A1031Hello World for U
Given any string of N (≥) characters, you are asked to form the characters into the shape of U
. For example, helloworld
can be printed as:
h d
e l
l r
lowo
That is, the characters must be printed in the original order, starting top-down from the left vertical line with n1characters, then left to right along the bottom line with n2 characters, and finally bottom-up along the vertical line with n3 characters. And more, we would like U
to be as squared as possible -- that is, it must be satisfied that n1=n3=max { k | k≤n2 for all 3 } with n1+n2+n3−2=N.
Input Specification:
Each input file contains one test case. Each case contains one string with no less than 5 and no more than 80 characters in a line. The string contains no white space.
Output Specification:
For each test case, print the input string in the shape of U as specified in the description.
Sample Input:
helloworld!
Sample Output:
h !
e d
l l
lowor
思路:
•要求n1=n3<=n2,又因为n1+n2+n3-2=N 其中是n1尽可能大,所以有三种情况
1. 如果n % 3 == 0,n正好被3整除,直接n1 == n2 == n3;
2. 如果n % 3 == 1,因为n2要⽐n1⼤,所以把多出来的那1个给n2
3. 如果n % 3 == 2, 就把多出来的那2个给n2
所以得到公式:n1 = n / 3,n2 = n / 3 + n % 3。
•又因为没有办法按行列顺序输出,所以把他们存储到二维字符数组中,一开始初始化字符数组为空格,然后按u型填充进去,最后打印二维数组。
以上参考柳神笔记和我自己的理解(*/ω\*)
1 #include <iostream> 2 #include <string> 3 #include <cstring> 4 using namespace std; 5 int main() { 6 string str; 7 cin >> str; 8 int n = str.length() + 2; 9 int n1 = n / 3, n2 = n / 3 + n % 3; 10 int index = 0; 11 char a[30][30]; 12 memset(a, ' ', sizeof(a)); 13 for (int i = 0; i < n1; i++)a[i][0] = str[index++]; 14 for (int i = 1; i < n2 - 1; i++)a[n1 - 1][i] = str[index++]; 15 for (int i = n1 - 1; i >= 0; i--)a[i][n2 - 1] = str[index++]; 16 for (int i = 0; i < n1; i++) { 17 for (int j = 0; j < n2; j++) { 18 cout << a[i][j]; 19 } 20 cout << endl; 21 } 22 return 0; 23 }