[leetcode-640-Solve the Equation]
Posted hellowOOOrld
tags:
篇首语:本文由小常识网(cha138.com)小编为大家整理,主要介绍了[leetcode-640-Solve the Equation]相关的知识,希望对你有一定的参考价值。
Solve a given equation and return the value of x in the form of string "x=#value". The equation contains only ‘+‘, ‘-‘ operation, the variable xand its coefficient.
If there is no solution for the equation, return "No solution".
If there are infinite solutions for the equation, return "Infinite solutions".
If there is exactly one solution for the equation, we ensure that the value of x is an integer.
Example 1:
Input: "x+5-3+x=6+x-2" Output: "x=2"
Example 2:
Input: "x=x" Output: "Infinite solutions"
Example 3:
Input: "2x=x" Output: "x=0"
Example 4:
Input: "2x+3x-6x=x+2" Output: "x=-1"
Example 5:
Input: "x=x+2" Output: "No solution"
Approach #1 Partioning Coefficients [Accepted]
In the current approach, we start by splitting the given equationequation based on = sign. This way, we‘ve separated the left and right hand side of this equation. Once this is done, we need to extract the individual elements(i.e. x‘s and the numbers) from both sides of the equation. To do so, we make use of breakItfunction, in which we traverse over the given equation(either left hand side or right hand side), and put the separated parts into an array.
Now, the idea is as follows. We treat the given equation as if we‘re bringing all the x‘s on the left hand side and all the rest of the numbers on the right hand side as done below for an example.
x+5-3+x=6+x-2
x+x-x=6-2-5+3
Thus, every x in the left hand side of the given equation is treated as positive, while that on the right hand side is treated as negative, in the current implementation. Likewise, every number on the left hand side is treated as negative, while that on the right hand side is treated as positive. Thus, by doing so, we obtain all the x‘s in the new lhslhs and all the numbers in the new rhsrhs of the original equation.
Further, in case of an x, we also need to find its corresponding coefficients in order to evaluate the final effective coefficient of x on the left hand side. We also evaluate the final effective number on the right hand side as well.
Now, in case of a unique solution, the ratio of the effective rhsrhs and lhslhs gives the required result. In case of infinite solutions, both the effective lhslhs and rhsrhsturns out to be zero e.g. x+1=x+1. In case of no solution, the coefficient of x(lhslhs) turns out to be zero, but the effective number on the rhsrhs is non-zero.
Java
public class Solution { public String coeff(String x) { if (x.length() > 1 && x.charAt(x.length() - 2) >= ‘0‘ && x.charAt(x.length() - 2) <= ‘9‘) return x.replace("x", ""); return x.replace("x", "1"); } public String solveEquation(String equation) { String[] lr = equation.split("="); int lhs = 0, rhs = 0; for (String x: breakIt(lr[0])) { if (x.indexOf("x") >= 0) { lhs += Integer.parseInt(coeff(x)); } else rhs -= Integer.parseInt(x); } for (String x: breakIt(lr[1])) { if (x.indexOf("x") >= 0) lhs -= Integer.parseInt(coeff(x)); else rhs += Integer.parseInt(x); } if (lhs == 0) { if (rhs == 0) return "Infinite solutions"; else return "No solution"; } return "x=" + rhs / lhs; } public List < String > breakIt(String s) { List < String > res = new ArrayList < > (); String r = ""; for (int i = 0; i < s.length(); i++) { if (s.charAt(i) == ‘+‘ || s.charAt(i) == ‘-‘) { if (r.length() > 0) res.add(r); r = "" + s.charAt(i); } else r += s.charAt(i); } res.add(r); return res; } }
Complexity Analysis
-
Time complexity : O(n)O(n). Generating cofficients and findinn $lhsandandrhswill takewilltakeO(n)$$.
-
Space complexity : O(n)O(n). ArrayList resres size can grow upto nn.
参考:
https://leetcode.com/articles/solve-the-equation/
以上是关于[leetcode-640-Solve the Equation]的主要内容,如果未能解决你的问题,请参考以下文章
[Mathematics][Linear Algebra] The Rotation of the Base Vector in 3 dimensions
DTS_E_CANNOTACQUIRECONNECTIONFROMCONNECTIONMANAGER. The AcquireConnection method call to the connec
e612. Moving the Focus to the Next or Previous Focusable Component