给定一个已按照非递减顺序排列的整数数组numbers,请你从数组中找出两个数满足相加之和等于目标数target。
函数应该以长度为2的整数数组的形式返回这两个数的下标值。numbers的下标从 1 开始计数,所以答案数组应当满足1 <= answer[0] < answer[1] <= numbers.length。
你可以假设每个输入只对应唯一的答案,而且你不可以重复使用相同的元素。
示例 1:
输入:numbers = [2,7,11,15], target = 9
输出:[1,2]
解释:2 与 7 之和等于目标数 9 。因此 index1 = 1, index2 = 2 。示例 2:
输入:numbers = [2,3,4], target = 6
输出:[1,3]示例 3:
输入:numbers = [-1,0], target = -1
输出:[1,2]提示:
2 <= numbers.length <= 3 * 10^4-1000 <= numbers[i] <= 1000numbers按非递减顺序排列-1000 <= target <= 1000- 仅存在一个有效答案
1.哈希
Python:
class Solution:
def twoSum(self, numbers: List[int], target: int) -> List[int]:
temp = set()
for i in range(len(numbers)):
diff = target - numbers[i]
if numbers[i] not in temp:
temp.add(diff)
else:
return [numbers.index(diff)+1, i+1]Java:
class Solution {
public int[] twoSum(int[] numbers, int target) {
Map<Integer, Integer> values = new HashMap<>();
int diff;
for(int i = 0; i < numbers.length; i++)
{
diff = target - numbers[i];
if(values.containsKey(numbers[i]))
{
return new int[]{values.get(numbers[i])+1, i+1};
}
else
{
values.put(diff, i);
}
}
return null;
}
}2.双指针
Python:
class Solution:
def twoSum(self, numbers: List[int], target: int) -> List[int]:
i = 0
j = len(numbers)-1
temp = numbers[i] + numbers[j]
while temp != target:
if temp < target:
i += 1
else:
j -= 1
temp = numbers[i] + numbers[j]
return [i+1, j+1]Java:
class Solution:
def twoSum(self, numbers: List[int], target: int) -> List[int]:
i, j = 0, len(numbers)-1
while i < j:
value = numbers[i] + numbers[j]
if value > target:
j -= 1
elif value < target:
i += 1
else:
return [i+1, j+1]
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