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single_number_ii_test.go
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single_number_ii_test.go
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/*
Problem:
- Given a list of integer where every element appears three time except for
one, find that unique one in O(1) space.
Example:
- Input: []int{1, 1, 2, 4, 2, 6, 4, 2, 1, 4}
Output: 6, because 6 appears 1 time only.
Approach:
- Use 3 bitmask values to represent the number that appears 1 time, 2 times and
3 times.
- When the element appears for the third times, clear it of both the
1-time-appeared and 2-time-appeared bitmask values.
- The final result of 1-time-appeared bitmask value is the unique one.
Solution:
- Initialize 3 bitmask values (ones, twos, threes) to represent the number that
appears 1 time, 2 times and 3 times.
- Iterate through the list and update these values accordingly:
- twos can be calculated by AND-ing ones and the current value.
- XOR the current value with the previous ones to keep track of the
number that appears 1 time only.
- when the current value appears for the third times, clear it of both
ones and twos.
- Return unique ones.
Cost:
- O(n) time, O(1) space.
*/
package leetcode
import (
"testing"
"github.com/hoanhan101/algo/common"
)
func TestFindUniqueID(t *testing.T) {
tests := []struct {
in []int
expected int
}{
{[]int{}, 0},
{[]int{6}, 6},
{[]int{6, 2, 2, 2}, 6},
{[]int{6, 2, 2, 2, 4, 4, 4, 1, 1, 1}, 6},
{[]int{1, 1, 2, 4, 2, 1, 4, 6, 4, 2}, 6},
{[]int{1, 1, 2, 4, 2, 6, 4, 2, 1, 4}, 6},
}
for _, tt := range tests {
result := findUniqueID(tt.in)
common.Equal(t, tt.expected, result)
}
}
func findUniqueID(list []int) int {
// ones, twos, threes represent the number that appears 1 time, 2 times and
// 3 times accordingly.
ones, twos, threes := 0, 0, 0
for _, id := range list {
// twos can be calculated by AND-ing ones and the current id.
twos |= ones & id
// XOR the current id with the previous ones to keep track of the
// number that appears 1 time only.
ones ^= id
// when the current id appears for the third times, clear it of both
// ones and twos.
threes = ones & twos
ones &= ^threes
twos &= ^threes
}
return ones
}