Saikumar_P int getWays(int n, int* squares, int d, int m){ // Complete this function int sum[105]; int count=0; sum[0]=0; for(int i=0;i<n;i++)sum[i+1]=sum[i]+squares[i]; for(int i=0;i<=n-m;i++){ if(sum[i+m]-sum[i]==d){ count++; } } return count; }
shubham21 nice logic. +1
NiceBuddy [deleted]milczarek_r Same approach, but with iterators instead.
int solve(int n, vector < int > s, int d, int m){ int ways = 0; for(auto it = s.cbegin(); it != s.cend(); ++it){ if(d == std::accumulate(it, it + m, 0)) ways++; } return ways; }
viigihabe [deleted]
tpacker I believe this is O(n^2). O(n) is also possible.
gk_2000 The OP is O(n)
victorz It's O(nm).
kjkanishk211194 its o(n^2), coz in worst case senario, all the choclate blocks would add up to d.
dkarthicks27 How do we find out the time complexity. someone pls help me out
bineykingsley36 I have implemented it in O(n).
kjkanishk211194 can you show your logic ???
0_harshit_0 function birthday(s, d, m) {
let reducer = (a, c) => a + c; let count=0; for(let i=0; i<s.length; i++){ let temp = s.slice(i, m+i); if(temp.reduce(reducer) == d){ count++; } } return count; in JS
Spleen Why call accumulate function every iteration when you add only one square ? It's not the same approach : you are O(nlog(n)), his solution is in O(n)
24god10 can U explain me about 2 lines of your code?:
for(auto it = s.cbegin(); it != s.cend(); ++it){ if(d == std::accumulate(it, it + m, 0))I think aaccumulatewill sum element out of vector, I think it will beit != cend() - mmore saver.
mehdi_jafaree131 Greate! Nice usage of accumulate!
janis_stolzenwa1 what you did but more readable:
int birthday(vector s, int d, int m) { int n = 0; for(int i = 0; i <= s.size() - m;i++){ if( d == accumulate(s.begin() +i, s.begin() + i + m, 0)){ n++;
} } return n;}janis_stolzenwa1 sorry, dont know how to make the code look nice in this forum :-/
prateeksaxena731 [deleted]
nilesh05apr yeah. that's the power of c++ stl.
asifulislam5692 lol
bryon_nicoson same approach in Java
static int solve(int n, int[] s, int d, int m){ int total=0; for (int i=0;i<=n-m;i++){ if(Arrays.stream(s, i, i+m).sum() == d) total++; } return total; }
Shubhanka Please explain the logic behind it.
ramji_vishnu_26 @shubhanka Using Arrays.stream method he sends a Array 's', starting index 'i' end index 'i+m' as range which returns a set of integers from Array 's' for that specified range then using sum() method he checks the sum to equals 'd', if conditon satifies it increase the total plus one.
kuntalravi91 *starting index is i=0 and end index is i+m=2 so the 2 index is excluded?? *
bryon_nicoson the index range is inclusive of the start and end indices: [0, 1, 2].
we are looking at the set of chocolates from i to i+m and determining if that set meets our criteria. if it does, we increment total. then we increment i and look at the next set, and so on until we have traversed the array.
i like victorz's analogy below: it is a "sliding window."
i hope that helps.
grandmoffrapkin For the same program, how can we get the result if the required chocolate squares are not consecutive?
kjkanishk211194 thats not what the problem states ( these types of problem are called maximum-sub array problems ) ,
Still you want to solve this problem, you need to use Combinations, which will increase the diffuculty.
aborjrcl what is the i < n-m?
tiwari_ravikumar Yes the 2 index is excluded.
DulmikaSapumal Thank you
asmai_faical Java 8 is always here , thank you :)
azizxon_uz what if we must find when numbers not consecutive?
for example input:
10
5 3 1 4 2 5 1 2 4 2
8 2
there we can got 8 like that:
5 3
4 4pandaanurag0920 why i<=n-m is used for?
mehul_sachdeva7 because the last pair formed will be of the size m and we need out loop to go till n-m . if we go forward (n-m) even one step then m size of pair will not be formed as there are no more elements in array
mehul_sachdeva7 JS approach
function birthday(s, d, m) { var count = 0; for (var i = 0; i < s.length - m + 1; i++){ var sum = 0; for (var j = 0; j < m; j++){ sum = sum + s[i + j]; } if (sum == d) { count++; } } return count; }
csk111165 Nice Logic!
prashant70_pk really nice logic..Thanks(:..
yikming I think s.length - m + 1 is not necessary, can be just s.length.
