NYJ1qCr Use Python 3:
s, n = input().strip(), int(input().strip()) print(s.count("a") * (n // len(s)) + s[:n % len(s)].count("a"))
satyasri12511001 print(s.count("a") * (n // len(s)) + s[:n % len(s)].count("a")) please any one explain me this
BMichaels It counts the number of "a" in a full string, and in the last, potentially partial string, and calculates the total amount of "a" based on that.
"a" count of full string * number of string repeats + "a" count of last string.
satyasri12511001 thanks for your help bro
jayanthsaikiran [deleted]
addhawk [deleted]prasadbiradar037 could u explain the code
pranita_kadlag can you explain the code
kcsals This code works pretty well even though it can be written a lot shorter. I'll help explain since he never did. The first two if statements are trying to avoid really long series if it just has n = 100000000 and s=a. Not needed if you coded in a better way, but it works. Now starting with the "l" variable. That counts the number of "a's" in a given series, so [a,b,c,a] would return 2. math.floor part makes it so it divides by the integral and leaves the remainder out. I recommend just doing n//len(s) though. It's faster. l*c counts all the a's for the integral side, but now you have to take into account the remainder side. That is what res += .... does. the n%len(s) gives the remainder side. Puting it in a position of s[:x] makes it count only the list up to the remainder number. Then s[].count('a') counts the a's in that remainer. The res += just adds the a's from the remainder side to the integral side that you did in the line above.
spacebars I think it's important to note the difference between '/' and '//' in python 3. '/' will return a decimal number, whereas '//' uses truncate division (floor division) returning a whole number.
cbr26504 whats the difference between '//' and math.floor ? I understand it as the same but my code fails for 12/23 cases with '//' and works fine with math.floor which i got from @jayanthsaikiran above
miaohuang1976 I got the same problem, just make sure you add parenthesis for n//lens, this is the version that works for me:
def repeatedString(s, n):
return s.count('a') *( n//(len(s))) + s[:(n%(len(s)))].count('a')Meanwhile, this is the version that fails for 12/23 cases:
def repeatedString(s, n):
return s.count('a') * n//(len(s)) + s[:(n%(len(s)))].count('a')pranavjayachand Do any of you understand the logic behind that?
akashrai110011 I used the same logic but a simpler code. It's the same thing so you can understand. at first s.count("s") will give the number of a's in one substring. Multiplying that with (n//len(s)), which is the number of complete substrings present in that repeated string, gives the number of a's till that part. Now what's left is a smaller (incomplete) part of the substring which is s[0:n%len(s)] ( length of the remaining = the remainder). We just find the number of a's in that part and add it to the previous value of count
rayedbw s.count("a")
rajatmishra3009 but how do i code this in java
astroid07 Here's the code in Java:
int repeatedString(String s, int n) { int q = n/s.length(); int r = n % s.length(); if(!s.contains("a")) return 0; return s.length()>n? C(s, r) : q*C(s, s.length()) + C(s, r); } int C(String s, int e) { for (int i = 0, int a=0; i < e; i++) { if (s.charAt(i) == 'a') a++; } return a;}
rajatmishra3009 thanks a lott ,but its given that n can be long a;so
gowthamann27 try this
static long repeatedString(String s, long n) { char[] chrIn = s.toCharArray(); int i = 0; long max = 0; long quo = n / chrIn.length; long rem = n % chrIn.length; while (i < chrIn.length) { if (chrIn[i] == 'a') { max++; } i++; } i = 0; max = max * quo; while (i < rem) { if (chrIn[i] == 'a') { max++; } i++;
} return max; }
rahulrajgupta031 this code is not working
gowthamann27 try this
