experimental/Intersection/LineCubicIntersection.cpp - platform/external/skia - Git at Google

 /*
  * Copyright 2012 Google Inc.
  *
  * Use of this source code is governed by a BSD-style license that can be
  * found in the LICENSE file.
  */
 #include "CurveIntersection.h"
 #include "CubicUtilities.h"
 #include "Intersections.h"
 #include "LineUtilities.h"

 /*
 Find the interection of a line and cubic by solving for valid t values.

 Analogous to line-quadratic intersection, solve line-cubic intersection by
 representing the cubic as:
   x = a(1-t)^3 + 2b(1-t)^2t + c(1-t)t^2 + dt^3
   y = e(1-t)^3 + 2f(1-t)^2t + g(1-t)t^2 + ht^3
 and the line as:
   y = i*x + j  (if the line is more horizontal)
 or:
   x = i*y + j  (if the line is more vertical)

 Then using Mathematica, solve for the values of t where the cubic intersects the
 line:

   (in) Resultant[
         a*(1 - t)^3 + 3*b*(1 - t)^2*t + 3*c*(1 - t)*t^2 + d*t^3 - x,
         e*(1 - t)^3 + 3*f*(1 - t)^2*t + 3*g*(1 - t)*t^2 + h*t^3 - i*x - j, x]
   (out) -e     +   j     +
        3 e t   - 3 f t   -
        3 e t^2 + 6 f t^2 - 3 g t^2 +
          e t^3 - 3 f t^3 + 3 g t^3 - h t^3 +
      i ( a     -
        3 a t + 3 b t +
        3 a t^2 - 6 b t^2 + 3 c t^2 -
          a t^3 + 3 b t^3 - 3 c t^3 + d t^3 )

 if i goes to infinity, we can rewrite the line in terms of x. Mathematica:

   (in) Resultant[
         a*(1 - t)^3 + 3*b*(1 - t)^2*t + 3*c*(1 - t)*t^2 + d*t^3 - i*y - j,
         e*(1 - t)^3 + 3*f*(1 - t)^2*t + 3*g*(1 - t)*t^2 + h*t^3 - y,       y]
   (out)  a     -   j     -
        3 a t   + 3 b t   +
        3 a t^2 - 6 b t^2 + 3 c t^2 -
          a t^3 + 3 b t^3 - 3 c t^3 + d t^3 -
      i ( e     -
        3 e t   + 3 f t   +
        3 e t^2 - 6 f t^2 + 3 g t^2 -
          e t^3 + 3 f t^3 - 3 g t^3 + h t^3 )

 Solving this with Mathematica produces an expression with hundreds of terms;
 instead, use Numeric Solutions recipe to solve the cubic.

 The near-horizontal case, in terms of:  Ax^3 + Bx^2 + Cx + D == 0
     A =   (-(-e + 3*f - 3*g + h) + i*(-a + 3*b - 3*c + d)     )
     B = 3*(-( e - 2*f +   g    ) + i*( a - 2*b +   c    )     )
     C = 3*(-(-e +   f          ) + i*(-a +   b          )     )
     D =   (-( e                ) + i*( a                ) + j )

 The near-vertical case, in terms of:  Ax^3 + Bx^2 + Cx + D == 0
     A =   ( (-a + 3*b - 3*c + d) - i*(-e + 3*f - 3*g + h)     )
     B = 3*( ( a - 2*b +   c    ) - i*( e - 2*f +   g    )     )
     C = 3*( (-a +   b          ) - i*(-e +   f          )     )
     D =   ( ( a                ) - i*( e                ) - j )

 For horizontal lines:
 (in) Resultant[
       a*(1 - t)^3 + 3*b*(1 - t)^2*t + 3*c*(1 - t)*t^2 + d*t^3 - j,
       e*(1 - t)^3 + 3*f*(1 - t)^2*t + 3*g*(1 - t)*t^2 + h*t^3 - y, y]
 (out)  e     -   j     -
      3 e t   + 3 f t   +
      3 e t^2 - 6 f t^2 + 3 g t^2 -
        e t^3 + 3 f t^3 - 3 g t^3 + h t^3
 So the cubic coefficients are:

  */

 class LineCubicIntersections : public Intersections {
 public:

