我正在寻找一种算法,可以让我从多边形中创建圆角.
我有一个代表多边形的点数组(红色轮廓),在输出时,我想要一个代表圆角多边形的点数组(黑色轮廓).
我也想有一种方法来控制每个角落的半径.
我试着使用贝塞尔曲线和细分,但这不是我想要的.Bézier曲线和细分正在平滑多边形.
我只想把角落弄圆.
有人知道做这件事的好算法吗?
我正在使用C#但是代码必须独立于任何其他代码.NET图书馆.
推荐答案
有些几何体带有油漆:
0. You have a corner:
1. You know the coordinates of corner points, let it be P1, P2 and P:
2. Now you can get vectors from points and angle between vectors:
angle = atan(PY - P1Y, PX - P1X) - atan(PY - P2Y, PX - P2X)
3. Get the length of segment between angular point and the points of intersection with the circle.
segment = PC1 = PC2 = radius / |tan(angle / 2)|
4. Here you need to check the length of segment and the minimal length from PP1 and PP2:
Length of PP1:
PP1 = sqrt((PX - P1X)2 + (PY - P1Y)2)
PP的长度2:
PP2 = sqrt((PX - P2X)2 + (PY - P2Y)2)
If segment > PP1 or segment > PP2 then you need to decrease the radius:
min = Min(PP1, PP2) (for polygon is better to divide this value by 2)
segment > min ?
segment = min
radius = segment * |tan(angle / 2)|
PO = sqrt(radius2 + segment2)
6. Get the C1X and C1Y by the proportion between the coordinates of the vector, length of vector and the length of the segment:
比例:
(PX - C1X) / (PX - P1X) = PC1 / PP1
所以:
C1X = PX - (PX - P1X) * PC1 / PP1
C1Y<
C1Y = PY - (PY - P1Y) * PC1 / PP1
C2X = PX - (PX - P2X) * PC2 / PP2 C2Y = PY - (PY - P2Y) * PC2 / PP2
8. Now you can use the addition of vectors PC1 and PC2 to find the centre of circle by the same way by proportion:
(PX - OX) / (PX - CX) = PO / PC (PY - OY) / (PY - CY) = PO / PC
在这里:
CX = C1X + C2X - PX CY = C1Y + C2Y - PY PC = sqrt((PX - CX)2 + (PY - CY)2)
让我们:
dx = PX - CX = PX * 2 - C1X - C2X dy = PY - CY = PY * 2 - C1Y - C2Y
所以:
PC = sqrt(dx2 + dy2) OX = PX - dx * PO / PC OY = PY - dy * PO / PC
9. Here you can draw an arc. For this you need to get start angle and end angle of arc:
Found it here:
startAngle = atan((C1Y - OY) / (C1X - OX)) endAngle = atan((C2Y - OY) / (C2X - OX))
10. At last you need to get a sweep angle and make some checks for it:
sweepAngle = endAngle - startAngle
如果扫掠Angular <;0然后交换startAngle和endAngle,并反转sweepAngle:
sweepAngle < 0 ?
sweepAngle = - sweepAngle
startAngle = endAngle
Check if sweepAngle > 180 degrees:
sweepAngle > 180 ?
sweepAngle = 180 - sweepAngle
11. And now you can draw a rounded corner:
具有c#的某些几何体:
private void DrawRoundedCorner(Graphics graphics, PointF angularPoint,
PointF p1, PointF p2, float radius)
{
//Vector 1
double dx1 = angularPoint.X - p1.X;
double dy1 = angularPoint.Y - p1.Y;
//Vector 2
double dx2 = angularPoint.X - p2.X;
double dy2 = angularPoint.Y - p2.Y;
//Angle between vector 1 and vector 2 divided by 2
double angle = (Math.Atan2(dy1, dx1) - Math.Atan2(dy2, dx2)) / 2;
// The length of segment between angular point and the
// points of intersection with the circle of a given radius
double tan = Math.Abs(Math.Tan(angle));
double segment = radius / tan;
//Check the segment
double length1 = GetLength(dx1, dy1);
double length2 = GetLength(dx2, dy2);
double length = Math.Min(length1, length2);
if (segment > length)
{
segment = length;
radius = (float)(length * tan);
}
// Points of intersection are calculated by the proportion between
// the coordinates of the vector, length of vector and the length of the segment.
var p1Cross = GetProportionPoint(angularPoint, segment, length1, dx1, dy1);
var p2Cross = GetProportionPoint(angularPoint, segment, length2, dx2, dy2);
// Calculation of the coordinates of the circle
// center by the addition of angular vectors.
double dx = angularPoint.X * 2 - p1Cross.X - p2Cross.X;
double dy = angularPoint.Y * 2 - p1Cross.Y - p2Cross.Y;
double L = GetLength(dx, dy);
double d = GetLength(segment, radius);
var circlePoint = GetProportionPoint(angularPoint, d, L, dx, dy);
//StartAngle and EndAngle of arc
var startAngle = Math.Atan2(p1Cross.Y - circlePoint.Y, p1Cross.X - circlePoint.X);
var endAngle = Math.Atan2(p2Cross.Y - circlePoint.Y, p2Cross.X - circlePoint.X);
//Sweep angle
var sweepAngle = endAngle - startAngle;
//Some additional checks
if (sweepAngle < 0)
{
startAngle = endAngle;
sweepAngle = -sweepAngle;
}
if (sweepAngle > Math.PI)
sweepAngle = Math.PI - sweepAngle;
//Draw result using graphics
var pen = new Pen(Color.Black);
graphics.Clear(Color.White);
graphics.SmoothingMode = SmoothingMode.AntiAlias;
graphics.DrawLine(pen, p1, p1Cross);
graphics.DrawLine(pen, p2, p2Cross);
var left = circlePoint.X - radius;
var top = circlePoint.Y - radius;
var diameter = 2 * radius;
var degreeFactor = 180 / Math.PI;
graphics.DrawArc(pen, left, top, diameter, diameter,
(float)(startAngle * degreeFactor),
(float)(sweepAngle * degreeFactor));
}
private double GetLength(double dx, double dy)
{
return Math.Sqrt(dx * dx + dy * dy);
}
private PointF GetProportionPoint(PointF point, double segment,
double length, double dx, double dy)
{
double factor = segment / length;
return new PointF((float)(point.X - dx * factor),
(float)(point.Y - dy * factor));
}
要获得弧点,可以使用以下命令:
//One point for each degree. But in some cases it will be necessary
// to use more points. Just change a degreeFactor.
int pointsCount = (int)Math.Abs(sweepAngle * degreeFactor);
int sign = Math.Sign(sweepAngle);
PointF[] points = new PointF[pointsCount];
for (int i = 0; i < pointsCount; ++i)
{
var pointX =
(float)(circlePoint.X
+ Math.Cos(startAngle + sign * (double)i / degreeFactor)
* radius);
var pointY =
(float)(circlePoint.Y
+ Math.Sin(startAngle + sign * (double)i / degreeFactor)
* radius);
points[i] = new PointF(pointX, pointY);
}
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