LC 990. Satisfiability of Equality Equations
Given an array equations of strings that represent relationships between variables, each string equations[i] has length 4 and takes one of two different forms: "a==b" or "a!=b". Here, a and b are lowercase letters (not necessarily different) that represent one-letter variable names.
Return true if and only if it is possible to assign integers to variable names so as to satisfy all the given equations.
Example 1:
Input: false
Explanation: If we assign say, a = 1 and b = 1, then the first equation is satisfied, but not the second. There is no way to assign the variables to satisfy both equations.
Example 2:
Input: true
Explanation: We could assign a = 1 and b = 1 to satisfy both equations.
Example 3:
Input: true
Example 4:
Input: false
Example 5:
Input: true
Note:
1 <= equations.length <= 500equations[i].length == 4-
equations[i][0]andequations[i][3]are lowercase letters -
equations[i][1]is either'='or'!' -
equations[i][2]is'='
Runtime: 12 ms, faster than 100.00% of C++ online submissions for Satisfiability of Equality Equations.
Memory Usage: 7.1 MB, less than 100.00% of C++ online submissions for Satisfiability of Equality Equations.
class Solution { private: int arr[26]; public: void unionab(int a, int b) { arr[parent(a)] = arr[parent(b)]; } int parent(int a) { if(arr[a] != a) return parent(arr[a]); return a; } bool uninit(int a) { return arr[a] == a ? true : false; } bool hassameroot(int a, int b) { return parent(a) == parent(b); } bool equationsPossible(vector<string>& equations) { for(int i=0; i<26; i++) arr[i] = i; for(int i=0; i<equations.size(); i++) { int a = ((int)equations[i][0] - (int)'a'); int b = ((int)equations[i][3] - (int)'a'); if ((int)equations[i][1] == (int)'=') { if(!hassameroot(a,b)) unionab(a,b); } } for(int i=0; i<equations.size(); i++) { int a = ((int)equations[i][0] - (int)'a'); int b = ((int)equations[i][3] - (int)'a'); if((int)equations[i][1] == (int)'!') { if(hassameroot(a,b)) return false; } } return true; } };