Suppose we abstract our file system by a string in the following manner:
The string "dir\n\tsubdir1\n\tsubdir2\n\t\tfile.ext"
represents:
dir subdir1 subdir2 file.ext
The directory dir
contains an empty sub-directory subdir1
and a sub-directory subdir2
containing a file file.ext
.
The string "dir\n\tsubdir1\n\t\tfile1.ext\n\t\tsubsubdir1\n\tsubdir2\n\t\tsubsubdir2\n\t\t\tfile2.ext"
represents:
dir subdir1 file1.ext subsubdir1 subdir2 subsubdir2 file2.ext
The directory dir
contains two sub-directories subdir1
and subdir2
. subdir1
contains a file file1.ext
and an empty second-level sub-directory subsubdir1
. subdir2
contains a second-level sub-directory subsubdir2
containing a file file2.ext
.
We are interested in finding the longest (number of characters) absolute path to a file within our file system. For example, in the second example above, the longest absolute path is"dir/subdir2/subsubdir2/file2.ext"
, and its length is 32
(not including the double quotes).
Given a string representing the file system in the above format, return the length of the longest absolute path to file in the abstracted file system. If there is no file in the system, return 0
.
Note:
- The name of a file contains at least a
.
and an extension. - The name of a directory or sub-directory will not contain a
.
.
Time complexity required: O(n)
where n
is the size of the input string.
Notice that a/aa/aaa/file1.txt
is not the longest file path, if there is another path aaaaaaaaaaaaaaaaaaaaa/sth.png
.
思路:将input根据‘\n‘分割,根据开始的‘\t‘数量判断深度。用栈来统计当前的路径长度。
这个题学到了两个点:1是如何分割字符串,2是如何判断一个字符串是否含有某个子串。
1 class Solution { 2 public: 3 vector<string> split(istringstream& input, char delim) { 4 string item; 5 vector<string> res; 6 while (std::getline(input, item, delim)) { 7 res.push_back(item); 8 } 9 return res; 10 } 11 int countTb(string path) { 12 int res = 1; 13 for (int i = 0, n = path.size(); path[i] == ‘\t‘ && i < n; i++) 14 res++; 15 return res; 16 } 17 int lengthLongestPath(string input) { 18 std::istringstream iss(input); 19 vector<string> paths = split(iss, ‘\n‘); 20 stack<int> res; 21 int maxLen = 0; 22 for (string path : paths) { 23 int level = countTb(path); 24 int lengthInc = path.size() - level + 2; 25 while (res.size() >= level) res.pop(); 26 if (res.empty()) res.push(lengthInc - 1); 27 else res.push(res.top() + lengthInc); 28 if (path.find(‘.‘) != std::string::npos) 29 maxLen = std::max(maxLen, res.top()); 30 } 31 return maxLen; 32 } 33 };