 LineCubicIntersections(const Cubic& c, const _Line& l, double r[3])
     : cubic(c)
     , line(l)
     , range(r) {
 }

 int intersect() {
     double slope;
     double axisIntercept;
     moreHorizontal = implicitLine(line, slope, axisIntercept);
     double A, B, C, D;
     coefficients(&cubic[0].x, A, B, C, D);
     double E, F, G, H;
     coefficients(&cubic[0].y, E, F, G, H);
     if (moreHorizontal) {
         A = A * slope - E;
         B = B * slope - F;
         C = C * slope - G;
         D = D * slope - H + axisIntercept;
     } else {
         A = A - E * slope;
         B = B - F * slope;
         C = C - G * slope;
         D = D - H * slope - axisIntercept;
     }
     return cubicRoots(A, B, C, D, range);
 }

 int horizontalIntersect(double axisIntercept) {
     double A, B, C, D;
     coefficients(&cubic[0].y, A, B, C, D);
     D -= axisIntercept;
     return cubicRoots(A, B, C, D, range);
 }

 int verticalIntersect(double axisIntercept) {
     double A, B, C, D;
     coefficients(&cubic[0].x, A, B, C, D);
     D -= axisIntercept;
     return cubicRoots(A, B, C, D, range);
 }

 double findLineT(double t) {
     const double* cPtr;
     const double* lPtr;
     if (moreHorizontal) {
         cPtr = &cubic[0].x;
         lPtr = &line[0].x;
     } else {
         cPtr = &cubic[0].y;
         lPtr = &line[0].y;
     }
     // FIXME: should fold the following in with TestUtilities.cpp xy_at_t()
     double s = 1 - t;
     double cubicVal = cPtr[0] * s * s * s + 3 * cPtr[2] * s * s * t
                 + 3 * cPtr[4] * s * t * t + cPtr[6] * t * t * t;
     return (cubicVal - lPtr[0]) / (lPtr[2] - lPtr[0]);
 }

 private:

 const Cubic& cubic;
 const _Line& line;
 double* range;
 bool moreHorizontal;

 };

 int horizontalIntersect(const Cubic& cubic, double y, double tRange[3]) {
     LineCubicIntersections c(cubic, *((_Line*) 0), tRange);
     return c.horizontalIntersect(y);
 }

 int horizontalIntersect(const Cubic& cubic, double left, double right, double y,
         double tRange[3]) {
     LineCubicIntersections c(cubic, *((_Line*) 0), tRange);
     int result = c.horizontalIntersect(y);
     for (int index = 0; index < result; ) {
         double x, y;
         xy_at_t(cubic, tRange[index], x, y);
         if (x < left || x > right) {
             if (--result > index) {
                 tRange[index] = tRange[result];
             }
             continue;
         }
         ++index;
     }
     return result;
 }

 int horizontalIntersect(const Cubic& cubic, double left, double right, double y,
         bool flipped, Intersections& intersections) {
     LineCubicIntersections c(cubic, *((_Line*) 0), intersections.fT[0]);
     int result = c.horizontalIntersect(y);
     for (int index = 0; index < result; ) {
         double x, y;
         xy_at_t(cubic, intersections.fT[0][index], x, y);
         if (x < left || x > right) {
             if (--result > index) {
                 intersections.fT[0][index] = intersections.fT[0][result];
             }
             continue;
         }
         intersections.fT[1][index] = (x - left) / (right - left);
         ++index;
     }
     if (flipped) {
         // OPTIMIZATION: instead of swapping, pass original line, use [1].x - [0].x
         for (int index = 0; index < result; ++index) {
             intersections.fT[1][index] = 1 - intersections.fT[1][index];
         }
     }
     return result;
 }

 int verticalIntersect(const Cubic& cubic, double top, double bottom, double x,
         bool flipped, Intersections& intersections) {
     LineCubicIntersections c(cubic, *((_Line*) 0), intersections.fT[0]);
     int result = c.verticalIntersect(x);
     for (int index = 0; index < result; ) {
         double x, y;
         xy_at_t(cubic, intersections.fT[0][index], x, y);
         if (y < top || y > bottom) {
             if (--result > index) {
                 intersections.fT[1][index] = intersections.fT[0][result];
             }
             continue;
         }
         intersections.fT[0][index] = (y - top) / (bottom - top);
         ++index;
     }
     if (flipped) {
         // OPTIMIZATION: instead of swapping, pass original line, use [1].x - [0].x
         for (int index = 0; index < result; ++index) {
             intersections.fT[1][index] = 1 - intersections.fT[1][index];
         }
     }
     return result;
 }

 int intersect(const Cubic& cubic, const _Line& line, double cRange[3], double lRange[3]) {
     LineCubicIntersections c(cubic, line, cRange);
     int roots;
     if (approximately_equal(line[0].y, line[1].y)) {
         roots = c.horizontalIntersect(line[0].y);
     } else {
         roots = c.intersect();
     }
     for (int index = 0; index < roots; ++index) {
         lRange[index] = c.findLineT(cRange[index]);
     }
     return roots;
 }
	/*
	* Copyright 2012 Google Inc.
	*
	* Use of this source code is governed by a BSD-style license that can be
	* found in the LICENSE file.
	*/
	#include "CurveIntersection.h"
	#include "CubicUtilities.h"
	#include "Intersections.h"
	#include "LineUtilities.h"

	/*
	Find the interection of a line and cubic by solving for valid t values.

