5

对于碰撞测试,我需要光栅一条线。bresenham 算法几乎可以按预期工作,但存在如下缺陷:

我需要:

我当前的实现(基于http://en.wikipedia.org/wiki/Bresenham%27s_line_algorithm#Simplification):

public boolean isInsideLine(int x1, int y1, int x2, int y2) {
    final int dx = abs(x2 - x1), dy = abs(y2 - y1);
    final int sx = x1 < x2 ? 1 : -1, sy = y1 < y2 ? 1 : -1;
    int err = dx - dy;

    while (true) {
        if (isInside(x1, y1)) //Lookup in pixel array
            return true;
        if (x1 == x2 && y1 == y2)
            break;
        final int e2 = err << 1;
        if (e2 > -dy) {
            err -= dy;
            x1 += sx;
        }
        if (e2 < dx) {
            err += dx;
            y1 += sy;
        }
    }
    return false;
}

有没有我可以使用的其他线光栅化算法,或者有人知道如何修改 bresenham?

4

2 回答 2

3

也许它会很有用,有我的非整数端点版本。这是GridMap我用于几何形状的空间索引以加速 2D 地图中的碰撞检测的类方法。

int GridMap::insertLine( int lineId, double ax, double ay, double bx, double by ){
    // get index of endpoints in GridMap
    int ix    = getIx( ax ); 
    int iy    = getIy( ay );
    int ixb   = getIx( bx );
    int iyb   = getIy( by );
    // insert endpoints to GridMap
    insert( lineId, ix, iy   ); 
    insert( lineId, ixb, iyb );
    // raster central part of the line
    double dx = fabs( bx - ax );
    double dy = fabs( by - ay );
    int dix = ( ax < bx ) ? 1 : -1;
    int diy = ( ay < by ) ? 1 : -1;
    double x=0, y=0;
    while ( ( ix != ixb ) && ( iy != iyb  ) ) {
        if ( x < y ) {
            x  += dy;
            ix += dix;
        } else {
            y  += dx;
            iy += diy;
        }
        insert( lineId, ix, iy );
    }
};
于 2014-12-31T10:17:34.670 回答
1

感谢 koan,有时您只是缺少要搜索的关键字,绘制 4 连接线的算法似乎可以解决它:

public boolean isInsideLine(int x1, int y1, int x2, int y2) {
    final int dx = abs(x2 - x1), dy = abs(y2 - y1);
    final int sx = x1 < x2 ? 1 : -1, sy = y1 < y2 ? 1 : -1;
    int err = dx - dy;

    while (true) {
        if (isInside(x1, y1)) //Lookup in pixel array
            return true;
        if (x1 == x2 && y1 == y2)
            break;
        final int e2 = err << 1;
        if (e2 > -dy) {
            err -= dy;
            x1 += sx;
        } else if (e2 < dx) { // else if instead of if
            err += dx;
            y1 += sy;
        }
    }
    return false;
}
于 2012-11-24T17:08:26.447 回答