【LeetCode】71. Simplify Path
Simplify Path
Given an absolute path for a file (Unix-style), simplify it.
For example,
path = "/home/"
, => "/home"
path = "/a/./b/../../c/"
, => "/c"
Corner Cases:
- Did you consider the case where path =
"/../"
?
In this case, you should return"/"
. - Another corner case is the path might contain multiple slashes
'/'
together, such as"/home//foo/"
.
In this case, you should ignore redundant slashes and return"/home/foo"
.
核心在于编写一个以'/'为分隔符的split函数
以及用进出栈来保存最简路径。
path:"/a/./b/../../c/"
split:"a",".","b","..","..","c"
stack:push(a), push(b), pop(b), pop(a), push(c) --> c
注意:string(it1, it2)的用法
string (InputIterator first, InputIterator last); Copies the sequence of characters in the range [first,last), in the same order.
class Solution { public: static bool isSlash(char c) { return (c == '/'); } static bool notSlash(char c) { return !isSlash(c); } vector<string> split(string str) { vector<string> ret; string::iterator it = str.begin(); while(it != str.end()) { it = find_if(it, str.end(), notSlash); string::iterator it2 = find_if(it, str.end(), isSlash); if(it != str.end()) ret.push_back(string(it, it2)); it = it2; } return ret; } string simplifyPath(string path) { vector<string> v = split(path); stack<string> stk; string ret = ""; for(int i = 0; i < v.size(); i ++) { if(v[i] == ".") ; else if(v[i] == "..") { if(!stk.empty()) stk.pop(); } else stk.push(v[i]); } while(!stk.empty()) { ret = "/" + stk.top() + ret; stk.pop(); } if(ret == "") return "/"; return ret; } };