description:
看给定的数字是否是合法数字
Note:
Example:
answer:
class Solution {
public:
bool isNumber(string s) {
int len = s.size();
int left = 0, right = len - 1;
bool eExisted = false;
bool dotExisted = false;
bool digitExisted = false;
while (s[left] == ' ') ++left;
while (s[right] == ' ') --right;
if (left >= right && (s[left] < '0' || s[left] > '9')) return false;
if (s[left] == '.') dotExisted = true;
else if (s[left] >= '0' && s[left] <= '9') digitExisted = true;
else if (s[left] != '+' && s[left] != '-') return false;
for (int i = left + 1; i <= right - 1; ++i) {
if (s[i] >= '0' && s[i] <= '9') digitExisted = true;
else if (s[i] == 'e' || s[i] == 'E') {
if (!eExisted && s[i - 1] != '+' && s[i - 1] != '-' && digitExisted) {
eExisted = true;
}
else return false;
} else if (s[i] == '+' || s[i] == '-') {
if (s[i - 1] != 'e' && s[i - 1] != 'E') return false;
} else if (s[i] == '.') {
if (!dotExisted && !eExisted) dotExisted = true;
else return false;
} else return false;
}
if (s[right] >= '0' && s[right] <= '9') return true;
else if (s[right] == '.' && !dotExisted && !eExisted && digitExisted) return true;
else return false;
}
};