We have two special characters. The first character can be represented by one bit 0. The second character can be represented by two bits (10 or 11).
Now given a string represented by several bits. Return whether the last character must be a one-bit character or not. The given string will always end with a zero.
Example 1:
Input:
bits = [1, 0, 0]
Output: True
Explanation:
The only way to decode it is two-bit character and one-bit character. So the last character is one-bit character.
Example 2:
Input:
bits = [1, 1, 1, 0]
Output: False
Explanation:
The only way to decode it is two-bit character and two-bit character. So the last character is NOT one-bit character.
Note:
1 <= len(bits) <= 1000.
bits[i] is always 0 or 1.
1.思考
- 根据题意可知,遍历整个序列,若当前是0,则index++;若当前是1,则index = index + 2;
- 直到序列最后两位,若倒数第二位为1,则index = index + 2,最后一位不是1bit,return false;
- 若倒数第二位为0,则看最后一位是否为0,是则return true,否则return false;
- 即当解码跳出循环时为indexlen-1,且bits[index]0,return true;否则,return false。
2.实现
Runtime: 4ms(100%)
Memory: 8.5MB(100%)
class Solution {
public:
bool isOneBitCharacter(vector<int>& bits) {
int len = bits.size();
int i = 0;
while(i<len-1){
if(bits[i]==1)
i++;
i++;
}
if(i==len-1 && bits[i]==0)
return true;
else
return false;
}
};