amansbhandari Guys, below is the code in O(n) time complexity and O(1) Auxiliary space
#include <cmath> #include <cstdio> #include <vector> #include <iostream> #include <algorithm> using namespace std; int main() { long int N,K,p,q,sum,i,j,max=0,x=0; cin>>N>>K; long int *a=new long int[N+1](); for(i=0;i<K;i++) { cin>>p>>q>>sum; a[p]+=sum; if((q+1)<=N) a[q+1]-=sum; } for(i=1;i<=N;i++) { x=x+a[i]; if(max<x) max=x; } cout<<max; return 0; }
amitkumarjnv2 Your approach is brilliant. Hats off
yugesh can you please explain the logic behind that.?
amitkumarjnv2 see, you are adding sum to a[p] and adding negative sum at a[q+1]. which make sure that when you add element from a[p] to a[q] sum is added only once and it should be subtracted at a[q+1] as this sum span from p to q only. Rest array element are either 0 or some other input sum. max of addition will be output. refer to above code for p, q, and sum.
amansbhandari [deleted]lancerchao Instead of storing the actual values in the array, you store the difference between the current element and the previous element. So you add sum to a[p] showing that a[p] is greater than its previous element by sum. You subtract sum from a[q+1] to show that a[q+1] is less than a[q] by sum (since a[q] was the last element that was added to sum). By the end of all this, you have an array that shows the difference between every successive element. By adding all the positive differences, you get the value of the maximum element
manjiri Important points to note in this solution.
1)the first element of array a will always remain zero since 1<= a <=b <=n; 2
2)the second element of array a is the second element of the array after m operations.
vineet_ahirkar Same solution translated in python -
n, inputs = [int(n) for n in input().split(" ")] list = [0]*(n+1) for _ in range(inputs): x, y, incr = [int(n) for n in input().split(" ")] list[x-1] += incr if((y)<=len(list)): list[y] -= incr; max = x = 0 for i in list: x=x+i; if(max<x): max=x; print(max)
jbwhite And the same approach in ruby -- I claim no credit for working this out -- I wrote this after reading the comments and code posted here.
Just thought I'd add a ruby solution for anyone looking for one.
N, M = gets.chomp.split(' ').map(&:to_i) # create array of zeros of length N + 1 arr = Array.new(N + 1, 0) M.times do # cycle through and get the inputs start, finish, value = gets.chomp.split(' ').map(&:to_i) # increment value at start of sequence arr[start - 1] += value # decrement value at first position after sequence arr[finish] -= value end tmp = 0 max = 0 arr.each do |value| # step through summing array tmp += value # capture the max value of tmp max = tmp if max < tmp end puts max
kaustubh_p16 Same solution in C
int main() { long long int n,k,i,max=0,x=0; scanf("%lld %lld",&n,&k); int *a=(int *)malloc(sizeof(int)*(n+1)); for(i=0;i<n;i++){ *(a+i)=0; } for(i=0;i<k;i++){ long long int c,d,g; scanf("%lld %lld %lld",&c,&d,&g); *(a+c)+=g; if(d+1<=n){ *(a+d+1)-=g; } } for(i=1;i<=n;i++){ x+=*(a+i); if(max<x){ max=x; } } printf("%lld",max); /* Enter your code here. Read input from STDIN. Print output to STDOUT */ return 0; }
acdevbox1 Same solution in C#
using System; using System.Collections.Generic; using System.IO; class Solution { static void Main(String[] args) { string[] inString = Console.ReadLine().Split(' '); uint[] initParams = Array.ConvertAll(inString, UInt32.Parse); uint n = initParams[0]; uint m = initParams[1]; long[] numList = new long[n+1]; for(int i=0; i<m; i++) { string[] opString = Console.ReadLine().Split(' '); uint a = UInt32.Parse(opString[0]); uint b = UInt32.Parse(opString[1]); long k = long.Parse(opString[2]); numList[a] += k; if(b+1 <= n) numList[b+1] -= k; } long tempMax = 0; long max = 0; for(int i=1; i<=n; i++) { tempMax += numList[i]; if(tempMax > max) max = tempMax; } Console.WriteLine(max.ToString()); } }
jmgallagher Same solution in Java
Scanner scan = new Scanner(System.in); int n = scan.nextInt(); int m = scan.nextInt(); //This will be the "difference array". The entry arr[i]=k indicates that arr[i] is exactly k units larger than arr[i-1] long[] arr = new long[n]; int lower; int upper; long sum; for(int i=0;i<n;i++) arr[i]=0; for(int i=0;i<m;i++){ lower=scan.nextInt(); upper=scan.nextInt(); sum=scan.nextInt(); arr[lower-1]+=sum; if(upper<n) arr[upper]-=sum; } long max=0; long temp=0; for(int i=0;i<n;i++){ temp += arr[i]; if(temp> max) max=temp; } System.out.println(max);
Sarthak10 [deleted]jmgallagher It is the same logic as mentioned above.
archanapradeep Hi i dont understand how the difference array works. What is the logic behind adding at one index and subtracting at the other and taking its sum?
boris93 You can try to visualize the array as steps / stairs
We are just noting down the bump ups and bump downs
chikmid I still havent understood this logic.Even though i implemented this logic in java with ease,i dont understand how this logic helps us arrive at the solution.
jricaldi me netheir, I am looking for the maths here, I am pretty sure the solution has a math method. Somebody here wrote "Prefix sum".
mvanwoerkom I tried an answer in the spirit of digital signal processing here.
kemal_caymaz After thinking like that i also understood the logic the solution.
Let's think our summing part input like that {A B S} = {1 3 100} {2 5 150} {3 4 110} {2 4 160}
Instead of writing all elements of array we can write maximum value at just starting and ending indexes to have less writing operation. So, after first input row, array can be something like that.
0 100 0 100 0 0 0 0 0
But the problem is here that even we didn't write anything, value of index 2 is also 100. When we wanted to continue with second step we have to check whether index 2 is between indexes of first row operation or not.
Instead of doing like that we can write S value to index A and -S value to B+1, so it is still similar logic. Starting from A to B all indexes have S value and rest of them have less than these indexes as S as. Now the array is like that:
0 100 0 0 -100 0 0 0 0
While calculating second row, we are writing 150 to index 2 and -150 to index 6. It will be like that: 0 100 150 0 -100 0 -150 0 0
If we write array with old method, which means that all numbers calculated one, it will be: 0 100 250 250 150 150 0 0 0
It shows that value of index 2 is : 100+150 = 250. Value of index 5: 100 + 150 + (-100) = 150. So by calculating with the solution written above, instead of writing all numbers, we are writing changes at edge indexes.
krishnna check it out here, you will get all your doubts solved https://www.geeksforgeeks.org/difference-array-range-update-query-o1/
tejaspatil Below link will also help to understand theory behind it. https://www.geeksforgeeks.org/constant-time-range-add-operation-array/
codam Same solution in Javascript
var arr = []; var max = 0; // init each element of arr to 0 for (let l = 0; l < n; l++) { arr[l] = 0; } // for each sum operation in queries for (let i = 0; i < queries.length; i++) { // update arr with number to add at index=queries[i][0] and number to remove at index=queries[i][0]+1 => this will allow us to build each element of the final array by summing all elements before it. The aim of this trick is to lower time complexity arr[queries[i][0]-1] += queries[i][2]; if (queries[i][1] < arr.length) { arr[queries[i][1]] -= queries[i][2]; } } for (let j = 1; j < n; j++) { arr[j] += arr[j-1]; } for (let k = 0; k < arr.length; k++) { max = Math.max(max, arr[k]); } //max = Math.max(...arr); // not working for big arrays return max;
kamnijais Hey, I did the code in Java8 and my code is getting failed for input type - where only single value is present in a row of array. meaning only left index value is provided and right and k value is missing from array. So can you help me how to solve this issue?
h1017691668 you could post your code,and we can check it out
mevtew simpler in es6:
function arrayManipulation(n, queries) { let arr = new Array(2*n).fill(0); let max = 0;queries.forEach((item) => { arr[item[0]] += item[2]; arr[item[1] + 1] -= item[2]; }); arr.reduce((prev, curr, idx) => { const sum = prev + curr; if (sum > max) { max = sum; } return sum; }) return max;}Rockyfive I did something pretty similar, just with a little bit more readable forEach:
const arr = new Array(n).fill(0); let result = 0; queries.forEach(([a, b, k]) => { arr[a - 1] += k; if (b < arr.length) { arr[b] -= k; } }); arr.reduce((a, b) => { const acc = a + b; result = Math.max(result, acc); return acc; }, 0); return result;susahin80 This produces wrong answer in some of the tests.
