cys920622 Straightforward Java solution in constant space and O(n) time.
public static int countChanges(String message) { String sos = "SOS"; int count = 0; for (int i = 0; i < message.length(); i++) { if (message.charAt(i) != sos.charAt(i % 3)) count++; } return count; }
shravankumar1 Thank you
Phoenix98 include
include
include
include
include
include
include
int main(){
int i,len,counto,counts,total; char* S = (char *)malloc(10240 * sizeof(char)); scanf("%s",S); len=strlen(S); len=len/3; counto=0; counts=0; total=0; for(i=0;i<len;i++) { if(S[3*i]!='S') { counts++; } if(S[2*i+2+i]!='S') { counts++; } if(S[3*i+1]!='O') { counto++; } } total=counts+counto; printf("%d",total); return 0;}
phderome No need to introduce counto as distinct from counts
nidhi_thakkar66 [deleted]souravsaini438 include
using namespace std; int marsExploration(string s){ int i=0,count=0; string str; for(i=0;i
int result=marsExploration(s); cout<<result; return 0;}
Naveen_Malla SIMPLE C CODE
int main(){ char* s = (char *)malloc(10240 * sizeof(char)); int C=0; scanf("%s",s); for(int i=0;i<strlen(s);i=i+3) { if(s[i]!='S') C++; if(s[i+1]!='O') C++; if(s[i+2]!='S') C++; } printf("%d",C); return 0; }
tyagisagar79 [deleted]
phoemur In this case its OK, but I just don't like seeing malloc and no free...
keshavashourie3 good one
nayanansh [deleted]Ankur_Beginning cool
voidpro #!/bin/python3 s=input().strip() print(sum(1 for i in range(len(s)) if s[i]!="SOS"[i%3]))
mike_buttery Nice work. Can be made even shorter by suming the test (True = 1, False = 0)
def marsExploration(s): return sum(s[i] != "SOS"[i%3] for i in range(len(s)))
rankesh87 can you explain this code
mike_buttery Sure. Here is a breakdown of the comprehension:
for i in range(len(s))is an iterator that provides an index for each letter in the string.s[i] != "SOS"[i%3]is the validation test which results in aTrue(value = 1) orFalse(value = 0) - Not equal is used because we are counting mismatches. (i.e. True we have a mismatch)For each character in the string, using the index we need to test against a single character - so the trick here is to use modulo to get the correct character -
"SOS"[0] = "S", "SOS"[1] = "O", "SOS"[2] = "S"the result of index modulo 3 selects the correct comparator for our validationFinally we return the sum of all of the comparison results
pshastov Python, stop! What are you doing to me
v110_ A faster version using itertools.cycle:
from itertools import cycle print(sum(1 for i, j in zip(input(), cycle("SOS")) if i != j))
anubrij function main() { var S = readLine(); var n = 0; for(var i = 0; i < S.length ; i += 3){ if(S[i] != "S") n++; if(S[i + 1] != "O") n++; if( S[i + 2] != "S") n++; } console.log(n); }
ajHash This thing kinda clicked..
int main(){ string s; char te[3]; te[0]='S'; te[1]='O'; te[2]='S'; cin >> s;int i=0,j=0,count=0;; while(s[i]) { if(j==3)j=0; if((s[i])!= (te[j]))count++; i++;j++; } cout<<count; return 0; }
silja_tirronen I like this solution because it can be easily extended to handle an arbitrary pattern, of arbitrary length. In our case the pattern just happens to be "SOS". Here is my implementation in Java, which takes the pattern as a parameter.
public static void main(String[] args) { Scanner in = new Scanner(System.in); String s = in.next(); System.out.println(countCorruptSymbols(s, "SOS")); } private static int countCorruptSymbols(String input, String pattern) { int i = 0; int p = 0; int count = 0; while (i < input.length()) { if (input.charAt(i) != pattern.charAt(p)) { count++; } i++; p = (p + 1) % pattern.length(); } return count; }
phderome Other solutions dispense of a variable p and use modulus directly on i.
aminfara in Ruby
puts gets.strip.each_char.with_index.map{ |c, i| (c == 'SOS'[i % 3]) ? 0 : 1 }.reduce(:+)
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