You are given a string s containing lowercase English letters, and a matrix shift, where shift[i] = [direction, amount]:
directioncan be0(for left shift) or1(for right shift).amountis the amount by which stringsis to be shifted.- A left shift by 1 means remove the first character of
sand append it to the end. - Similarly, a right shift by 1 means remove the last character of
sand add it to the beginning.
Return the final string after all operations.
Constraints:
1 <= s.length <= 100sonly contains lower case English letters.1 <= shift.length <= 100shift[i].length == 20 <= shift[i][0] <= 10 <= shift[i][1] <= 100
Example 1:
Input: s = "abc", shift = [[0,1],[1,2]] Output: "cab" Explanation: [0,1] means shift to left by 1. "abc" -> "bca" [1,2] means shift to right by 2. "bca" -> "cab"Example 2:
Input: s = "abcdefg", shift = [[1,1],[1,1],[0,2],[1,3]] Output: "efgabcd" Explanation: [1,1] means shift to right by 1. "abcdefg" -> "gabcdef" [1,1] means shift to right by 1. "gabcdef" -> "fgabcde" [0,2] means shift to left by 2. "fgabcde" -> "abcdefg" [1,3] means shift to right by 3. "abcdefg" -> "efgabcd"
题意是给一个string S和一个二维数组shift,请你根据shift里面的情况改动S,最后输出S被修改过后的结果。思路是首先遍历shift,判断出最后S到底是往左shift还是往右shift,用一个变量count记录。同时需要注意的是如果这个count的长度大于S的长度,需要取模。最后用substring函数看到底是S的两个substring到底应该如何拼接。
时间O(n)
空间O(1)
Java实现
1 class Solution { 2 public String stringShift(String s, int[][] shift) { 3 int count = 0; 4 for (int[] value : shift) { 5 if (value[0] == 0) { 6 count += value[1]; 7 } else { 8 count -= value[1]; 9 } 10 } 11 count = count % s.length(); 12 if (count > 0) { 13 s = leftShift(s, count); 14 } else if (count < 0) { 15 s = rightShift(s, -count); 16 } 17 return s; 18 } 19 20 public static String leftShift(String s, int num) { 21 return s.substring(num) + s.substring(0, num); 22 } 23 24 public static String rightShift(String s, int num) { 25 return s.substring(s.length() - num) + s.substring(0, s.length() - num); 26 } 27 }