Kanahaiya Hi,
try this. Here is the video tutorial for my solution O(n+m) complexity.
https://www.youtube.com/watch?v=hDhf04AJIRs&list=PLSIpQf0NbcCltzNFrOJkQ4J4AAjW3TSmA
Would really appreciate your feedback like and comment etc. on my video.
Fuchsia It is a good video. I understood the algorithm clearly.
Kanahaiya thanks @chandraprabha90.
but it would be great if you can please provide your comments, like, dislike on my video how i did it..It motivates me to create better content for my audience.
Grozny Could you add subtitles? I tried watching it but couldn't quite understand your accent through the audio
Kanahaiya Hi Grozny,
I appologize for my bad sound quality but i am trying to improve it. but it will be very difficult to add subtitle for this video because its around half an hour which explains all the concepts in deep.
Making this long video took lot of effort and time now adding a subtitle will be very tedious without any support.
Will suggest you to try automatic transcribe feature from youtube to translate it.
Anyway thanks for watching.
Kanahaiya Hi Grozny,
I have added subtitle for this tutorial and I hope it will you to understand logic with more clarity.
willsandalls [deleted]willsandalls I had the same issue. my mistake was decrementing lower and upper. you don't decrement upper, the difference array needs to show it went down AFTER then last index, not within.
michael_yiming_1 [deleted]yozaam Thought to myself ....no js solutions here? then I find 3 of them, Js, ES6, readable wow.
jpeavey451 Your last for loop isn't needed. You can move Math.max to the previous for loop.
lyons_mr [deleted]tyler_e_austin [deleted]tyler_e_austin Added some ES6 syntax suger...
const arrayManipulation2 = (n, queries) => { const arr = new Array(n).fill(0); let max = 0; for (let i = queries.length - 1; i >= 0; i--) { const [a, b, k] = queries[i]; arr[a - 1] += k; if (b < arr.length) { arr[b] -= k; } } for (let j = 1; j < n; j++) { arr[j] += arr[j - 1]; } for (let k = arr.length - 1; k >= 0; k--) { max = Math.max(max, arr[k]); } return max; };
shubhanksrivast1 Got stuck because of this
max = Math.max(...arr); // not working for big arrays
Thanks man!
brandon53 You could simplify your code a smidge, and save a little processing power, by removing your final for loop, and putting in an if check in the second to last loop, like this:
for (let j = 1; j < n; j++) { arr[j] += arr[j-1]; if (arr[i] > biggest) { biggest = arr[i]; } }
rvshah1992 [deleted]rvshah1992 Perfect! Could you please explain me the thought process behind the solution?
dawar_dhawal Thank you @Kemal_caymaz for the explanation, I have found this very useful.
VE5T1GE Thank you!
prashant_kumar_3 thnx
rohanmehta0077 super awesome X 1000!!!
can you expalin this: But the problem is here that even we didn't write anything, value of index 2 is also 100. When we wanted to continue with second step we have to check whether index 2 is between indexes of first row operation or not.
Kanahaiya Hi,
I have created a video tutorial for you and uploaded the same on youtube. Here is the video tutorial for my solution O(n+m) complexity.
Would really appreciate your feedback like, dislike , comment etc. on my video.
marwan_daar fantastic video, thank you!
Kanahaiya most welcome.
but if you dont mind can you please leave the same comment along with like, dislike on my video. it motivates me and help others too find the solution over internet.
naimulhaquesagar impressive ...
bhavyseth thanks bro..
Kanahaiya Hi,
Most of the peope solved this problem but time complexity of solution is O(n*m) (due to two nested for loops)which can not be used to solve this problem for given time constraint, so you need better approach which beats O(n*m)
I have created a video tutorial for you and uploaded the same on youtube with complete explanation along with code complexity analysis.
Here is the video tutorial for my solution O(n+m) complexity passed all test cases.
Would really appreciate your feedback like, dislike , comment etc. on my video.
manshujain2020 Thanks a lot budy for your fantastic explanation ! Your thinking is really amazing like you . Good job.
Kanahaiya most welcome. It would be great, if you can provide your feedback like, dislike , comment etc. on my video. It motivate me to do more for you all
ashishjjha03 hey used this logic its failing for 10 test cases with large inputs
Kanahaiya Hi,
Most of the peope solved this problem but time complexity of solution is O(n*m) (due to two nested for loops)which can not be used to solve this problem for given time constraint, so you need better approach which beats O(n*m)
I have created a video tutorial for you and uploaded the same on youtube with complete explanation along with code complexity analysis.
Here is the video tutorial for my solution O(n+m) complexity passed all test cases.
Would really appreciate your feedback like, dislike , comment etc. on my video.
amitojsingh_edc1 Thanks, your explanation is very helpful
Krishnasaivamsi did you got it?
shubhojeetpaul91 getting it correct for few cases but when both indexes are same then its giving a error message
lyons_mr To explain further for people confused:
We are creating a "difference array" Which shows how many steps up or down have occurred (the difference between 0 and result of each operation) and where in the array they have occurred. This way, you can see how high the max ends up and return that for the solution.
I found this explanation helpful to have this fact dawn on me after much noodling: https://www.geeksforgeeks.org/difference-array-range-update-query-o1/
rui_zhang_cmlab Like piling up blocks? Adding a number -> going up one step and subtracting -> down . Finally, we count how high we can go.
scirelli I'm still trying to figure it out myself. But if you graph result after doing the operations, you would see some rise and fall in the graph.
It looks like his solution tracks the differences between each data point. It went up by x, down by y, remained the same...etc. And his solutions finds the highest increase.
Example: 5 3
1 2 100
2 5 100
3 4 100After doing the operations you get [100, 200, 200, 200, 100] His solutions final array is [0, 100, 100, 0, 0, -100] Meaning starting at 0 the graph went up by 100, went up by 100 again, remained the same, then went back down by 100.
So the highest point is 200, the solution.
jie_lyu you add up all the numbers > 0 in the final list, which is 100 + 100 = 200
pillmannr1 One insight that might help is that we're keeping track of the change in values rather than the values themselves at each index. Therefore, by adding the k at a and subtracting it after b, we are saying that at a the total value increases by k compared to the previous element, and after b the total value decreases by k compared to b. Hope that helps!
adriana_elizond1 Here's the same solution in swift in case anyone needs it :).
func arrayManipulation(n: Int, queries: [[Int]]) -> Int { var sums = Int: Int for query in queries { sums[query[0]] = (sums[query[0]] ?? 0) + query[2] sums[query[1] + 1] = (sums[query[1] + 1] ?? 0) - query[2] }
var currentmax = 0 var sum = 0 sums.sorted{ `$0.0 < $`1.0 }. compactMap{ `$0.1; sum += $`0.1; currentmax = sum > currentmax ? sum : currentmax} return currentmax}
coolcoder001 Hi , I have a doubt.