24god10 Can I ask you why? Because I think the condition:
<= s.length - mwill make the accumulate in belong the size of vector, I dont understand a code with same like you said like this:int solve(int n, vector < int > s, int d, int m){ int ways = 0; for(auto it = s.cbegin(); it != s.cend(); ++it){ if(d == std::accumulate(it, it + m, 0)) ways++; } return ways; }dkarthicks27 but the real issue comes for the test case: (s,d,m) => (4, 4, 1)
Harsh_Prajapati it is necessry beacuse when you are not writing then error is index out of bound
pa980403 Thanks mate!!
chulbulji67 int i,j,sum,count=0,n=s_count; for(i=0;i<=n-m;i++) { sum=0; for(j=i;j
tmcuong Mine is in a fimiliar way.
let count = 0; for (let i = 0; i <= s.length - 1; i++) { let sum = 0; for (let y = 0; y < m; y++) { sum += s[i+y]; } if (sum == d) { count += 1; } } return count;
ahmad1_adnan95 thanx man
28kashishbatr thanks bro your logic is simple as well as ez :)
peter_solays14 what if the sum exceed the d before the m is looped till the end!!! we can ignore further looing and make it more effecient !!
askakade21 ya wht if we get sum=d at fisrt position. like if ex.5,1,3,4,2.hera d=5and m=2; at the step sum =sum+s[i+j]; here i=0and j=0; then the counter increases but .its not correct,we should take two bars to sum d.
igee54077 nice one ....
sauravkuthiala11 Nice Logic
rahul_ahuja360 This will not work for this case:
1,2,1,3,2 d=3 m=2
SudipBiswas Can you please expain why we have to use s.length-m+1 ???
Spleen Don't call sum() every time Oo You add only one square each time ! (reduction cost log(n) computation) → O(nlog(n)) It's possible in O(n) complexity
gabrielbb0306 Is it me or this is not the "same approach"? Correct me if i'm wrong but i think Arrays.stream.sum() iterates fron index a to b, so in every iteration of the for loop you are iterating again. Your algorithm is not 0(n) as @Saikumar_P's. This is my 0(n) solution with Java similar to @Saiumar_P's:
static int birthday(List s, int d, int m) {
int[] sums = new int[s.size() + 1]; int count = 0; for(int i = 0; i < s.size(); i++) { int sumsIndex = i + 1; sums[sumsIndex] = sums[sumsIndex - 1] + s.get(i); if (sumsIndex >= m && (sums[sumsIndex] - sums[sumsIndex - m]) == d) count++; } return count; }shradha070801 What is n here?
jacobkalas Beautiful solution, one thing learned today! Thank you!
jacobkalas So i have implemented this piece of code but keep getting an error: "no suitable method found for stream(List,int,int)"
cvilladiegoa Same approach in C#
int total = 0; for(int i = 0; i <= s.Count - m; i++) { var segsSum = s.GetRange(i, m).Aggregate((a, b) => a + b); if(segsSum == d) { total++; } } return total;
rohanghule12 In C++
int count = 0; for (int i = 0; i < s.size() - m + 1; i++) { int sum = 0; for (int j = 0; j < m; j++) { sum = sum + s[i + j]; } if (sum == d) { count++; } } return count;
aravind295 [deleted]aravind295 static int birthday(List<Integer> s, int d, int m) { int sum = 0,ways=0; for (int i=0;i<m;i++){ sum += s.get(i); } for (int i=0;i<s.size()-m+1;i++) { if (sum==d) { ways++; } if (i+m <s.size()){ sum =sum-s.get(i)+s.get(i+m); } } return ways; }dejavxtrem Please can you explain your code in details
yrwol The first loop was initializing the sum.
The second loop was iterating through the list to calculate the sum of each subarray of size m by removing the first element and then adding the m'th element back. If that makes sense.
I cleaned it up with Linq.
static int birthday(List<int> s, int d, int m) { int sum = 0; int results = 0; for (int i = 0 ; i < s.Count() - m + 1 ; i++) { sum = s.Skip(i).Take(m).Sum(); if (sum == d) { results++; } } return results; }
victorz I used a sliding window, just like you, but there was no need to build a sum array.
https://www.hackerrank.com/challenges/the-birthday-bar/submissions/code/43358272sayanmanik_sm how is the logic working?
victorz It's a sliding window.
