菱形平方算法
我正在尝试用Java 编写Diamond-Square算法以生成随机映射,但无法弄清楚实现方式…
任何有一些Java代码(或其他语言)的人,以便我可以检查循环的制作方式,将不胜感激!
谢谢!
回答:
这是用于生成值的有趣算法。这是我根据Wikipedia文章中的参考在本页上给出的说明创建的实现。它将创建“球面值”(包裹在所有边上)。注释中有注释,说明如何更改它以在边缘上生成新值而不是换行(尽管在这些情况下,边缘平均值的含义并不正确)。
//size of grid to generate, note this must be a//value 2^n+1
final int DATA_SIZE = 9;
//an initial seed value for the corners of the data
final double SEED = 1000.0;
double[][] data = new double[DATA_SIZE][DATA_SIZE];
//seed the data
data[0][0] = data[0][DATA_SIZE-1] = data[DATA_SIZE-1][0] =
data[DATA_SIZE-1][DATA_SIZE-1] = SEED;
double h = 500.0;//the range (-h -> +h) for the average offset
Random r = new Random();//for the new value in range of h
//side length is distance of a single square side
//or distance of diagonal in diamond
for(int sideLength = DATA_SIZE-1;
//side length must be >= 2 so we always have
//a new value (if its 1 we overwrite existing values
//on the last iteration)
sideLength >= 2;
//each iteration we are looking at smaller squares
//diamonds, and we decrease the variation of the offset
sideLength /=2, h/= 2.0){
//half the length of the side of a square
//or distance from diamond center to one corner
//(just to make calcs below a little clearer)
int halfSide = sideLength/2;
//generate the new square values
for(int x=0;x<DATA_SIZE-1;x+=sideLength){
for(int y=0;y<DATA_SIZE-1;y+=sideLength){
//x, y is upper left corner of square
//calculate average of existing corners
double avg = data[x][y] + //top left
data[x+sideLength][y] +//top right
data[x][y+sideLength] + //lower left
data[x+sideLength][y+sideLength];//lower right
avg /= 4.0;
//center is average plus random offset
data[x+halfSide][y+halfSide] =
//We calculate random value in range of 2h
//and then subtract h so the end value is
//in the range (-h, +h)
avg + (r.nextDouble()*2*h) - h;
}
}
//generate the diamond values
//since the diamonds are staggered we only move x
//by half side
//NOTE: if the data shouldn't wrap then x < DATA_SIZE
//to generate the far edge values
for(int x=0;x<DATA_SIZE-1;x+=halfSide){
//and y is x offset by half a side, but moved by
//the full side length
//NOTE: if the data shouldn't wrap then y < DATA_SIZE
//to generate the far edge values
for(int y=(x+halfSide)%sideLength;y<DATA_SIZE-1;y+=sideLength){
//x, y is center of diamond
//note we must use mod and add DATA_SIZE for subtraction
//so that we can wrap around the array to find the corners
double avg =
data[(x-halfSide+DATA_SIZE)%DATA_SIZE][y] + //left of center
data[(x+halfSide)%DATA_SIZE][y] + //right of center
data[x][(y+halfSide)%DATA_SIZE] + //below center
data[x][(y-halfSide+DATA_SIZE)%DATA_SIZE]; //above center
avg /= 4.0;
//new value = average plus random offset
//We calculate random value in range of 2h
//and then subtract h so the end value is
//in the range (-h, +h)
avg = avg + (r.nextDouble()*2*h) - h;
//update value for center of diamond
data[x][y] = avg;
//wrap values on the edges, remove
//this and adjust loop condition above
//for non-wrapping values.
if(x == 0) data[DATA_SIZE-1][y] = avg;
if(y == 0) data[x][DATA_SIZE-1] = avg;
}
}
}
//print out the data
for(double[] row : data){
for(double d : row){
System.out.printf("%8.3f ", d);
}
System.out.println();
}
以上是 菱形平方算法 的全部内容, 来源链接: utcz.com/qa/409646.html