Here the indices are starting from 1. So, we should be subtracting 1 from both lower index and upper index. Here you have done so for lower index, but haven't done for upper index.
Can you please explain the reason behind this ?
xavier630 It's because it doesn't go back down until the element after the section ends.
eg: n = 4, a = 1, b = 2 k = 3. So we have 3 3 0 0 after reading in that line. In his array he represents this as 3 0 -3 0 ie the subtraction is the element after the last element in the section.
The reason the lower value has a "-1" is because java uses 0-indexed arrays, ie they start at 0. But the input for this question only starts at 1. So he puts the values one index lower in the array. The upper value has no "-1" for the reason in the above paragraph about subtracting after the last element in the section
sergioescala You don't have to do this:
for(int i=0;i<n;i++) arr[i]=0;
because long by default is 0
harshithakamma could you please explain me the working of the code?
JStardust i think test code bigger than long int,so we need a larger data structure
Kanahaiya Hi,
I have uploaded a video tutorial which can help you to understand the problem as well as logic.
Here is the video tutorial for my solution O(n+m) complexity.
Would really appreciate your feedback like, dislike , comment etc. on my video.
wasitshafi tnks @kanahaiya
lavrikilya [deleted]
apivovarov no need to init array elements to 0 in Java
sbouzel Hi, your solution works but I am not convinced!
I don't see how do you increment all elements between lower and upper!
- arr[lower-1]+=sum; This only increments the lower element by sum.
- if(upper
- arr[upper]-=sum; I don't understand why are you substructing sum!
Can you please explain? Thanks.
jasonliuxz It's a difference array. He is storing the difference/the changes that should be made in each index and then runs a loop to add up all these changes. You increment the lower bound because everything inbetween the lower and upper bound should be incremented but you dont want this change to continue for the rest of the array so you decrement at (upper+1).
harshithakamma but how can we know about the upper index of a particular increment,when we are adding all at a once in a loop?
juank_luna Using Java 8 syntaxis:
public static void main(String[] args) { Scanner in = new Scanner(System.in); int n = in.nextInt(); int m = in.nextInt(); long[] output = new long[n]; IntStream.range(0,m).forEach(i -> { int a = in.nextInt()-1; int b = in.nextInt(); int k = in.nextInt(); output[a] += k; if(b < n) output[b] -= k; }); AtomicLong sum = new AtomicLong(0); System.out.print(LongStream.of(output).map(sum::addAndGet) .max().getAsLong()); in.close(); }
AlexisVaBel large amount of lines will crash your solution. And map fucntion need to make Boxing methinks and this takes much time
Good_Imagination WTF!!! It's true! I had a time out problem with test case 7 up to 12 I think and my code is good enough and didn't know what to do...until I read your comment, I removed all the empty spaces and the debugging prints (System.out.println for Java 8) and it worked :O LOL thanks.
vincent_messeng1 This is true, I spent too much time trying figure out why my solution was timing out. Deleted some whitespace and it ran fine.
Kanahaiya Hi,
I have uploaded a video tutorial which can help you to understand the problem as well as logic.
Here is the video tutorial for my solution O(n+m) complexity.
Would really appreciate your feedback like, dislike , comment etc. on my video.
tranhoangha94 why temp += arr[i];
DanYoo940 Array is already 0, you dont have to assign 0s to each array elements
AlexisVaBel scanner on large lines of input is not suitable solution, it reads too long
Sufiyan You don't need to loop the arr to put 0. Bydefault, it has the value zero when you initialize.
Sufiyan In java, we don't need to loop explicitly to assign zero to all the arr locations. When we create it, it has the zero as default values. I like your solution, thanks.
hspuri26 using an if statement inside the for loop will just contribute in complexity. you can replace it with Math.max function.
rosamohammadi Is there a reason all the solutions posted above are written inside main() and not the provided function arrayManipulation() ? Or did hackerrank just change this over the past few years for readability?
// Complete the arrayManipulation function below. static long arrayManipulation(int n, int[][] queries) { // initialize array with 0's of size n long arr[] = new long[n]; // each successive element contains the difference between itself and previous element for (int i = 0; i < queries.length; i++) { // when checking query, subtract 1 from both a and b since 0 indexed array int a = queries[i][0] - 1; int b = queries[i][1] - 1; int k = queries[i][2]; arr[a] += k; if (b+1 < n) { arr[b+1] -= k; } } // track highest val seen so far as we go long max = Long.MIN_VALUE; for (int i = 1; i < arr.length; i++) { arr[i] += arr[i-1]; max = Math.max(arr[i], max); } return max; }
srodrig0209 Probably just for readability.
tracylmarkland1 I was wondering the same thing. The instructions say to complete the manipulation method, not to rewrite the main method. I assumed that it should work without timing out if I just get the manipulation method to the point where it is efficient enough.
MaxInertia Same solution in Golang
func arrayManipulation(n int32, qs [][]int32) int64 { a := make([]int64, n + 1) qLen := len(qs) for i:=0; i<qLen; i++ { p := int(qs[i][0]) q := qs[i][1] sum := int64(qs[i][2]) a[p] += sum if((q + 1) <= n) { a[q + 1] -= sum } } var x, max int64 = 0, 0 for i:=1; i<=int(n); i++ { x += a[i] if max < x { max = x } } return max }
Clever solution!
shevchenko_dian1 Can you help me see what is wrong with my code here?
func arrayManipulation(n int32, queries [][]int32) int64 { a := make([]int64, n + 1) qLen := len(qs) for i:=0; i<qLen; i++ { p := int(qs[i][0]) q := qs[i][1] sum := int64(qs[i][2]) a[p] += sum if((q + 1) <= n) { a[q + 1] -= sum } } var x, max int64 = 0, 0 for i:=1; i<=int(n); i++ { x += a[i] if max < x { max = x } } return max }
lucash3 Wrong name in first line:
func arrayManipulation(n int32, queries [][]int32) int64 {
}
a2zshatakshi import java.io.; import java.math.; import java.security.; import java.text.; import java.util.; import java.util.concurrent.; import java.util.regex.*;
public class Solution {
// Complete the arrayManipulation function below. static long arrayManipulation(int n, int[][] queries) { int[] arr = new int[n]; for(int i=0;i<n;i++){ arr[i] = 0; } int m = queries.length; for(int i=0;i<m;i++){ for(int j=queries[i][0]-1;j<queries[i][1];j++){ arr[j] += queries[i][2]; } } int max = arr[0]; for(int i=1;i<n;i++){ if(arr[i]>max){ max = arr[i]; } } return(max); } private static final Scanner scanner = new Scanner(System.in); public static void main(String[] args) throws IOException { BufferedWriter bufferedWriter = new BufferedWriter(new FileWriter(System.getenv("OUTPUT_PATH"))); String[] nm = scanner.nextLine().split(" "); int n = Integer.parseInt(nm[0]); int m = Integer.parseInt(nm[1]); int[][] queries = new int[m][3]; for (int i = 0; i < m; i++) { String[] queriesRowItems = scanner.nextLine().split(" "); scanner.skip("(\r\n|[\n\r\u2028\u2029\u0085])?"); for (int j = 0; j < 3; j++) { int queriesItem = Integer.parseInt(queriesRowItems[j]); queries[i][j] = queriesItem; } } long result = arrayManipulation(n, queries); bufferedWriter.write(String.valueOf(result)); bufferedWriter.newLine(); bufferedWriter.close(); scanner.close(); }}
What is wrong with this code. Please help.
naimulhaquesagar it may be showing Terminated due to timeout error because in test case 7 there is a huge number of input 10000000 100000 (like that)
you should try prefix array sum it is so simple
Kanahaiya Hi,
Your solution is good but time complexity of your solution is O(n*m) which can not be used to solve this problem for given time constraint, so you need better approach which beats O(n*m)
Here is the video tutorial for my solution O(n+m) complexity.
https://www.youtube.com/watch?v=hDhf04AJIRs&list=PLSIpQf0NbcCltzNFrOJkQ4J4AAjW3TSmA
Would really appreciate your feedback like and comment etc. on my video.
naimulhaquesagar your video is helpful
Kanahaiya thanks. But if would be great ,if you can provide your comments, like, dislike on my video how i did it..It motivates me to create better content for my audience.
roneet_kumar_sh1 Your video helped me understand the algorithm. I liked the video. Thank you so much
Kanahaiya thanks. But if would be great ,if you can provide your comments, like, dislike on my video how i did it..It motivates me to create better content for my audience.