CurlyHurlyGirl Can you tell me how the logic works? I'm new and have many to learn.
victorz If you already have the sum of a subarray (like the starred elements in
[***___]), then you can get sum of the subarray with indices shifted right by 1 (for the previous example,[_***__]) by adding one element and subtracting another.Prince_sai's solution gets O(n) runtime in a different way: a cumulative sum array.
15B01A0577 how did u get dat kinda logic
Sentinal_prime please explain the logic
khirulislam_cse Here is the Java implemetation. We just need the starting index that we are working on. and every time there is an ArrayIndexOutofBoundsException that means we don't need the loop anymore and we break. We count the total of consecutive squares and check if it's equal to the d.
static int solve(int n, int[] s, int d, int m){ int startingIndex =0; int result =0; int total = 0; for(int i=0;i<n;i++){ startingIndex = i; try{ for(int j=0;j<m;j++){ total += s[startingIndex + j]; } }catch(Exception e){ break; } if(total == d){ result++; } total =0; } return result; }
codertoaster I have the same idea as you, but why are most of my test cases failing ?
static int solve(int n, int[] s, int d, int m) { int start=0,end=m-1; int sum=0,num=0; for(int i=start ; i<=end && end<s.length ; i++) { sum+=s[i]; if(i==end) { if(sum == d) { num++; sum=0; i=start+1; start++; end++; } else { sum=0; i=start+1; start++; end++; } } } return num; }
pankajbabu i use yur code,but test case is fails.....so improve your codess.. thanks
pooniaarvind29 thug life
rearbreed lol
btiwari004 lol
aishwarya217 Hey, it's probably not working because in this code i is getting changed to start + 1 and then getting incremented again as part of the for loop.
if(sum == d) { num++; sum=0; i=start+1; start++; end++; } else { sum=0; i=start+1; start++; end++; }
Hope this helps.
moihawk thats what it was for me, thank you
rvrishav7 int main() { int n; cin>>n; int ar[n]; int i,c=0; for(i=0;i<n;i++) cin>>ar[i]; int d,m; cin>>d>>m; int s=0,l=1; i=0; while(m<=n) {l=0;s=0; while(l<m) { s=s+ar[l+i]; l=l+1; } if(s==d) { c=c+1; } i=i+1; n=n-1; } cout<<c; return 0; }
Satyadev_Abhiram include
using namespace std;
int main() { int i,n,sum=0,date,month,num[1000],count=0,j; cin>>n; for(i=0;i>num[i]; } cin>>date>>month; for(i=0;i
romulo8000 A good constructive tip: extract common code like:
if(sum == d) { num++; } else { start++; } i=start+1; sum=0; start++; end++;
It's More readable
tp468 superb logic int birthday(vector s, int d, int m) { int p=s.size();int i,j; int sum=0; int count=0;int start=0; for(i=0;i
} return count;
}
kevinhs472 Nice logic man, i learn some new tips there.thank you for posting this.
krmatalia int c=0; for(int i=0;i<n;i++) { int sum=0,j=i,lp=0; if((j+m)>=n && (j+m)!=1) break; else { while(lp<m) { sum+=s[j++]; lp++; if(sum==d) ++c; } } } return c;
even this is failing i don't know why when i purchased the testcases i was getting the right output.
codertoaster yeah that happens a lot. my outputs are same as the test cases still shows failure.
harshitha2922 thanks for an easy understood algorithm !
dparthib Nice code:
If you change your code as below suggestion then no need to handle the exception.
for(int j=0;(j<n)&&(j<m);j++)
ramji_vishnu_26 @Khirulislam_cse You can avoid using the entire try catch block by replacing with simple while loop statement.
