最大子段和

Examples:

{ -100, 1, 2, 3, -20, -20, -20, 2, 2, 2, 2,-100 }; Answer: 8

{ 1,2,3}; Answer: 6

{ -1,-2,-3}; Answer: -1


Solution:

O(n) Solution is to use dynamic programming. You can add numbers as you walk the array in the following manner:

X[i]=X[i]+X[i-1];

So, at each step X[i] would contain the sum of all previous numbers. At this point you only need to maintain minimum and maximum numbers to get the result you need:

static int subArray(int[] data)
{
int max = Int32.MinValue;
int min = 0;
for (int i = 0;i < data.Length;i++)
{
if (i > 0) data[i] += data[i - 1];
if (data[i]-min> max) max = data[i]-min;
if (data[i] < min) min = data[i];
}
return max;
}