Mr_Mendiratta Thanks @Kanahaiya for sharing. Your video is very helpful. I really liked the way you explained by dry running the solution. One of the best programming tutroial ever seen. Surely, will look into other videos as well.. Thanks.
vickykumar19988 you will get TLE. Try different algorithm which takes less time.
mhsdawas Thanks for the clean code and the comment! It helped more than the entire discussion!
mariadimitrova11 This line is unnecessary due to the fact that the default value of long in Java is 0L and there is no need for assigning them again to 0.
for(int i=0;i<n;i++) arr[i]=0;KuraudoVII Thanks for the enlightenment.
Here is the same solution in Swift:
func arrayManipulation(n: Int, queries: [[Int]]) -> Int { var numbers = Array(repeating: 0, count: n + 1) var ans = 0 for i in 0 ..< queries.count { var a = queries[i][0] var b1 = queries[i][1] + 1 var k = queries[i][2] numbers[a] += k if b1 <= n { numbers[b1] -= k } } for i in 1...n { numbers[i] += numbers[i - 1] if numbers[i] > ans { ans = numbers[i] } } return ans }
carlosfelipetor1 [deleted]
codebhai I think
for(int i=0;i
is not needed.
izambl Same solution in javascript
function main() { let n_temp = readLine().split(' '); let n = parseInt(n_temp[0]); let m = parseInt(n_temp[1]); let res = []; let sum = 0; let max = 0; for (let i = 0; i<n; i++) { res[i] = 0; } for(var a0 = 0; a0 < m; a0++){ var a_temp = readLine().split(' '); var a = parseInt(a_temp[0]); var b = parseInt(a_temp[1]); var k = parseInt(a_temp[2]); res[a-1] += k; if (b<n) res[b]-=k; } for (let i=0; i<n; i++) { sum += res[i]; if (max < sum) max = sum; } console.log(max); }
Jeff_Chung123 very smart,here is follow output to help me understand the idea
Compilation Successful Input (stdin) 5 1 1 2 100 Your Output (stdout) Slope List [ 100, 0, -100, 0, 0 ] Actual List[100,100,0,0,0] Compilation Successful Input (stdin) 5 2 1 2 100 2 5 100 Your Output (stdout) Slope List [ 100, 100, -100, 0, 0 ] Actual List[100,200,100,100,100] Compilation Successful Input (stdin) 5 3 1 2 100 2 5 100 3 4 100 Your Output (stdout) Slope List [ 100, 100, 0, 0, -100 ] Actual List[100,200,200,200,100]
Jeff_Chung123 process.stdin.resume(); process.stdin.setEncoding('ascii'); var input_stdin = ""; var input_stdin_array = ""; var input_currentline = 0; process.stdin.on('data', function (data) { input_stdin += data; }); process.stdin.on('end', function () { input_stdin_array = input_stdin.split("\n"); main(); }); function readLine() { return input_stdin_array[input_currentline++]; } /////////////// ignore above this line //////////////////// function main() { var n_temp = readLine().split(' '); var listSize = parseInt(n_temp[0]); var lineNumber = parseInt(n_temp[1]); let slopList = new Array(); for(let i = 0;i < listSize;i++){ slopList.push(0); } for(var a0 = 0; a0 < lineNumber; a0++){ var a_temp = readLine().split(' '); const beginElementPos = parseInt(a_temp[0]); const endElementPos = parseInt(a_temp[1]); const addValue = parseInt(a_temp[2]); slopList[beginElementPos-1] += addValue; if (endElementPos<listSize){ slopList[endElementPos]-=addValue; } } let actualList = new Array(); let sum = 0; for (let i=0; i<listSize; i++) { sum += slopList[i]; actualList.push(sum); } let max = actualList.reduce((acc,val)=>{ return (acc>val)?acc:val; },0); console.log(max); }
ali_sid_jobs Guys, if you look for a clear understanding of the solution, I read a pretty clear comment down the road that clarified my mind.
Basically, when you add value from a to b you just need to know that it goes up from k and goes down of k after.
What this algo does is to register the slopes only, so we just need 2 entry, with O(1) complexity.
We just need to know that we are upping from k at the beginning and decreasing at the end.
Finally, the maximum would be...
The addition of all the slopes, that is why it's max(sum) of the tables, because the tables itself registers the slopes
mvanwoerkom [deleted]mvanwoerkom [deleted]
smaaash Thanks a lot!!That really helped!
agarwal_akshara9 Can you explain the concept of just adding add subtracting at a particular index? I mean how have we arrived to this logic?
Kanahaiya Hi,
I have uploaded a video tutorial which can help you to understand the problem as well as logic.
Here is the video tutorial for my solution O(n+m) complexity.
Would really appreciate your feedback like, dislike , comment etc. on my video.
Kanahaiya Hi,
Here is the video tutorial for my solution O(n+m) complexity.
Would really appreciate your feedback like and comment etc. on my video.
ozgur24 I didnt well understand that what will happen if b+1 is out of array bounds?
hn5624 it can't be out of bounds, it saids that b>n in the problem statement.
rohitshende16 if b+1 > n then the the addition of k from position a will continue till the last element of the array.
Kanahaiya Hi,
I have uploaded a video tutorial which can help you to understand the problem as well as logic.
Here is the video tutorial for my solution O(n+m) complexity.
Would really appreciate your feedback like, dislike , comment etc. on my video.
hn5624 Jesus christ, it all makes sense now after that graph lol, I kept wondering what drug these people were taking to arrive at this conclusion.
blunderblunder67 can you explain ? :)
asimparvez91 Very well explained (Y)
nashrahmeraj i have got correct output of your test cases but 3 test cases of hackerrank are getting wrong. iam not understanding whats wrong.please help me
jishangarg brilliant idea!
davidyc what about the custom input:
5 1
1 5 -100
wouldn't the output be 0? But the max would be -100 since all elements would be -100.
eellor There's a constraint: 0 <= k <= 10^9
In your case of negative k, the minimum value can be obtained by the similar approach. Imagine a valley rather than a mountain.
kunalwww1994 why are you subtracting???? "( b < n ) res [ b ] -= k;"
umutesen How is your method faster than the following?
using System; using System.Collections.Generic; using System.IO; using System.Linq; using System.Numerics; class Solution { static void Main(String[] args) { string[] tokens_n = Console.ReadLine().Split(' '); int n = Convert.ToInt32(tokens_n[0]); int m = Convert.ToInt32(tokens_n[1]); // Instantiate and populate an array of size N BigInteger[] arr = new BigInteger[n]; for(int i = 0; i < n; i++) arr[i] = 0; for(int a0 = 0; a0 < m; a0++){ string[] tokens_a = Console.ReadLine().Split(' '); int a = Convert.ToInt32(tokens_a[0]); int b = Convert.ToInt32(tokens_a[1]); int k = Convert.ToInt32(tokens_a[2]); // Apply operation for(int j = a-1; j < b; j++) arr[j] += k; } Console.WriteLine(arr.Max(i=>i)); } }
avmohan The "Apply operation part" is O(k) here. In the diff array version, apply operation is O(1)
kunalwww1994 hey did u passed all with this...i used same logic in C#..but passes till 6
JStardust your database is int? some tests data is too big
zeeshanaslamonl1 your code is only passing 3 test cases out of 10 . Don't post the code unless it pass all the test cases dude !!!!
rajesh_kashyap60 bro, this is a discussion forum. Why are you demotivating a begineers ? Anyway I have submitted that code successfully. Thanks for the advice.
fateme_hajizade I used the same logic, it passes most of the tests but I get timeout error.
