoyinli74622 жыл бұрын
support
@prajwals8203Ай бұрын
Will the interviewer accept regex?
@sellygobeze7173 Жыл бұрын
🐐
@omkarbhale442 Жыл бұрын
Instead of concatenating to string, I appended them all to a list, and called list.reverse() 😅😅 p.s. Stop scrolling comments, and solve some probolems.
@shivamvishawakarma-z6o Жыл бұрын
can any one explain the time complexity of it
@kalyanking10803 жыл бұрын
Need recursive solution
@CostaKazistov2 жыл бұрын
Recursive solution would be easier to code up, yes. But the above solution would be preferred in an interview setting.
@himanshuchauhan9402 жыл бұрын
can anyone help me in solving it in recursively
@YohannesAsfaw-b8b9 ай бұрын
can you do this using recurssion
@Antinormanisto9 ай бұрын
i don't understand why does it work
@ankitkaushal4423 жыл бұрын
wow
@RishirajDesigns Жыл бұрын
every time he said "IN PYTHON", I was looking at my Java code, it was like speaking to me: What? don't look at me like that, go and search on google.