static long repeatedString(String s, long n) { char[] chrIn = s.toCharArray(); int i = 0; long max = 0; long quo = n / chrIn.length; long rem = n % chrIn.length; while (i < chrIn.length) { if (chrIn[i] == 'a') { max++; } i++; } i = 0; max = max * quo; while (i < rem) { if (chrIn[i] == 'a') { max++; } i++;
} return max; }
gowthamann27 try this
static long repeatedString(String s, long n) { char[] chrIn = s.toCharArray(); int i = 0; long max = 0; long quo = n / chrIn.length; long rem = n % chrIn.length; while (i < chrIn.length) { if (chrIn[i] == 'a') { max++; } i++; } i = 0; max = max * quo; while (i < rem) { if (chrIn[i] == 'a') { max++; } i++;
} return max; }
xlm13x static long repeatedString(String s, long n) { Matcher matcher = Pattern.compile(String.valueOf('a')).matcher(s); int aInInput = 0; while (matcher.find()) { aInInput++; } long totalA = 0L; if (s.equals("a")) { return n; } else { totalA = totalA + ((n / s.length()) * aInInput); for (int i = 0; i < (n % s.length()); i++) { if (s.charAt(i) == 'a') { totalA++; } } } return totalA; }xlm13x [deleted]rajatmishra3009 what is matcher.find();
xlm13x You can learn it about here: https://docs.oracle.com/javase/7/docs/api/java/util/regex/Matcher.html
preetkewl 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 repeatedString function below. static long repeatedString(String s, long n) { long check = 0; int i=0,j=0,k=0; long count = 0; for(i=0; i<s.length(); i++){ if(s.charAt(i) == 'a') count++; } long div = n/s.length(); long reminder = n%s.length(); count = div*count; for(i=0; i<reminder; i++){ if(s.charAt(i) == 'a') count++; } return count; } private static final Scanner scanner = new Scanner(System.in); public static void main(String[] args) throws IOException { String s = scanner.nextLine(); long n = scanner.nextLong(); long result = repeatedString(s, n); System.out.print(result); scanner.close(); }}
adi_bhutani16 Beautiful!!
suburb4nfilth [deleted]askarovdaulet I would recommend s.count("a",0,n%len(s)) over slicing s. Slicing is not very efficient for very long strings. For 100-character strings will barely matter of course.
snaran Do you think the Python interpreter would do the optimization for you?
eugalt And why count the same thing twice? :)
s = input() n = int(input()) d, r = divmod(n, len(s)) print(s.count('a', 0, r) * (d + 1) + s.count('a', r) * d)
s_ydinesh1177 Can you please explain it? : (
Richard_Khonan what does(n//len(s)) and s[:n%len(s)] mean?
alphasingh I'll explain here with an example, suppose the input is:
aba 10
n = 10, means the string s = "aba" is repeated over the course of 10 letters, i.e. abaabaabaa. Now, we break this string further down. First part, the exactly divisible part, s1 = "abaabaaba" and the second part, the remainder part, s2 = "a". To represent the count of a in s1 and s2, we have, int(n/len(s)) or n//len(s) and s[:n%len(s)], multiplied by count of a in s, respectively.
baymaxlim2204 Thanks. Easy to understand explanation for no matter what language.
[deleted] This is the most clean and articulate explaination/answer to ANY software problem I've never seen online. Thank you.
prash8669 [deleted]
byronrpv_rckr what is the complexity of your algrithm?
NiceBuddy [deleted]
RajShukla why you have used colon ":" can you please explain?
tanagon601 string slicing s[ : : ]
emtodawa The ":" allows Python select (Slice) all the elements before the nth element.
s = (abacde)
s[:3] = (aba)
So if n is 3, this allows Python to select all elements up to, but not including the 3rd item.
brandaohugo More readable in Python3:
def repeatedString(s, n): a_count = s.count('a') reps = n//len(s) rest = n % len(s) count = a_count * reps + s[0:rest].count('a') return count
eugalt If you are calling it more readable you should have managed to format it properly at the least.
wongj19 [deleted]wongj19 Thank you for the code, and I format it:
def repeatedString(s, n): a_cnt = s.count('a') num = n//len(s) mod = n%len(s) count = a_cnt*num + s[:mod].count('a') return count
DAMwingtsun Yours is the only one that passed all the test cases. Any reason why didn't make it past the 15th test?