Kanahaiya Hi,
I have uploaded a video tutorial which can help you to understand the problem as well as logic.
Here is the video tutorial for my solution O(n+m) complexity.
Would really appreciate your feedback like, dislike , comment etc. on my video.
intechworx if(b+1 <= n) numList[b+1] -= k;
Why we are substracting?
kashifali2005 It is failing test case 4 to 13. Not sure why
kashifali2005 It is failing test case 4 to 13. Can you please check
ibirite [deleted]
The_Dark_head long tempMax = 0; long max = 0; for(int i=1; i<=n; i++) { tempMax += numList[i]; if(tempMax > max) max = tempMax; } What is this code doing , why we cant use numList.Sum()francisco_rapha1 Used the idea o modifiers, but without the n-sized array. Also in C#. Complexity is O(m log m), that can be less than O(n).
static long arrayManipulation(int n, int m, int[][] queries) { long max = 0; SortedDictionary<int,long> fakeArray = new SortedDictionary<int,long>(); // 'm' times for (int i=0; i<m; i++) { int a = queries[i][0]; int b = queries[i][1]; int k = queries[i][2]; // bit optimization: a '0' valued query will make no difference on resultant ones if (queries[i][2] <= 0) continue; if (!fakeArray.ContainsKey(a)) { // O( log m ) fakeArray.Add(a, k); // O( log m ) } else { fakeArray[a] += k; // O( log m ) } if (b < n) { b++; if (!fakeArray.ContainsKey(b)) { // O( log m ) fakeArray.Add(b, -1 * k); // O( log m ) } else { fakeArray[b] -= k; // O( log m ) } } } long current = 0; foreach(long modifier in fakeArray.Values){ // O( 2*m ) current += modifier; if (current > max) max = current; } return max; }
HarishTati *(a+c)+=g; if(d+1<=n){ *(a+d+1)-=g; }
please explain what's going on here.gomesfausto This is a very elegant and beautiful solution.
harshithakamma could you please explain me the logic?
Kanahaiya Hi,
Most of the peope solved this problem but time complexity of your solution is O(n*m) (due to two nested for loops)which can not be used to solve this problem for given time constraint, so you need better approach which beats O(n*m)
I have created a video tutorial for you and uploaded the same on youtube. Here is the video tutorial for my solution O(n+m) complexity passed all test cases.
Would really appreciate your feedback like, dislike , comment etc. on my video.
Nilesh44 pls explain logic
Kanahaiya Hi,
Most of the peope solved this problem but time complexity of solution is O(n*m) (due to two nested for loops)which can not be used to solve this problem for given time constraint, so you need better approach which beats O(n*m)
I have created a video tutorial for you and uploaded the same on youtube with complete explanation along with code complexity analysis.
Here is the video tutorial for my solution O(n+m) complexity passed all test cases.
Would really appreciate your feedback like, dislike , comment etc. on my video.
mario89 [deleted]lazy_panda can you please expalin the code.
Kanahaiya Hi,
I have uploaded a video tutorial which can help you to understand the problem as well as logic.
Here is the video tutorial for my solution O(n+m) complexity passed all test cases.
Would really appreciate your feedback like, dislike , comment etc. on my video.
brakesh581 [deleted]
theonelucas Will fail if max result is negative
chhayaprakashj i cant pass some test cases, those with very long inputs, i dont know what to do! here is my code: -
long arrayManipulation(long long int n, vector> queries) {
vector<long long int> v; vector<long long int>v2; long long int max; for(long long int i=0;i<n;i++){ v.push_back(0); } for(long long int i=0;i<queries.size();i++){ for(long long int j=0;j<queries[i].size();j++){ v2.push_back(queries[i][j]); } for(long long int k=(v2[0]-1);k<v2[1];k++){ if(v[k]!=0){ v[k]+=v2[2]; } else{ v[k]=v2[2]; } } v2.pop_back(); v2.pop_back(); v2.pop_back(); } max=*max_element(v.begin(), v.end()); return max;}
Kanahaiya hi,
I am sure this comment will definately help you.
https://www.hackerrank.com/challenges/crush/forum/comments/570284
edu_karthikch No need to explicitly assign 0 to every item in the array. malloc() does that automatically.
apocarteres calloc would be faster i guess instead of malloc + zeroing the mem
Mirouhml Could you explain more, please?
apocarteres in the code there are two steps to acquire a new array filled with zeroes:
- At first step the allocation itself: int *a=(int )malloc(sizeof(int)(n+1));
- Second step is to propagate zero values using for-loop upon newly created array.
In my opinion, we can do the same with single call of "calloc". It supposed to be faster in theory, cause calloc is hardware dependent and probably we don't have to loop over N items again just for get them zero valued, since calloc could know is it actually required or not, so on some harware it could be already zeroes or hardware knows better how to zero during allocation faster
Mirouhml okay thanks for the information!
rnj01 This does not work for the current version of this problem. The prompt is asking for the solution of a method with two args, one n for the size ofthe array and a queries array of arrays with start index, end index, and value. There should be no need for gets.chomp().
codesnik And you can easily make solution "sparse" to conserve memory on big arrays, just replace
arr = Array.new(N + 1, 0)
with
arr = Hash.new(0)
and
arr.each do |value|
with
1.upto(N) do |n| value = arr[n]
julie_larson This worked, but I'm still trying to understand why this was the correct answer.
mishyn Because it takes less time to execute. Otherwise solution execution got time outed
victortang_com You are not answering the question.
yanikjay1 I believe what he's trying to say is this: There are two approaches here - 1. The difference array approach (the one every one is praising as being more efficient) 2. The intuitive approach - i.e., just going through each group of a,b,k values and incrementing elements located between a and b in the array, then finally searching through for a max)
The reason approach 1 is more efficient is because the operation for the difference array only requires a maximum 2 adjustments per transformation (you increment the value at the start index by k, and decrement the value after the end index by k). Contrast this with approach 2, where actually going through the array and incrementing every value within the specified 'a-b' range could result in N operations.
So approach 2 could take a max of O(N * M) time- where 'M' is the number of operations, and N is the size of the array And approach 1 could take a max of O(2 * M) time, which is considered equivalent to O(M)
Does that make sense? Someone correct me if I'm wrong! Cheers :)
m_zayed Yeah, if we went with the brute force solution with two nested for loops, we will get a graph as below for the array if we used the data below
arrayManipulation(40,[[19, 28, 419], [4, 23, 680], [5, 6, 907], [19, 33, 582], [5, 9, 880], [10, 13, 438], [21, 39, 294], [13, 18, 678], [12, 26, 528], [15, 30, 261], [8, 9, 48], [21, 23, 131], [20, 21, 7], [13, 40, 65], [13, 23, 901], [15, 15, 914], [14, 35, 704], [20, 39, 522], [10, 18, 379], [16, 27, 8], [25, 40, 536], [5, 9, 190], [17, 20, 809], [8, 20, 453], [22, 37, 298], [19, 37, 112], [2, 5, 186], [21, 29, 184], [23, 30, 625], [2, 8, 960]])
but if we used the second method which is adding at the first index and subtracting at the index afer the last we get this graph
and then we can get the maximum out of summing the results as below
perfectcodder but I can't understand the logic of least step ( summing step )
yanikjay1 the best way to understand it is form a simple example.
say there are 4 of us in a line: 1. me 2. you 3. bob 4. sue and we all start out with zero points.