Shubham_203 Hie,see this java implementation
static int solve(int n, int[] s, int d, int m){ // Complete this function int sum,count=0,j,k; for(int i=0;i<=n-m;i++) { k=i; sum=0; j=1; while(j<=m) { sum=sum+s[k]; k++; j++; } if(sum==d) count++; } return count; }
phatngo1606 Your code is so wonderfullll
yalcinberkay Actually I Wrote the same code but I couldn't think try catch block for the first loop thank you :)
sdsatyakidas1995 [deleted]
sonupanchal [deleted]Nidhi99 Why is sum an array of 105 integers? Isn't 101 enough?
ash_upadhyay def solve(n, s, d, m): # Complete this function count = 0 for i in range(0,n): total = sum(s[i:m+i]) if total == d: count+=1 return count
This function uses a sliding window too :) If any corrections please comment :)
tpacker I believe this is O(n^2). O(n) is also possible.
ash_upadhyay @tpacker Thanks. I appreciate your response. Can you please help me understand how can we get O(n) I couldn't figure out what makes it O(n^2) any leads would really be appreciated :)
smhoyo So, your answer is not really O(n^2), but rather O(n*m), since your sum() method iterates over m elements in the array for every n element in the array. Thus, O(m*n).
You can improve though, if you figure out a smarter way to keep track of the sum of the m previous pieces. You can for example just hold a sum variable where you remove the last element and add the new one as you iterate, instead of calculating the whole sum each and every time. (Imagine the repeated work when your m grows).
Here is a java example:
static int solve(int n, int[] s, int d, int m){ int sum = 0; int r = 0; for (int i = 0; i < s.length; i++) { sum += s[i]; // M is never less than 1 if (i > m - 1) sum -= s[i - m]; if (i >= m - 1 && sum == d) r++; } return r; }
mountaingeek93 this is gold! thank you :)
victorz m <= n, so O(nm) is technically O(n^2) too, but O(nm) is a tighter upper bound.
_rajulSingh wow
jaishreekulkarni Awesome solution. Some out of the box thinking there!!
krishna_sai540 Really great answer! out of the box.
suraj_zinzuwadia Nice solution!!
Ajey01 yeah!!
suryabteja Why is that it doesn't through list index out of range error?
Shanthini_S [deleted]mahamadbilal696 [deleted]
rakesht2499 The shortest method for the above python code
return sum(1 for x in range(len(s)) if sum(s[x:x+m]) == d)
lifebalance Well done!
wrutka Im not sure of this solution. This will not be working with this input:
5 1 2 1 3 3 3 2
The output should be
2but will be3because it will count last digit of the series3. This solution does not consider what if solution will be shorter than a month digit.Sure, this will pass all validators but still... :).
daniel_augusto11 return sum(1 for x in range(len(s)) if sum(s[x:x+m]) == d and len(s[x:x+m]) == m )
DaniRed_ That't beutiful thank you for sharing : i did this way but we can make way shorter by yours..
- num=0
- for i in range(len(s)):
- if sum(s[i:i+m])==d:
- num+=1
- return(num)
DaniRed_ List comprehension is amazing
arshiyasoleimani I agree but also his method is n * m time complexity sadly.
rusaka a minor optimization:
return sum(1 for x in range(len(s)-m+1) if sum(s[x:x+m]) == d)
akcoolboy47 can u explain wht this "1" is doing in sum( "1" for x in range(len(s)-m+1)
irondsd This method wouldn't work if the numbers were not close together? I tested it for an array with suiting numbers in the opposite side of the array and sure enough it didn't work.
So, is there a way to find the anwer for this case?
kuzkingard This is brilliant!. Please can you shed an insight as to why you used the index range i:m+i in line 5?
zsts0 There is no need to check last M items in array S. Minor optimisation, but still: range(0, n - m + 1)
RaduAlexandruB Hey I made this version of sliding windows in Python3... with O(n):
def birthday(arr, d, m): count = 0 currentSum = 0 for i in range(0, len(arr)): currentSum += arr[i] if i >= m-1: if currentSum == d: count += 1 currentSum -= arr[i-(m-1)] return count
vishalb__ Such a Good solution bro.. I was working with left and right pointers and was stuck, but the "if i >= m-1" move is really good one.
asifulislam5692 is it work??
smhoyo My solution in Java:
static int solve(int n, int[] s, int d, int m){ int sum = 0; int r = 0; for (int i = 0; i < s.length; i++) { sum += s[i]; // M is never less than 1 if (i > m - 1) sum -= s[i - m]; if (i >= m - 1 && sum == d) r++; } return r; }
victorz This one uses a sliding window, just like my solution. I did it slightly differently by summing the first m digits in another loop.