if len(s) == 1: if s == 'a': return n else: return 0 elif len(s) in range(1, 101): if n < (10 ** 12) + 1: return ((s * (int(n // len(s)) + 1))[:n]).count('a') else: return 0
sh_komal1994 Thank you :)
rakeshreddy5566 great by the thought of using remainder
UriyaBA This is brilliant! Gotta love Python
wesleyrichmond this is impossible to understand
umrbek_yakubov what about a case when n < len(s) ?
profnandaa Same concept, in JS:
function repeatedString(s, n) { const counta = (str) => str.split('') .filter(c => c == 'a') .length const d = Math.floor(n / s.length) const r = n - (s.length * d) return d * counta(s) + counta(s.substr(0, r)) }
JShilale This is a great one, thank you.
Forces me to think about the input string as a single unit as opposed to just concatenating the string onto itself until it reached the length of n and checking for the amount of a's in the resulting string like i originally did.
ALI_ASAD Really good solution
jantomm perhaps you don't need to use filter if you split str by 'a'
const repeatedString = (s, n) => { const countA = s => s.split('a').length - 1; let len = s.length; let reps = Math.floor(n / len); let remainder = s.slice(0, n % len); return reps * countA(s) + countA(remainder); };
rAfitiiixxx + 0.5 for better code and + 0.5 for better var naming. Good lord ppl here put awfull names to things. i don't know javascript at all, but seems nice to work with lambdas in the same way i do in C#. I should start to check for how ppl do the algos in js after i'm done with my part in C#.
gparsons Does this work with strings that repeat a?
'abaaaa'
k_klapczynski Yes, it passes all tests when submitted. Tested as well your string and it's all good. It's a nice and clever solution.
stefannhs [deleted]
D1360 nice solution, very similar to mine!
countAslooks a bit uglier, but I tried to avoid transforming to array.Also, I think it is almost the same, but you could use
%for calculating therestfunction repeatedString(s, n) { countAs = (s, index) => { let count = 0; while (index >= 0) { if (s[index] == 'a') count++; index--; } return count; }; if (n <= s.length) { return countAs(s, n - 1); } else { const parts = Math.floor(n / s.length); const rest = n % s.length; return countAs(s, s.length - 1) * parts + countAs(s, rest - 1); } }
kmario1019 I did the same but with regex:
function repeatedString(s, n) { const count = (s) => s.replace(/[^a]/g, '').length; return count(s) * (parseInt(n / s.length)) + count(s.substr(0, n % s.length)); }
ahmedrabi100 i am using the same idea but the problem i get some cases Wrong here is my Code with C#
static long repeatedString(string s, long n) {
double r = 0; foreach(char c in s) if (c== 'a') r++; double count = Math.Floor(n * r/s.Length); for(int i = 0; i< n%s.Length;i++) if(s[i]== 'a') count++; return Convert.ToInt64(count); }hernandes_silva Based on your code i reached the solution below:
double r = 0; foreach (char c in s) { if (c == 'a') { r++; } } r = ( r * (n/ s.Length)); for (int i = 0; i < n % s.Length; i++) { if (s[i] == 'a') { r++; } } return Convert.ToInt64(r);PS.: Not tested against "n < len(s)".
hernandes_silva Wow, very nice!!!
Now i tested against "n
priyankalokhand2 Thank You
jaishreekulkarni here is my code in C#: I am also getting 10/23 cases wrong.
int len = s.Length; long cnt = 0; string remStr; long repeats = 1, finalCnt,remCnt; if (len > 1) { int rem = (int)n % len; repeats = (n-rem)/len; cnt = s.Split('a').Length - 1; finalCnt = cnt * repeats; remStr = s.Substring(0, rem); remCnt = remStr.Split('a').Length - 1; finalCnt = finalCnt + remCnt; return finalCnt; } else { if ((s == "a")&&(len==1)) { return n; } else return 0; }
akash0744 insted of int take long everywhere.