Thcan be represented as (where my points are in the first index, your in the second, bob's in the third, sue's in fourth):
0 0 0 0
Furthermore, we go through rounds, where in each round a contiguous block of us can receive some set amount of points.
So in round one, say 2 points are awarded to anything in the range of start index = 1, and end index = 2. This means that you and bob, who are in the range, get 2 points.
But rather than write the current score as: 0 2 2 0
We instead want to write the score as:
0 2 0 -2
Because we want each value to represent how much greater/less than it is from the previous-index value. Doing this allows us to only ever need to change two elements in the list for a given round.
Now say we play one more round, and 1 point is awarded to all people in range of index = 0 to index = 1. This gives you
1 2 -1 -2
All I did was add the point value to the start index, and subtract it from the "end index + 1".
Then calculating the max is simply a matter of going through that list, adding each element to an accumulator variable (as this summing process reveals the actual value of an element at any given point - e.g., you would have 3 points at the end because your score is the result of 1 + 2), and having a variable which keeps track of the running max.
jie_lyu Thank you for your detailed explanation. It helped!
JDODD74 Because we want each value to represent how much greater/less than it is from the previous-index value.
This is the best explanation of the difference array I have read in these discussions -- thank you for making it click in my head.
Kanahaiya Hi,
Most of the peope solved this problem but time complexity of solution is O(n*m) (due to two nested for loops)which can not be used to solve this problem for given time constraint, so you need better approach which beats O(n*m)
I have created a video tutorial for you and uploaded the same on youtube with complete explanation along with code complexity analysis.
Here is the video tutorial for my solution O(n+m) complexity passed all test cases.
Would really appreciate your feedback like, dislike , comment etc. on my video.
thatsamorais I would not suggest eclipsing
listShubhamV06 Can some one please help as to why my solution gives a segmentation fault?
include
include
include
include
int main() {
unsigned long long int n,m,l,b,k,i,val=0; scanf("%llu%llu",&n,&m); unsigned long long int a[n+1]; for(i=1;i<=n;i++) { a[i]=0; } while(m--) { scanf("%llu%llu%llu",&l,&b,&k); for(i=l;i<=b;i++) { a[i]+=k; if(a[i]>val) { val=a[i]; } } } printf("%llu",val); return 0;}
dr_cooper Maximum array size has to be 10^7 which is not possible in case of C. I tried Dynamic memory allocation (malloc) which worked but got TLE for bigger test cases
ShubhamV06 yeah it is getting a tle. We need to use a different algorithm. I wanted to know what the problem in my code was so i posted my solution.
vicky_20 use long instead of int.
PratikDreamer Hi Vineet could u explain what logic have you followed?
Kanahaiya Hi,
Most of the peope solved this problem but time complexity of solution is O(n*m) (due to two nested for loops)which can not be used to solve this problem for given time constraint, so you need better approach which beats O(n*m)
I have created a video tutorial for you and uploaded the same on youtube with complete explanation along with code complexity analysis.
Here is the video tutorial for my solution O(n+m) complexity passed all test cases.
Would really appreciate your feedback like, dislike , comment etc. on my video.
timkay Same solution but optimized:
from itertools import accumulate n, m = map(int, input().split(' ')) dx = [0] * (n + 1) # allow run past end for _ in range(m): a, b, c = map(int, input().split(' ')) dx[a - 1] += c dx[b] -= c print(max(accumulate(dx)))
kai_gowers That's so good! You are awesome!
ygrinevich can you explain why it's (n+1) and not (n)?
Jellofish The question asks for a 1 indexed list and the a,b values read in are read in starting from 1 not 0. If you do not use (n+1)if b happens to be the last number of your list it will go out of bounds.
The 0 index value will always be 0 so it doesn't affect your answer when you sum for max difference.
kunalwww1994 why are you subtracting dx[b] -= c ?????
argsv Walk through the array it may help.
Query 1 -> [1, 2, 100] Array 1 -> [0, 100, 0, -100, 0, 0, 0] Query 2 -> [2, 5, 100] Array 2 -> [0, 100, 100, -100, 0, 0, -100] Query 3 -> [3, 4, 100] Array 3 -> [0, 100, 100, 0, 0, -100, -100] Array Accumulated -> [0, 100, 200, 200, 200, 100, 0] Result -> 200
vietanhtran_96 The use of accumulate is so brilliant!
mofo_jones Nice
tug16183 How does that bottom for list return the maximum value in the list? Could you explain the logic to me please?
sonic88bt Why are you checking if "y" is <= len(list) ? This is given by the problem, right?
AamirAnwar Really liked this solution! One question, shouldn't it be max=-float('inf')?
P.S - Talking about the python version
gg_germain Just improved your code a bit. - split() is slightly faster than split("") - an if was not needed as always true - variables names fit those used in the exercise
if __name__ == "__main__": n, m = [int(n) for n in input().split()] l = [0]*(n+1) for _ in range(m): a, b, k = [int(n) for n in input().split()] l[a-1] += k l[b] -= k; max = a = 0 for i in l: a+=i; if max<a: max=a; print(max)
Etiennera [deleted]GhostlyMowgli I took the ideas explained here to put also into python in a bit more spelled-out way to help make sense of this more abstract work-around.
def arrayManipulation(n, queries): # Big O (N) res = [0]*(n+1) # we only really need one terminal row, since we're applying each pass to all rows below # loop through all the queries and apply the increments/decrements for each # Big O (M) (size of queires) for row in range(len(queries)): a = queries[row][0] b = queries[row][1] k = queries[row][2] res[a-1] += k # increment the starting position # this is where a loop would increment everything else between a & b by k # but instead of taking b-a steps, we take a constant 2 steps, saving huge on time res[b] -= k # decrement the position AFTER the ending position # now loop through res one time - Big O (N) (size of res) sm = 0 # running sum mx = 0 # maximum value found so far for i in range(len(res)): sm += res[i] if sm > mx: mx = sm # total run time is Big O (2*N + M) >> Big O(N) return mxThe key concepts in my opinion here are:
1) we don't need to build the full aray, since it's impossible for any row but the last to have the max value. This is impossible because we apply the adjustments to every subsequent row of the resulting 2-D array.
2) we don't need to actually increment each value for indices 'a' through 'b'. While that's the most straight-forward way, that also requires x many (a minus b) steps for each pass of the loop. By noting instead where to start incrementing and where to stop incrementing (noted by decrementing after what would be the final increment), we can note the adjustments to apply without having to take every step each time. We can then run a separate single loop to go over each of the increments and keep a running sum of all the overlapping increments. The decrement allows us to know when that range where the increment applied is over by reducing the running sum by that number - in other words when that range is ended, we would have to look at overlapping increments excluding that one that just ended going forward to see if anything is bigger.