johnmensah why not O(n) like below
def solve(n, s, d, m): if(n==1 and s[0]==d): return 1 elif(n==1): return 0 count = 0 for i in range(len(s)-1): if(sum(s[i:m+i])==d): count = count + 1 return count # Complete this function
mahamadbilal696 we should select the proper range otherwise the list becomes out of order, but in this example no need(can select range(0, n))
def birthday(s, d, m, n): count = 0 for i in range(n-m+1): if(sum(s[i:m+i])==d): count = count + 1 return countAny quasions, fell free to ask.
quaid_johar33 perfect code
arshiyasoleimani Very inefficent.
debuis007 def birthday(s, d, m):
count = 0
for i in range(len(s)):
if(sum(s[i:m+i])==d): count = count + 1return count
not_neophyte can anyone pls explain how does this code work?
priyachowdary191 will you please explain why did you write this:sum[i+m]-sum[i]==d
Ajey01 i didn't have written this line.....plzz check once
shreyagarwal611 nice logic broo!!!
aiswarya110498 change getWays function into birthday function.. Answer is right.. Could you please explain the logic behind declaring sum[105] ?
bineykingsley36 nice logic. However can you reduce the time complexity a little?
victorz No, it's already O(n).
Thinkster Ruby!
def birthday(bar, day, month) possible = 0 (0..bar.length - month).each do |i| possible += 1 if (bar[i...i + month].inject(0, :+) === day) end possible end
ateszka you can make it simpler:
def birthday(bar, day, month) (0..bar.length - month).count { |i| day == bar[i, month].sum } end
amyanktiwari Can you explain me the question in easy language ,i mean what we have to do.
harshnagpal10 please explain the logic
harshnagpal10 nice pal
kvbabu02461 could you explain the second for loop
kmtstemail static int birthday(List<Integer> s, int d, int m) { int count = 0; for(int i=0; i<= s.size() - m; i++) { if( s.subList(i, i+m).stream().mapToInt(n -> n).sum() == d) { count++; } } return count; }
mishrashivanshu May I get Algo Explaination pls...
imnetanmangal I think you must run outer FOR loop "i < n-1" times instead of "i < n"
sarimahmad1509 Nice, logic bro!!! But I have a question y u have tkn the size of sum array as 105. Can't we take it as size of squares array +1 ? sum[arrays.length+1];
durgeshp Bhai Kamaal kar diye tum!!! (Wow what a logic!!!!) Jabardast!!! (well done!!)
_blacksheep If anyone need help on JS
guptadevansh73 include
using namespace std; int main() { int n,s[100],d,m,i,j,sum=0,ct=0; cin >> n; for(i=0;i> s[i]; } cin >> d >> m; for(j=0;j<=n-m;j++) { for(i=j;i
guptadevansh73 include
using namespace std; int main() { int n,s[100],d,m,i,j,sum=0,ct=0; cin >> n; for(i=0;i> s[i]; } cin >> d >> m; for(j=0;j<=n-m;j++) { for(i=j;i
guptadevansh73 plz tell whats wrong..????
tdhanush777 nice logic man
casper_teo brilliant idea!
wzha6204 Nice dynamic programming approach.
gauravtewari awsome logic bro
muhsalaa function birthday(s, d, m) { let count = 0; for (let x = 0; x < (s.length - m) + 1; x++ ){ let tmp = s.slice(x, m+x).reduce((a,b) => a+b,0); if (tmp === d) count++; } return count; }// js
PkkdGuy Pyhton people see this!!
def getWays(squares, d, m): tp = (len(squares)-m) + 1 #total number of pieces possible return len([1 for i in range(tp) if sum(squares[i:i+m])==d])
saxtouri I did the same think with multiple lines, but it's always refreshing to see oneliner solutions.
tkomane Honestly I find one-liners a bit overrated. A lot of people on here get into this nasty habit of cramping their code just to force a one-liner - which I find just silly.
jon_black I agree and disagree. One-liners that don't obfuscate the code are succinct. You just have to make sure that property holds true, and that creating a one-liner doesn't decrease performance.
saxtouri One liners make a slipery slope when writting production code, but in games like this, it is just a nice excescise.
Pyjamadeus Seeking out a one-liner at the expense of efficiency (as we see here) seems a strange way to prioritise things, but oh well
sharmaspg how do you people get this logic ?is it pure practice or do you refer some books for the logic ?
