Give a string s, count the number of non-empty (contiguous) substrings that have the same number of 0's and 1's, and all the 0's and all the 1's in these substrings are grouped consecutively.
Substrings that occur multiple times are counted the number of times they occur.
Input: "00110011" Output: 6 Explanation: There are 6 substrings that have equal number of consecutive 1's and 0's: "0011", "01", "1100", "10", "0011", and "01". Notice that some of these substrings repeat and are counted the number of times they occur. Also, "00110011" is not a valid substring because all the 0's (and 1's) are not grouped together.
Input: "10101" Output: 4 Explanation: There are 4 substrings: "10", "01", "10", "01" that have equal number of consecutive 1's and 0's.
s.lengthwill be between 1 and 50,000.swill only consist of "0" or "1" characters.
class Solution:
def countBinarySubstrings(self, s: str) -> int:
prev, curr = 0, 0
ret = 0
for i in range(len(s)):
curr += 1
if i == len(s) - 1 or s[i] != s[i + 1]:
ret += min(prev, curr)
prev, curr = curr, 0
return ret# @param {String} s
# @return {Integer}
def count_binary_substrings(s)
prev, curr = 0, 0
ret = 0
for i in 0...s.length
curr += 1
if i == s.length - 1 or s[i] != s[i + 1]
ret += [prev, curr].min
prev, curr = curr, 0
end
end
return ret
end