Someone else in here gave an image of a stair/hill which I found extremely helpful in visualizing and understanding this concept. The basic idea here is that instead of actually applying each increment, we can just note what the increment and range is and one by one go through each place and apply all the compounded increments at once. Loop 1 saves the increments in a different format, Loop 2 checks the overlap. And by using two separate loops we have basically Big O (N) rather than Big O (N^2) - or more specifically Big O (2N + M) instead of Big O (NM + N), where N is the size of the resulting array and M is the size of the queries array.
karankhajuria1 def arrayManipulation(n, queries): arr=[0]*n for _ in queries: start=[0]-1 end=[1]-1 val=_[2] topVal=end+1 for i in range(start,topVal): arr[i]+=val return max(arr)
m = input().split()
n = int(nm[0])
m = int(nm[1])
queries = []
for _ in range(m): queries.append(list(map(int, input().rstrip().split())))
result=arrayManipulation(n, queries)
mercy1 not sure why, but when I run your code as it is I get an error: if((y)<=len(list)): list[y] -= incr; IndexError: list index out of range
but when I do run that line like this:
if((y)<=len(list)): list[y-1] -= incr;
that works
radialapps A bit less efficient, but more readable
def arrayManipulation(n, queries): a = [0] * (n + 1) for q in queries: a[q[0] - 1] += q[2] a[q[1]] -= q[2] for i in range(1, len(a)): a[i] += a[i-1] return max(a)
m_zayed [deleted]m_zayed Python 3 more clear code
def arrayManipulation(n, queries): my_array = [0] * (n+1) count = 0 temp = 0 for first,last,value in queries: my_array[first-1] += value my_array[last] -= value for item in my_array: count += item if count > temp: temp = count return temp
perfectcodder can you explain your logic ??
brayoni_ian [deleted]Kanahaiya Hi,
Most of the peope solved this problem but time complexity of solution is O(n*m) (due to two nested for loops)which can not be used to solve this problem for given time constraint, so you need better approach which beats O(n*m)
I have created a video tutorial for you and uploaded the same on youtube with complete explanation along with code complexity analysis.
Here is the video tutorial for my solution O(n+m) complexity passed all test cases.
Would really appreciate your feedback like, dislike , comment etc. on my video.
brayoni_ian Thank you. This is clear.
You could also find the max using:
max(accumulate(my_array))See below:
def arrayManipulation(n, queries): # initialise list arr = [0] * (n + 1) # update for a, b, k in queries: arr[a - 1] += k arr[b] -= k # accumulate values return max(accumulate(arr))
However, I have not understood the theory behind the difference array algorithm, why it works the way it works and how to derive it.
abhipatel1 can anyone debug this program
bhavyseth [deleted]
rounak077 Brilliant man, mine was working for initial test cases but getting timeout for rest.
def arrayManipulation(n, queries): a = [0]*(n +1) z=[] for i in queries: z.append(i) for i in range(len(z)): for j in range(int(z[i][0]),int( z[i][1])+1): a[j] = a[j]+int ( z[i][2]) return max(a)
Kanahaiya Hi,
Most of the peope solved this problem but time complexity of solution is O(n*m) (due to two nested for loops)which can not be used to solve this problem for given time constraint, so you need better approach which beats O(n*m)
I have created a video tutorial for you and uploaded the same on youtube with complete explanation along with code complexity analysis.
Here is the video tutorial for my solution O(n+m) complexity passed all test cases.
Would really appreciate your feedback like, dislike , comment etc. on my video.
h1017691668 Thanks , max(list) wil be simpler
navya_lucky03 can the same be written like this: def arrayManipulation(n, queries): arr_n=[0]*n for i in range(len(queries)): n1=queries[i][0] n2=queries[i][1] for j in range(n1-1,n2): arr_n[j]=arr_n[j]+queries[i][2] return max(arr_n) This is giving me a tiemout error while submitting. can u assist here?
h1017691668 yeah,at the beginning, l got the same problem as well. This algorithm's complexity could be o(n). Try to learn something about prefix sum array.I hope this can help.
blauge_reskrooge But when y=len(list), list(y) will throw an error right? out of index error?
alvaroSanchez Another python translation:
def arrayManipulation(n, queries): arr = [0]*(n+2) for a, b, k in queries: arr[a]+=k arr[b+1]-=k result = acc = 0 for x in arr: acc+=x result = max(result, acc) return result
dimitrantz Brilliant!
harishmallepall1 can u explain why we are subracting i dont understand the if statement ......
Kanahaiya Hi,
I have uploaded a video tutorial which can help you to understand the problem as well as logic.
Here is the video tutorial for my solution O(n+m) complexity passed all test cases.
Would really appreciate your feedback like, dislike , comment etc. on my video.
georgedubuque This breaks when
y == n. The if when decrementinglist[y]should beif y < len(list): list[y] -= incr. Overall great solution! Thanks for doing it in python!madhumaa2000 Excellent, but why you are using this step.. list[y] -= incr; and that "if" condition is always correct, right..! Can you explain please...
steven_succar [deleted]abhimanyuaj001 for some test cases its showing teminated due to timeout what can i do
def arrayManipulation(n, queries): a=[] for i in range(n): a.append(0) for j in queries: for k in range(j[0],j[1]+1): a[k-1]=a[k-1]+j[2] return (max(a))
shireen305 these solutions give runtime error
abhimanyuaj001 yup for 7 testcase its showing time out what should I do??
Kanahaiya hi,
I am sure this comment will definately help you to solve your problem.
https://www.hackerrank.com/challenges/crush/forum/comments/570284
nivdatta88 I still have some doubt if anyone could explain it. I understand that it is making use of difference array to keep track of the difference between items rather than updating every item.
However as I understand, size of difference array is one less than total items in the actual array.
So as per the demo program given,
ARR DIFF (5,3) 0 0 0 0 0 0 0 0 0 (1,2) 100 100 0 0 0 0 -100 0 0 (2,5) 100 200 100 100 100 100 -100 0 0 (3,4) 100 200 200 200 100 100 0 0 -100
However the logic used seems to be a variant of difference array that I am not able to understand. It would be great if someone could help me connect the dots from this difference array to the actual working solution of this problem. Thanks.
zeralight Hello, I don't really get your DIFF representation, but here is the deal:
you need to keep in mind that at the end of queries to get the real value of i we need to sum the values of A[0]->A[i].
for a query (l, r, x) if we add x to A[l] then we're sure later for every k in [l, r] sums(0->k) will include x.
the problem is that every k > r will also include that x, therefore we'll decrement l[r+1] by x.
Now the sum through 0 -> k will include x only if k >= l and will exclude it only if k > r which is equivalent to:
sum(0->k) will consider x only if k is in [l, r]
d_niladri95 [deleted]
julie_larson I think the DIFF matrix should be:
0 0 0 0 0 100 0 0 -100 0 0 100 0 0 0 0 0 100 0 -100then x is 100+100+100-100-100 = 200
still don't quite get it though
cse160001033 [deleted]cyxingfa I think the Diff should like this
0 0 0 0 0 100 0 -100 0 0 <--- 1 2 100, 3rd col is 100 less than 2nd col 100 100 -100 0 0 <--- 2 5 100, 2nd col is 100 more than 1st col 100 100 0 0 -100 <--- 3 4 100, now 3rd is equal to 2nd, and 5th is 100 less than 4th col
so finally, 1st col is always the real value, and others are accumlated of previous values and it self. so actual values are 100 200 200 200 100, max is 200
marc_ponchon Thanks this helps me to understand how it works.
feynman65 @julie_larson
100+100+100-100-100 = 100 still not 200 I've been banging my head still not able to understand this solution.filipetrm The final diff array should be like this:
100 100 0 0 -100 (straight foward from the code)
So when you iterate over it to get the accumalated sum you'll get this:
iteration value of x accumulated sum 0 0 0 1 100 100 2 100 200 3 0 200 4 0 200 5 -100 100
The maximum value of the accumulated sum is 200.
joshumcode They're always checking the sum against the count, so when the sum is less than the count (which is the greatest sum so far) the count doesn't update.
nayeemnawaz93 As i have understood (5 , 3) 0 0 0 0 0 (1 , 2) 100 100 0 0 0 -> first and second places i.e a=1,b=2 , k=100, now a+k = 0+100 = 100, b+K = 0+100 = 100. (2 , 5) now from 2 to 5 i.e 2,3,4,5 are added with K i.e 100. already 2=100 now 2 becomes 100+100 =200, simialrly 3 = 0+100=100,4=0+100=100,5=0+100=100. (3 , 4) now 3 and 4 are added with 100. ie 3 value is 100 it becomes 100+100=200, 4 becomes 100+100=200.
among these 200 is max value.
cse160001033 instead of writing long int *a=long int[n+1] if I write long int a[n+1]; It shows segmentation fault after test case 7. why? Explain please.
