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two_sum_i_test.go
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two_sum_i_test.go
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/*
Problem:
- Given an array of integers, return indices of the two numbers such that they
add up to a specific target.
- You may assume that each input would have exactly one solution, and you may
not use the same element twice.
Example:
- Input: nums = []int{2, 5, 4}, target = 6
Output: [0, 2] since nums[0] + nums[2] = 2 + 4 = 6
Approach:
- Use a hash map to store the value and its index as we iterate through the
list.
- Within each iteration, look up the difference of target and the current
value to see if we have seen that number.
- Simply return two cached indices once that condition meets.
Cost:
- O(n) time, O(n) space.
*/
package leetcode
import (
"testing"
"github.com/hoanhan101/algo/common"
)
func TestTwoSumI(t *testing.T) {
tests := []struct {
in1 []int
in2 int
expected []int
}{
{[]int{}, 6, []int{0, 0}},
{[]int{1}, 6, []int{0, 0}},
{[]int{2, 4}, 6, []int{0, 1}},
{[]int{2, 5}, 6, []int{0, 0}},
{[]int{2, 5, 4}, 6, []int{0, 2}},
{[]int{2, 5, 8}, 6, []int{0, 0}},
}
for _, tt := range tests {
result := twoSumI(tt.in1, tt.in2)
common.Equal(t, tt.expected, result)
}
}
func twoSumI(nums []int, target int) []int {
m := map[int]int{}
out := make([]int, 2)
// return empty slice on edge cases.
if len(nums) == 0 || len(nums) == 1 {
return out
}
// iterate through the list, look up the temporary hash map to see if we
// have seen the number before and return both cached indices.
for i, num := range nums {
if j, ok := m[target-num]; ok {
out[0] = j
out[1] = i
}
m[num] = i
}
return out
}