jaishreekulkarni thanks that solved my problem
prem_ktr007 plz some one explain this code clearly.i am a beginner
alexa346 Simple yet elegant way of handling it!
chauhanshivam_ Excellent! Thanks;-)
mikelkengni beautiful!!!!cudos
VVIT17BQ1A0513 Please explain briefly about :: s[: n % len(s)].count("a")
kiran2006kundur1 Super !!
juvenn And the same in Ruby:
s.count('a') * n.div(s.size) + s.slice(0,n.remainder(s.size)).count('a')
kingsdeb I used the same logic, but my code sucks, this is beautiful python idiomatic code. <3
rpodlinov l = len(s) print(s.count("a") * (n // l + s.count("a", 0, n%l))
is better in terms of performance due to it do not use slice.
sak7258 the man? el macho?
DAMwingtsun NYJ1qCr, nice! I looked at divmod too but was slower than yours. My is a bit modified for the last part of string but still, I am passing 15 of the 23 cases. Any reason why??? def repeatedString(s, n): if len(s) == 1: if s == 'a': return n if len(s) < 100 and n <= 10 ** 12: return ((s * (int(n // len(s)) + 1))[:n]).count('a') #a, b = divmod(n, len(s))
#return (s * a + s[:b]).count('a') else: return 0avinashgpai98 what does n//len(s) do?
leonardo_daher Very Pythonic solution! Nice!
redmice [deleted]redmice [deleted]jspades93 [deleted]m_bansal10 Python has count ? wow, poor java, had to loop on char array while comparing them
sabeeh_yunus [deleted]sabeeh_yunus Think I did the same thing in a more explicit way:
def repeatedString(s, n): length = len(s) complete = n // length # total complete strings left = n % length occur = 0 # in single sequence for idx, ch in enumerate(s): if 'a' == ch: occur += 1 occur = occur * complete # in remainder if left > 0: for idx, ch in enumerate(s): if 'a' == ch and idx < left: occur += 1 return occur
Raulkg public static void main(String[] args) { Scanner in = new Scanner(System.in); String s = in.next(); long n = in.nextLong(); long count =0; for(char c : s.toCharArray()) if(c == 'a') count++; long factor = (n/s.length()); long rem = (n%s.length()); count = factor*count ; for(int i=0;i<rem;i++) if(s.charAt(i)=='a') count++; System.out.println(count); }parnika182 Nice work
cys920622 for(char c : s.toCharArray()) if(c == 'a') count++;
Instead of allocating space for a charArray you could just do s.charAt(i) like you did below.
rakeshsenapathi [deleted]
vvbhandare Your answer is great but it will more help me if you could explain about deriving tis formula.
AMITARYA int main(){ string s; cin >> s; long n; cin >> n; long count=0; int i,k=s.size(); long p=n/k; for(i=0;i<s.size();i++){ if(s[i]=='a') count++; } count = count * p; for(i=0;i<(n%s.size());i++){ if(s[i]=='a') count++; } cout << count << endl; return 0; }
More simplified cpp solution,i hope this will be heplful
pruvi007 check your logic for ababa 3
it will give output as 3 bt o/p should be 2.
Raulkg are you talking about my solution?
GIWMCoder @Raulkg, nice approach without the complication of running out of heap memory with a StringBuilder.
Please check your solution for the test case of
ababawith 3 as the length. As @pruvi007 pointed out, the output is incorrect.