Alex_leo yes ,the same with you, i am confused
julie_larson you aren't allocating space for a that way. He uses new to create an array on the heap. You are trying to declare it on the stack, but you can't do that with a dynamic value like 'n'
ami3443 As per my knowledge, u can create an array to size upto 10^6 in stack and for size above it we need to create in heap so we do it dynamically. https://discuss.codechef.com/questions/28604/maximum-size-of-an-array refer this
ShubhamV06 Thanks @ami3443
kousiknandi Nice explanation.
RuraDund If you have a problem understanding dynamic memory then make use of vector . It allocates memory dynamically wherein the user doesn't have to deal with pointers .
vector arr(n); declares an array of long int of length n.
nivdatta88 [deleted]
sandeep007734 Thanks for explaining the logic behind this.
tanyaangra123 Here ,I add all the positive values of the difference array to get the maximum element . But , the answer comes out to be wrong for all the test cases except sample one ...
prakash_katudia Use long int in place of int.
manishch1095 what do u mean by previous element? is it a[p-1]for a[p] or the previous state of a[p] before the current updation operation? difference is betweentwo succesive elements or in the same element before and after one query is executed?
tanyaangra123 It is a[p-1] for a[p] ie. the difference between two successive elements.
Well ,now ,i understood my mistake . I was just adding the positive differences. But the problem requires maximum element in an array , so there must be a comparison while adding the differences.
Well thanks!
tanujindal1989 wonderful explaination...Thanks a lot
chaizhongzhong Hi gabriel
chikmid how is element at b+1 the previous element?
quietwalter Thank you ! Good to see this better way to store the difference only , so array size = n+1 only !
Kanahaiya Hi,
Most of the peope solved this problem but time complexity of solution is O(n*m) (due to two nested for loops)which can not be used to solve this problem for given time constraint, so you need better approach which beats O(n*m)
I have created a video tutorial for all and uploaded the same on youtube with complete explanation along with code complexity analysis.
Here is the video tutorial for my solution O(n+m) complexity passed all test cases.
Would really appreciate your feedback like, dislike , comment etc. on my video.
michellerodri247 [deleted]
alexandis [deleted]
shivamckaushik Your Explanation is wrong and misleading.Logic behind @ amansbhandari algorithm is at any index p he is storing by how much this value is more than previous value, subsequently if value from p to q is 100(to be exact 100 more than other values) q+1 should be 100 less than values between p and q.That is why we subtract 100 at q+1 index of array.
adi928 That's it. Thanks for a simpler explanation.
akashjus The solution works, but how did you came to this theory ?
guangzefrio That's what I understand this theory. We can try to understand this logic like we imagine Supermario walking on a N width horiz line. a and b is the point on the line, k is the mushroom Mario like to eat. When Mario go to the point at a,he eat the k size mushroom and become taller,after he have walked through point b, his height reverse to the origin height before he eat the mushroom. eg. 1. When Mario is walking to a, he eat a k size mushroom, and become k bigger 2. Then Mario is walking to a', he eat a k' size mush, and become k' bigger, now Mario's height is (k + k') 3. If Mario have walked to b, so he pooped out the mushroom and become k smaller, the only way that he can become larger is to meet a new (a,b) point and eat a new k size mushroom 4. The rest can be done in the same manner.
What we need to do is tracing the Mario's biggest height when walking through that muliple query's a and b point.
ayu111 awesome explanation.. btw i wanted to ask if this is what we call segment tree..and if we can use this method to solve questions with the segment tree tags.. P.S. : I have a very little knowledge about the segment trees.
Thanks in advance.
nikhiljain1222 you can refer top coder or either gog to understand the concept of segment tree. ;)
ayu111 acha bhai :D
nikhiljain1222 haha.. ;)
vventura This is literally the only reason I actually was able to understand the logic of the code. Thank you for that, seriously.
leong1568 Very nice explanation. The explanation in the question does misleading on how to implement the solution.
rawshar_bhardwaj Thanks a lot for your explanation, it really simplified the problem. :)
rhuang23 ahaha great explanation, thanks so much!
qwer1234spam The only explanation I understood
Kanahaiya Hi,
Most of the peope solved this problem but time complexity of solution is O(n*m) (due to two nested for loops)which can not be used to solve this problem for given time constraint, so you need better approach which beats O(n*m)
I have created a video tutorial for you and uploaded the same on youtube with complete explanation along with code complexity analysis.
Here is the video tutorial for my solution O(n+m) complexity passed all test cases.
Would really appreciate your feedback like, dislike , comment etc. on my video.
vaib95 i dont get why did you subtract from q+1th element?
gauravkochar_gk sorry dear ,I dont get it .Plz tell me, how do you think about this logicc....
sarbajitnandey Check your code with this inputs
i/p: 7 2 1 5 100 2 3 500
[deleted] here we are adding value only in a[p] but we have to add value from a[p] to a[q] .and what is the requirement of a[q+1] here????? plz clear my doubt ...
rghvmandowara how you thought this ?????
piyushkushwah131 why are we substracting from q+1? anyway how one can think to this level?
Anirudh_K Why is my code not working on the same approach ? Please help Can't find anything wrong !
include
include
using namespace std;
int main(){
int N,M,a,b,c; cin>>N>>M; long int *arr=new long int[N+1]; for(int i=0;i<M;i++){ cin>>a>>b>>c; arr[a]+=c; if(b+1<=N){ arr[b+1]-=c; } } int x=0,ans=0; for(int i=1;i<=N;i++){ x+=arr[i]; ans=max(ans,x); } cout<<ans;return 0; }
mtkocak keep an eye on edges.
Anirudh_K Still No Clue!
vadim_tarasov Try to change
for(int i=1;i<=N;i++){
to
for(int i=0;i<=N;i++){
guangzefrio We can try to understand this logic like we imagine Supermario walking on a N width horiz line. a and b is the point on the line, k is the mushroom Mario always like to eat. When Mario go to the point at a,he eat the k size mushroom and become taller,after he have walked through point b, his height reverse to the origin height before he eat the mushroom. eg. 1. When Mario is walking to a, he eat a k size mushroom, and become k bigger 2. Then Mario is walking to a', he eat a k' size mush, and become k' bigger, now Mario's height is (k + k') 3. If Mario have walked to b, so he pooped out the mushroom and become k smaller, the only way that he can become larger is to meet a new (a,b) point and eat a new k size mushroom 4. The rest can be done in the same manner.
What we need to do is tracing the Mario's biggest height when walking through that muliple query's a and b point.Ea9Le Best explanation, thanks.
adarshawasthi851 thanks a lot bro this is best explanation i found of this problem.
dania_dlbani This is the best explanation ever. Thank you.
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