SpaceHero I suppose practice. Practice list comprehensions enough and it can get easy. This is a list comprehension that adds 1 to a list everytime the sum in that range is equal to d. Then len is used to count all the 1s in that list. I learned list comprehensions through learning haskell.
frankhjung That is how I solved it using Haskell! https://www.hackerrank.com/challenges/the-birthday-bar/submissions/code/99568589 Though I would to love to know if there is a function (like scanl) that would generalise this ...
pnkj119 Beat this:
def getWays(squares, d, m): return sum([1 for i in range(n-m+1) if sum(s[i:i+m])==d])
PkkdGuy There is nothing to beat in your code bro :D
victorz You could use a generator expression instead of a list comprehension.
def getWays(squares, d, m): return sum(1 for i in range(n-m+1) if sum(s[i:i+m])==d)
But if you want a more efficient solution for larger inputs, use a sliding window (see the following link). https://www.hackerrank.com/challenges/the-birthday-bar/submissions/code/43358272
SebastianNielsen By "sliding window" don't you mean a loop whithin a loop, so that it counts a surden amount ahead for each item in the lst.
victorz By "sliding window", I mean one loop without nesting another loop within it. When you advance to the next item, you add one item and subtract another item.
jeremydcarr Yo, thanks for that description. I hadn't thought of that. Made the solution so much cleaner.
h201551072 can u explain ur code pls!!!!!
victorz There's nothing to explain; it's all obvious.
[deleted] return sum(sum(s[element:element+m) == d for element in range(len(s))])
vishoo7 This is adding from idx to idx + m. It's more efficient to keep a running sum and subtract the beginning of the window and add the next value:
def solve(n, s, d, m): if m > n: return 0 i = j = 0 window_sum = 0 while j < m: window_sum += s[j] j += 1 count = 1 if window_sum == d else 0 while j < n: window_sum -= s[i] window_sum += s[j] if window_sum == d: count += 1 i += 1 j += 1 return count
nahibolungaa [deleted]
joshumcode I don't understand how this works given that n is not defined.
ganeshshinde1494 its lenght of given array. n=len(s)
alphasingh Python people saw this, and now python people jealous. :p
baymaxneoxys Thanks for the approach! BTW we could have used segment trees as well, right?
LeHarkunwar Did similarly, but shorter
def solve(n, s, d, m): return sum([1 for i in range(n-m+1) if sum(s[i:i+m]) == d])
victorz That's just a copy of https://www.hackerrank.com/challenges/the-birthday-bar/forum/comments/289156
LeHarkunwar Truly didn't see that, looks super similar :P
cfshao_bjtu I cannot see the results in the link. Could you please share your code here?
Thank you
bL4ck_r4bb1t In Python True == 1 and False == 0, so this also works:
def solve(n, s, d, m): return sum(sum(s[i: i + m]) == d for i in range(n - m + 1))
panda_whisperer Ruby version:
def solve(squares, d, m) squares.each_cons(m).map(&:sum).select { |s| s == d }.count end
brunoao86 +1
Ruby <3
juggmug how did u write tp?
arisiru In fact your solution is dumb, you solved it in O(n^2) instead of O(n)
alexdam321 Why does this work? In the case you have the list of squares [1,1, 3, 3, 2], m = 2 and d = 3, there are two positive cases of [2,1] and [1,2]. However, your code gives returns 0.
The only way this makes sense is the assumption the pieces must be consecutive to sum, but I didn't see that mentioned in the problem.
kcoddington0925 C# implementation:
using System; using System.Collections.Generic; using System.IO; using System.Linq; class Solution { static int getWays(int[] squares, int d, int m) { int ways = 0; for (int i = 0; i < squares.Length - (m - 1); i++) if (squares.Skip(i).Take(m).Sum() == d) ways++; return ways; } static void Main(String[] args) { int n = Convert.ToInt32(Console.ReadLine()); string[] s_temp = Console.ReadLine().Split(' '); int[] s = Array.ConvertAll(s_temp, Int32.Parse); string[] tokens_d = Console.ReadLine().Split(' '); int d = Convert.ToInt32(tokens_d[0]); int m = Convert.ToInt32(tokens_d[1]); int result = getWays(s, d, m); Console.WriteLine(result); } }
kandoimihir I know this is an old comment but I want to understand the logic behind this
squares.Length - (m - 1)
Can you help me?