Here's my modified code:
public static void main(String[] args) { Scanner in = new Scanner(System.in); String s = in.next(); long n = in.nextLong(); long count = 0; if(n > s.length()) { long repeat = n/s.length(); long diff = n % repeat; for(char c: s.toCharArray()) { if(c == 'a') count++; } count = count * repeat; for(int i=0;i<diff;i++) { if(s.charAt(i) == 'a') count++; } } else { int len = (int) n; s = s.substring(0,len+1); for(char c: s.toCharArray()) { if(c == 'a') count++; } } System.out.println(count); }
Oxobo [deleted]
abderrahmane_be1 static long repeatedString(String s, long n) { int i = 0; long lCountA = 0, rCountA = 0; long sTimes = n / s.length(); long remainChars = n % s.length(); if(remainChars > 0){ for(; i < remainChars; i++){ if(s.charAt(i) == 'a') lCountA++; } } if(sTimes > 0){ for(; i < s.length(); i++){ if(s.charAt(i) == 'a') rCountA++; } } return sTimes * (rCountA + lCountA) + lCountA; }Monish_Narendra Nice... Could you please Explain How your code works...
ricardimgyn static long repeatedString(String s, long n) { int strLength = s.length(); long aOccurrence = 0; long factor = n / strLength; long remainder = n % strLength; for (int i=0; i < strLength; i++) { if (s.charAt(i) == 'a') { aOccurrence += (i < remainder) ? factor + 1 : factor; } } return aOccurrence; }
rckskelton Very clean and smart.
abishekdevaraj Your solution is smart and nice... Could you please explain how your code works?
pbilla1 Without understanding you commented it is smart and nice..WOW
amitkumar80a without this one test case fails
int len = (int) n; s = s.substring(0,len+1);
and including this all test case passed ..what's the difference
mandalsambeet It's giving me the correct output. My logic is similar to @Raulkg.
rvrishav7 try this out happy coding #include <cmath> #include <cstdio> #include <vector> #include <iostream> #include <algorithm> using namespace std; int main() { string s; long long int i=0,cpl=0,n; cin>>s>>n; long long int r,q; while(s[i]!='\0') { if(s[i]=='a') { cpl++; } i++; } long long int l=s.length(); q=n/l; cpl=cpl*q; r=n%l; for(i=0;i<r;i++) { if(s[i]=='a') { cpl++; } } cout<<cpl; return 0; }
rvrishav7 [deleted]shivaisno1 now it works fa ababa 3
if(n
shobhitvj1311 how are you able to make such logics??
aadarsh9600 Please Explain Your Logic. @AMITARYA
maheshvangala191 Tried it by not considering modulous loop but I didn't get it thank you
maheshvangala191 Tried it by not considering modulous loop but I didn't get it thank you
selva1996 ur code is fine , but it is good to store s.size() value to a variable and then use that variable for calculations , because s.size() everytime runs 'n' times the length of the string when for loop checks the condition.
indsonusharma i want to know where or how did u think ths logic
CSociety You won't need to run for loop twice in else case using this code. Time Complexity will decrease
int i = 0, count = 0, count1 = 0; if(n%s.size()==0){ for(int i = 0; i<s.size(); i++){ if(s.at(i)=='a'){ count++; } } return n/s.size()*count; } else{ for(int i = 0; i<s.size(); i++){ if(s.at(i)=='a'){ count++; if(i<n%s.size()){ count1++; } } } return (n/s.size()*count)+count1; } }
indsonusharma thank
virginielgb I don't think you need the first "if", do you ? This is my (accepted) JS solution :
function repeatedString(s, n) { var inString = 0; var added = 0; for(var i = 0 ; i < s.length ; i++) { if(s[i] == 'a') { inString++; if(i < (n%s.length)) added++; } } var repeats = (n- n%s.length)/s.length; return repeats*inString+added; }
elvis_dukaj A better way to write...
#include <iostream> #include <string> #include <algorithm> using namespace std; int main() { string s; cin >> s; long n; cin >> n; auto repetition = n / s.size(); auto partial = n % s.size(); auto aCountInString = count(begin(s), end(s), 'a'); auto aCountInPartial = count(begin(s), begin(s) + partial, 'a'); cout << aCountInString * repetition + aCountInPartial; return 0; }
nshukl23 [deleted]
shubham24976 you should use long long !!!!!!#amitarya
khannaa153 I had the same code, but made a small mistake and your code really helped me rectified it.
