ZigZag Conversion
作者:互联网
题目描述:
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)
P A H N A P L S I I G Y I R
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"
.
理解题目意思很关键。
nRows = 3,字母排列如下:
P A
A P L
Y I (按Z字形排列)
nRows = 4,字母排列如下:
P I
A L S
Y A H
P I (按Z字形排列)
代码很简单,自己写了一个
solution1:
string convert(string s, int nRows) { int len = s.size(); if(len <= 2 || nRows <=1) return s; if(len <= nRows) return s; vector<string> res(nRows); int num = 2 * (nRows-1); int *loop = new int[num]; int i,j; for (i = 0;i < nRows;++i) { loop[i] = i; } for (j = nRows-2;j > 0;--j) { loop[i++] = j; } int count = len / num; i = 0; for (j = 0;j < count;++j) { for (int k = 0;k < num;++k) { res[loop[k]] += s[i++]; } } int k = 0; for (;i < len;++i) { res[loop[k++]] += s[i]; } for (i = 1;i < nRows;++i) { res[0] += res[i]; } delete [] loop; return res[0]; }
看上去太过粗糙,下面的更精简
solution2:
string convert(string s, int nRows) { if(nRows < 2) return s; int len = s.size(); vector<string> res(nRows); int i = 0; while (i < len) { for (int idx = 0;idx < nRows && i < len;idx++) // vertically down res[idx] += s[i++]; for (int idx = nRows-2;idx >=1 && i < len;idx--) // obliquely up res[idx] += s[i++]; } for (int idx = 1;idx < nRows;idx++) res[0] += res[idx]; return res[0]; }
来源:https://oj.leetcode.com/discuss/10493/easy-to-understand-java-solution
转载于:https://www.cnblogs.com/gattaca/p/4174648.html
标签:Conversion,string,idx,int,res,ZigZag,nRows,++ 来源: https://blog.csdn.net/weixin_34358365/article/details/93401731