Simplify Path
Problem Statement
Given a string path
, which is an absolute path (starting with a slash '/'
) to a file or directory in a Unix-style file system, convert it to the simplified canonical path.
In a Unix-style file system, a period '.'
refers to the current directory, a double period '..'
refers to the directory up a level, and any multiple consecutive slashes (i.e. '//'
) are treated as a single slash '/'
. For this problem, any other format of periods such as '...'
are treated as file/directory names.
The canonical path should have the following format:
- The path starts with a single slash
'/'
. - Any two directories are separated by a single slash
'/'
. - The path does not end with a trailing
'/'
. - The path only contains the directories on the path from the root directory to the target file or directory (i.e., no period
'.'
or double period'..'
)
Return the simplified canonical path.
Example 1:
Input: path = "/home/"
Output: "/home"
Explanation: Note that there is no trailing slash after the last directory name.
Example 2:
Input: path = "/../"
Output: "/"
Explanation: Going one level up from the root directory is a no-op, as the root level is the highest level you can go.
Example 3:
Input: path = "/home//foo/"
Output: "/home/foo"
Explanation: In the canonical path, multiple consecutive slashes are replaced by a single one.
Constraints:
1 <= path.length <= 3000
path
consists of English letters, digits, period'.'
, slash'/'
or'\'
.path
is a valid absolute Unix path.
Code
Python
class Solution:
def simplifyPath(self, path: str) -> str:
stack = []
i = 0
while i < len(path):
cur = path[i]
i += 1
if cur == '/':
while i < len(path) and path[i] == '/':
cur += path[i]
i += 1
else:
while i < len(path) and path[i] != '/':
cur += path[i]
i += 1
if cur == '..':
if stack: stack.pop()
elif cur[0] != '/' and cur != '.':
stack.append(cur)
res = ''
for s in stack: res += '/' + s
return res if res else '/'