raptor_inc2018 [deleted]
lifekills Nice, but it can be done with a single loop:
public static void main(String[] args) { Scanner in = new Scanner(System.in); String s = in.next(); long n = in.nextLong(); if (!s.contains("a")) { System.out.println(0); return; } long count = 0; long mod = s.length() > 0 ? n % s.length() : 0; long remainder = 0; boolean strLonger = false; for (int i = 0; i < s.length(); ++i) { if (i >= n) { strLonger = true; break; } if (s.charAt(i) == 'a') { if (mod > i) remainder++; count++; } } if (!strLonger) count = count * Math.max(n / s.length(), 1) + remainder; System.out.println(count); }
Dheeraj571 Great work .Easy for rookies to understand.
s0033 I think we could avoid one loop
static long repeatedString(String s, long n) { String sh = s.replaceAll ("[^a]", ""); long ost = n%s.length(); long qty = ((n - ost)/ s.length())*sh.length(); for (int i = 0; i < ost; i++) { if (s.charAt(i) == 'a') { qty++; } } return qty; }
chanakauomfit Great..!
hegde_vishal1 It was not mentioned in the question but your solution doesn't work if n is less than s.length()
CSociety Thanks for the suggestion
Highlander_Monk nice solution :)
ankitshah_tech Excellent bro
Abdullah104 Very smart and clear solution, Very nice to have got the chance to see your solutionn. Thank you
jaletechs Beautiful!
sonikakumari_s1 wow
Kprashanth047 thanks a lot its very clear
umesh_technotes What happens if n < s.length?
alexfilth186 Leave loops for JDK:
static long repeatedString(String s, long n) { long canPlace = n / s.length(); long missingPart = n % s.length(); long qtyPerString = s.chars().filter(ch -> ch == 'a').count(); long missingChars = (missingPart > 0) ? s.substring(0, (int)missingPart).chars().filter(ch -> ch == 'a').count() : 0; return (canPlace * qtyPerString) + missingChars; }lukezawada 2 for loops is kind of unneeded here. Here's a refactor (in C#): int As = 0; int modAs = 0;
for(int i = 0; i < s.Length; i++) { if(s[i] == 'a') { As++; if(i < (n % s.Length)) modAs++; } } return As * (n/s.Length) + modAs;
awesomeanimesh Can u please explain what is the use of factor and rem
EDIT-Got it.Great logic.awesome
federicocapucci pretty genious! i spent a day and couldn't figure out some of the cases without iterating throughout a string the size of 'n' .
Thank you!
jhpar25 Java Solution
static long count(String s, long n) { long numOfS = n/s.length(); long rest = n % s.length(); if(!s.contains("a")) return 0; return s.length()>n? aCounter(s, rest) : numOfS*aCounter(s, s.length()) + aCounter(s, rest); } private static long aCounter(String s, long end) { int a=0; for (int i = 0; i < end; i++) { if (s.charAt(i) == 'a') a++; } return a; }
aneri_masi Elegant!
pablohcl93 Terrific!!
3r1ck_442 Hi, I dont get why you are getting numOfS and rest, coud you please explain?
jhpar25 numOfS calculates how many times string s has appeared as a complete string, up to nth character in the infinite string . rest represents the number of characters left after finding out number of s.
For example, let's say we have a string s "abcd" and n is equal to 10. The infinite string will be something like "abcdabcdabcd...". Then, we can break this infinite string into substrings like this up to 10th character, abcd/abcd/ab. In this case, we have 2 complete sets of s and a partial s which contains only 2 characters.
numOfS gives us 2.5, but long is a type of integer so the result becomes 2 and 0.5 is gone. The value 2.5 means we have 2 complete sets of s and 0.5, half of s. Since ab is not a complete s, we need to figure out how to pick up that 0.5 we dropped above.
Now, rest counts what's left, remainders. 10 % 4 is 2. Finally, these results will be passed onto aCounter, which literally counts the number of As in the string, depending on the algorithm.
The rest is pretty easy to understand :)
Sharangpure Excellent solution !
