• LeetCode:ZigZag Conversion


    题目链接:ZigZag Conversion

    The string “PAYPALISHIRING” is written in a zigzag pattern on a given number of rows like this: (you may want to display this pattern in a fixed font for better legibility)

    这里写图片描述

    And then read line by line: “PAHNAPLSIIGYIR”
    Write the code that will take a string and make this conversion given a number of rows:

    string convert(string text, int nRows);
    convert(“PAYPALISHIRING”, 3) should return “PAHNAPLSIIGYIR”.

    第一版代码,通过模拟ZigZag Conversion的过程得到一个字符矩阵,然后遍历矩阵得到结果,代码比较丑,然而我也不想改了,将就看吧:

    public class Solution {
        public String convert(String s, int numRows) {
            if (s == null || numRows == 1) {
                return s;
            }
    
            int length = s.length();
            int baseRows = numRows - 1;
            // 计算结果矩阵的列数
            int numColumns = (length / (numRows + numRows-2)) * baseRows;
            int remainder = length % (numRows + numRows-2);
            if (remainder > numRows) {
                numColumns += 1+remainder-numRows;
            } else if (0 < remainder && remainder <= numRows) {
                numColumns++;
            }
    
            char[][] temp = new char[numRows][numColumns];
    
            // 模拟 ZigZag Conversion 过程,构造字符矩阵
            for (int j = 0, index = 0; j < numColumns; j++) {
                if ((j % baseRows) == 0) {
                    for (int i = 0; i < numRows && index < length; i++,index++) {
                        temp[i][j] = s.charAt(index);
                    }
                } else {
                    for (int i = numRows-2; i > 0 && index < length; i--,j++,index++) {
                        temp[i][j] = s.charAt(index);
                    }
                    j--;
                }
            }
            // 先行后列遍历矩阵,取出结果
            StringBuilder val = new StringBuilder();
            for (int i = 0; i < numRows; i++) {
                for (int j = 0; j < numColumns; j++) {
                    if (temp[i][j] != 0) {
                        val.append(temp[i][j]);
                    }
                }
            }
    
            return val.toString();
        }
    }



    第二版代码,直接计算字符出现的顺序,不构造矩阵:

    public class Solution {
        public String convert(String s, int numRows) {
            if (s == null || numRows == 1) {
                return s;
            }
    
            int len = s.length();
            StringBuilder val = new StringBuilder();
            // 逐行添加字符
            for (int i=0; i<numRows; i++) {
                // 这里为了区分下降和上升两种情况,设置了一个布尔变量来进行控制
                boolean flag = true;
                for (int j=i; j<len; flag=!flag) {  // 下降和上升总是交替的
                    int pos = j;
                    if (flag) {     
                        j += (numRows-i-1)*2;   // 接下来是下降,很显然要填满下面的行(画一个凹曲线)
                    } else {
                        j += i*2;               // 接下来是上升,很显然要填满上面的行(画一个凸曲线)
                    }
                    if (j == pos) {             // 当前值处在矩阵边界
                        continue;
                    }
                    val.append(s.charAt(pos));
                }
            }
    
            return val.toString();
        }
    }
    



    更爽的代码高亮,请看作业部落黑色主题

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  • 原文地址:https://www.cnblogs.com/read-the-spring-and-autumn-annals-in-night/p/12041933.html
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