The problem:
Implement int sqrt(int x).
Compute and return the square root of x.
My analysis:
The problem could be solved amazingly by using binary search.
When using the algorithm, we should be very careful in in tackling range issues.
The following skills should be kept in mind.
1. All binary search has low pointer and high pointer, the terminating condition should be low < = high (index).
2. Unlike the problem of search in array, whose low and high pointer's initial location could be easily indetified as 0 to length - 1. In this case, the low pointer should start from "1", and the high pointer should start from "x/2 + 1"(this is a little tricky skill). (x/2 + 1) ^ 2 > x. (thus we can guarantee the answer for x in the range)
3. Since we need to check if a value is the sqrt of a target, we may rushly use mid * mid <= x (very dangerous!!!, the multiplication might lead to overflow)
if (mid * mid <= x && (mid + 1) * (mid + 1) > x)
Nicely, this could be sovled by following way: (no need to introduce complex max_value or min_value)
if (mid < = x / mid && (mid + 1) > x / (mid + 1))
we could use x directly as bound, the bound is in the range of [1, Max.value]
(we have already known the bound, unlike the situation in conversion, which we don't know the bound).
My solution:
public class Solution { public int sqrt(int x) { if (x < 0) return -1; if (x == 0) return 0; int low = 1; // the low should be set to 1. it's different from the search in array. int high = x / 2 + 1; // the high should be set to x / 2 + 1 int mid; while (low <= high) { mid = (high + low)/ 2; if ((x / mid >= mid) && ((mid + 1) > x / (mid + 1))) { //to avoid overflow return mid; } else if ( x / mid < mid ) { high = mid - 1; } else { low = mid + 1; } } return -1; } }