JosiahKing Learnt a new thing here apart from logic. Ternary operator usage. Thank you!!
yamany good job bro
raheezrahman Excellent Work!
davebuchholz13 Adding that I learned a lot of tricks from this one solution. Bravo!
davebuchholz13 String manipulation can be deceptive! I was going through with the mindset during my planning phase of splitting the string with a substring() at long index but quickly realized that is not allowed.
Tried a few different tricks and came upon this solution. I was 1/2 of the way there. Thank you for this.
[deleted] Simple and elegant !!! Awesome job !!!
linmeijiang I don't really understand the syntax here: return s.length()>n? aCounter(s, rest) : numOfS*aCounter(s, s.length()) + aCounter(s, rest)
Cound you explain? thank you.
juaxix Simple code for c++14
#include <iostream> #include <algorithm> using namespace std; int main() { string s; unsigned long int n; cin >> s; cin >> n; cout << ( //string length * a's count + rest of the string a's cut ((n/s.size()) * count(s.begin(),s.end(),'a')) + count(s.begin(),s.begin() + n%s.size(),'a') ); return 0; }
jose_hernro So Great!!! How did you get the equation?
inwerp [deleted]
paulius_gasp Can you explain it?
ashoka_tanvi Good, but not all test cases pass.
gabrielgiordano Efficient JavaScript solution
The algorithm doesn't count the string a second time, both best and worst case is O(n) where n = length of the string
From my repo https://github.com/gabrielgiordan/HackerRank
function repeatedString(s, n) { let c = 0, ca = 0, r = n % s.length for (let i = s.length; i-- > 0;) { if (s.charAt(i) == 'a') { ++c if (i < r) ++ca } } return ((n - r) / s.length * c) + ca }
hmndz Could you explain the variable ca?
gabrielgiordano Of course, 'ca' is the remaining 'a' characters, while 'c' is the total amount of characters in the given string without the remaining. 'r' is the remaining that doesn't fit into the 'n', so ((n - r) / s.length * c) is the amount of characters whitout the remainings of 'a' characters. The remaining must be counted only if is not greater than the index (i < r). So the total amount without the remaining + the remaining 'ca' is the result.
247galindo Nicely done!
warliang The return value got me confused, but your explanation was very helpful! Thanks!
function repeatedString(s, n) {
let count = (s.match(/a/g) || []).length * Math.floor(n/s.length) let remainder = n % s.length let remainderCount = (s.substring(0, remainder).match(/a/g) || []).length return count + remainderCount}
This was what I used!
fmuiin14 This is work for javascript ...
but can you explain aboout this code?
evgeniy_aksyonov Hi, thank you for sharing this.
But can you please explain how we can get answer 7 for given s = 'aba' and n = 10?
return statement will hold: ((10 - 1) / 3 * 2) + 1 which is: (9 / 6) + 1 = 2.5
Can't get my head around it =\
blacr7 ((10 - 1) / 3 * 2) + 1is(9)/3 * 2 + 1not(9/6) +1evgeniy_aksyonov omg, I forgot about operations order =\ so obvious...
thanks for reaching out, blacr7
blacr7 no problem its a easy mistake to make
DesertFaux Curious about the for loop here:
for (let i = s.length; i-- > 0;)
The use of postfix incrementing on the i variable caught my eye. Is this structure considered good practice? Usually we see:
for (let i = s.length; i > 0; i--)
Which does the same thing but is a bit easier to read as it follows the standard 3 statement structure.
sindhuanurag2 it will be good, if you can put useful names instead of c, ca, r.... Because that will help me to relate more with your algorithm.
jon_dow Here is my solution with comments. There are additional variables declared for ease of understanding.