Hazaaa If n = 19 and m = 7. You don't need to sum elements from index 13 to 18 because you don't have enough peaces of chocolate. I hope i helped you :D
kandoimihir Thank you :)
marlondias Cool LINQ! Thanks for sharing!
rodrigoramirez93 Solid as a rock, thanks for sharing
audusheriffemor1 Hello, I'm confused. Why did you have to subtract (m - 1) from the length of the array
ivan_yuriev It could be simplified even more
static int birthday(List<int> s, int d, int m) { return Enumerable.Range(0, s.Count - m + 1) .Select(x => s.Skip(x).Take(m).Sum()) .Count(x => x == d); }but this is not optimal solution performance vice - it do too much redundant sum calculations (see discussion above for details)
tvinay81 static int birthday(List s, int d, int m) { int sum = 0; int count = 0; int res = 0;
for(int x = 0; x < s.Count-m+1; x++) { for(int y = x; y < s.Count; y++) { sum += s[y]; count++; if (sum == d && count==m) { sum = 0; count = 0; res++; break; } else if (sum > d) { sum = 0; count = 0; break; } } } return res; }thesmiths422 Great C# solution!
lahouari My java simple way...
static int solve(int n, int[] s, int d, int m) { int result = 0; for (int i=0; i<n; i++) { int limit = i + m; if (limit > n) { break; } int sum = 0; for (int j=i; j<limit; j++) { sum += s[j]; } if (sum == d) { ++result; } } return result; }
ScienceD What do you think about recursive approach?
int solve(vector<int> s, int d, int m, int i) { if(i < s.size() - m + 1) { int sum = 0; for(int j = i; j < i+m; ++j) sum += s[j]; bool good_choco = sum == d; return good_choco + solve(s, d, m, i+1); } else return 0; }
lchoo1996 [deleted]
priyangshuy love your code.
VirajSingh19 I was doing the same thing and my code was throwing array out of bounds exception. I don't know where I was wrong until I saw your code. It happens to me all the time.
luvkumarmishra Same I had the situation . Even two test cases was paased still i could not figured out what had happened.
harshshubh Thank you for your advice.
afederigo I have pressed dislike accidentally, sorry!
sss1721 Really awesome. Superb Logic
ylmazcandelen Did something smilar:
static int birthday(List<Integer> s, int d, int m) { int answer=0; int temp=0; for(int i=0;i<=s.size()-m;i++){ for(int t=i;t<i+m;t++){ temp+=s.get(t); } if(temp==d) { answer++; } temp=0; } return answer; }
afederigo It works. Thanks!
func birthday(s []int32, d int32, m int32) int32 { var i, answer, temp int32
for i = 0; i <= int32(len(s)) - m; i++ { for j := i; j < i + m; j++ { temp += s[j] } if temp == d { answer++ } temp = 0 } return answer}
luvkumarmishra I can't understand why you guys are subtratcting m from the s.size(). Yes I too had that outofBound error. Though this was not the case why error came into picture.
sahilmathur142 Hello Sir can you help me to understand the problem?
ejfamanas Javascript solution (tried to simplify as much as possible):
function solve(s, d, m) { let result = 0; for (let i = 0, l = s.length; i < l; i++) { if (s.slice(i, i + m).reduce((x, y) => x + y) === d) { result++; } } return result; }
m_kocijevsky I started with the same approach, but there is a gotcha in there. [1,2,3,4].slice(2,6) will return [3,4]. So the length of a new array is only 2. Have no idea how to fix it so I decided to use the inner cycle.
ancientsneeky If s was a sorted array this function would fail more than it would succeed
apolo4pena I did it pretty much the same way but slightly different. I like your chained functions in the evaluation!
function solve(s, d, m) { let vc = []; for (let i = 0; i < s.length; i++) { let c = s.slice(i, i + m); // if c the size of m and d equals c's sum then keep it if((c.length === m) && (d === c.reduce((a, p) => p + a, 0))){ vc.push(c); } } return vc.length; }
hroger19 In your for loop,
ishould stop wheni < = l - m? Or would your if statement not run if the segment is less thanm?ianbevel [deleted]gary_l_hewitt I like this approach; you could either set the endpoint of the
forloop toi<l-mor just compares.length==min theifto avoid going "off the edge."I found a very one-line functional approach, ugly but appealing all the same. I didn't put in the off-the-edge check for brevity :)
return s.filter((e,i,a) => (a.slice(i,i+m).reduce((aa,cc)=>aa+cc)==d)).lengthchibuezeayogu [deleted]
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