Given a string s and a character c that occurs in s, return an array of integers answer where answer.length == s.length and answer[i] is the distance from index i to the closest occurrence of character c in s.
The distance between two indices i and j is abs(i – j), where abs is the absolute value function.
Example 1:
Input: s = "loveleetcode", c = "e"
Output: [3,2,1,0,1,0,0,1,2,2,1,0]
Explanation: The character ‘e’ appears at indices 3, 5, 6, and 11 (0-indexed).
The closest occurrence of ‘e’ for index 0 is at index 3, so the distance is abs(0 – 3) = 3.
The closest occurrence of ‘e’ for index 1 is at index 3, so the distance is abs(1 – 3) = 3.
For index 4, there is a tie between the ‘e’ at index 3 and the ‘e’ at index 5, but the distance is still the same: abs(4 – 3) == abs(4 – 5) = 1.
The closest occurrence of ‘e’ for index 8 is at index 6, so the distance is abs(8 – 6) = 2.
Example 2:
Input: s = "aaab", c = "b"
Output: [3,2,1,0]
Constraints:
1 <= s.length <= 10^4- s[i] and c are lowercase English letters.
- It is guaranteed that c occurs at least once in s.
Solution in python:
class Solution:
def shortestToChar(self, s: str, c: str) -> List[int]:
index = []
result = [0 for i in range(len(s))]
for i in range(len(s)):
if s[i] == c:
index.append(i)
i = 0
while i < index[0]:
result[i] = abs(i-index[0])
i += 1
for i in range(len(index)-1):
print(result)
left = index[i]
right = index[i+1]
mid, r = divmod((left+right), 2)
j = left
while j <= mid:
result[j] = (j-left)
j += 1
k = mid
if r == 1:
k = mid + 1
while k < right:
result[k] = (right-k)
k += 1
i = index[-1]
while i < len(s):
result[i] = abs(i-index[-1])
i += 1
return result
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