// number of times string can be repeated within limit n const numOfRepeats = Math.floor( n / s.length ); // additional number of strings to get to the limit n const remainderString = n % s.length; // find number of matches in a string let matches = ( s.match(/a/g) || [] ).length; // multiply number of matches in a string with number of repeatations matches = matches * numOfRepeats; // find number of matches in remainder string const remainderMatches = (s.substring(0,remainderString).match(/a/g) || [] ).length; // add it up return matches + remainderMatches;
bipin2295 Wooh! 1 long to int conversion can destroy your life!
sksairaj61 simple c code
#include <math.h> #include <stdio.h> #include <string.h> #include <stdlib.h> #include <assert.h> #include <limits.h> #include <stdbool.h> int main(){ char s[100]; scanf("%s",s); long long int i,n,lenth,b,c,h,count=0,count1=0; scanf("%lld",&n); lenth=strlen(s); b=n/lenth; c=n%lenth; for(i=0;i<lenth;i++){ if(s[i]=='a'){ count++; } } h=count*b; for( i=0;i<c;i++){ if(s[i]=='a'){ count1++; } } h=h+count1; printf("%lld",h); return 0; }
T_abhi541 can you please explain this code
sksairaj61 in which part of this code you can't understand
dreamtracker how you assign the values in b and c. plzz define it..
suyashmadhav31 how he assigns it doesn't matter. The concept is , in 'b' we get the number of required repeats of string and in 'c' we get the value of the additional nth index of the string.
SandyGusain [deleted]suyashmadhav31 one word !!! Thanks ... :-)
Dharmateja6 super code...Awesome Thought
sravanalakshmi91 can u tell me what is the use h=h*c
mohantynishanta Thank you sir.great code.wonderful concept
Pravallika_kond1 can u please tell me why do we use "long long int" instead of "int"
deepak_097 passes all the test cases :)
int main() { long long int k,count=0,i,l,c1=0; char string[100]; scanf("%s",string); scanf("%lld",&k); l=strlen(string); for(i=0;i<=l-1;i++) { if(string[i]==97) count=count+1; } for(i=0;i<=k%l-1;i++) { if(string[i]==97) c1=c1+1; } printf("%lld\n",(k/l)*count +c1); return 0; }
arvind0598 int main() { string s; cin >> s; int l = s.length(); long long int n, a = 0, a1 = 0; cin >> n; for(int i = 0; i < l; i++) if(s[i] == 'a') a++; for(int i = 0; i < n % l; i++) if(s[i] == 'a') a1++; cout << (n * l) / a + a1; return 0; }
I think we have the same approach to the problem, but still I get only 8.49 but if i copy paste your code I get full. What's the difference?
vizzard110 Very easy
psdudeman39 How did you get to this expression->((k/l)*count + c1).
chizhkovaMV s = raw_input().strip() n = long(raw_input().strip()) count_in_s = s.count('a') print n // len(s) * count_in_s + s[0:n % len(s)].count('a')
elegant_algo sweet and elegant, like you ;)
umair4 Woah did you just try to flirt lol
kvchivukula I have code this in Java 8. Its working very fine.
import java.util.*;
public class Solution {
public static void main(String[] args) { Scanner in = new Scanner(System.in); String s = in.next(); long n = in.nextLong(); int l=s.length(); long count=0,count1=0; for(int i=0;i<l;i++){ if(s.charAt(i)=='a') count++; } for(int i=0;i<(n%l);i++){ if(s.charAt(i)=='a') count1++; } count = count*(n/l)+ count1; System.out.println(count); }}
basillatif The first 'for' loop counts the number of 'a's in the original string. The second 'for' loop counts the number of 'a's in the string of length (n%l). I do not know why you count that and how you end up with your final equation 'count = count*(n/l)+ count1;'...
bavernaz count = count*(n/l)+ count1 breakdown:
count*(n/l) is needed because count only recorded the amount of times that 'a' occuranced in the oringial string (i.e not the repeated string). So we need to multiply the count by the amount of times the string was repeated.
A better way of seeing is it is count*repeats + leftover occurances
"+ count1" is needed since there could be strings with leftover 'a's, and we've already kept track of that with the second for loop
I hope this helps
m_bansal10 which Java 8 you are talking btw ;)
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