	Analogous to line-quadratic intersection, solve line-cubic intersection by
	representing the cubic as:
	x = a(1-t)^3 + 2b(1-t)^2t + c(1-t)t^2 + dt^3
	y = e(1-t)^3 + 2f(1-t)^2t + g(1-t)t^2 + ht^3
	and the line as:
	y = i*x + j (if the line is more horizontal)
	or:
	x = i*y + j (if the line is more vertical)

	Then using Mathematica, solve for the values of t where the cubic intersects the
	line:

	(in) Resultant[
	a(1 - t)^3 + 3b(1 - t)^2t + 3c(1 - t)t^2 + dt^3 - x,
	e(1 - t)^3 + 3f(1 - t)^2t + 3g(1 - t)t^2 + ht^3 - i*x - j, x]
	(out) -e + j +
	3 e t - 3 f t -
	3 e t^2 + 6 f t^2 - 3 g t^2 +
	e t^3 - 3 f t^3 + 3 g t^3 - h t^3 +
	i ( a -
	3 a t + 3 b t +
	3 a t^2 - 6 b t^2 + 3 c t^2 -
	a t^3 + 3 b t^3 - 3 c t^3 + d t^3 )

	if i goes to infinity, we can rewrite the line in terms of x. Mathematica:

	(in) Resultant[
	a(1 - t)^3 + 3b(1 - t)^2t + 3c(1 - t)t^2 + dt^3 - i*y - j,
	e(1 - t)^3 + 3f(1 - t)^2t + 3g(1 - t)t^2 + ht^3 - y, y]
	(out) a - j -
	3 a t + 3 b t +
	3 a t^2 - 6 b t^2 + 3 c t^2 -
	a t^3 + 3 b t^3 - 3 c t^3 + d t^3 -
	i ( e -
	3 e t + 3 f t +
	3 e t^2 - 6 f t^2 + 3 g t^2 -
	e t^3 + 3 f t^3 - 3 g t^3 + h t^3 )

	Solving this with Mathematica produces an expression with hundreds of terms;
	instead, use Numeric Solutions recipe to solve the cubic.

	The near-horizontal case, in terms of: Ax^3 + Bx^2 + Cx + D == 0
	A = (-(-e + 3f - 3g + h) + i(-a + 3b - 3*c + d) )
	B = 3(-( e - 2f + g ) + i( a - 2b + c ) )
	C = 3(-(-e + f ) + i(-a + b ) )
	D = (-( e ) + i*( a ) + j )

	The near-vertical case, in terms of: Ax^3 + Bx^2 + Cx + D == 0
	A = ( (-a + 3b - 3c + d) - i(-e + 3f - 3*g + h) )
	B = 3( ( a - 2b + c ) - i( e - 2f + g ) )
	C = 3( (-a + b ) - i(-e + f ) )
	D = ( ( a ) - i*( e ) - j )

	For horizontal lines:
	(in) Resultant[
	a(1 - t)^3 + 3b(1 - t)^2t + 3c(1 - t)t^2 + dt^3 - j,
	e(1 - t)^3 + 3f(1 - t)^2t + 3g(1 - t)t^2 + ht^3 - y, y]
	(out) e - j -
	3 e t + 3 f t +
	3 e t^2 - 6 f t^2 + 3 g t^2 -
	e t^3 + 3 f t^3 - 3 g t^3 + h t^3
	So the cubic coefficients are:

	*/

	class LineCubicIntersections : public Intersections {
	public:

	LineCubicIntersections(const Cubic& c, const _Line& l, double r[3])
	: cubic(c)
	, line(l)
	, range(r) {
	}

	int intersect() {
	double slope;
	double axisIntercept;
	moreHorizontal = implicitLine(line, slope, axisIntercept);
	double A, B, C, D;
	coefficients(&cubic[0].x, A, B, C, D);
	double E, F, G, H;
	coefficients(&cubic[0].y, E, F, G, H);
	if (moreHorizontal) {
	A = A * slope - E;
	B = B * slope - F;
	C = C * slope - G;
	D = D * slope - H + axisIntercept;
	} else {
	A = A - E * slope;
	B = B - F * slope;
	C = C - G * slope;
	D = D - H * slope - axisIntercept;
	}
	return cubicRoots(A, B, C, D, range);
	}

	int horizontalIntersect(double axisIntercept) {
	double A, B, C, D;
	coefficients(&cubic[0].y, A, B, C, D);
	D -= axisIntercept;
	return cubicRoots(A, B, C, D, range);
	}

	int verticalIntersect(double axisIntercept) {
	double A, B, C, D;
	coefficients(&cubic[0].x, A, B, C, D);
	D -= axisIntercept;
	return cubicRoots(A, B, C, D, range);
	}

	double findLineT(double t) {
	const double* cPtr;
	const double* lPtr;
	if (moreHorizontal) {
	cPtr = &cubic[0].x;
	lPtr = &line[0].x;
	} else {
	cPtr = &cubic[0].y;
	lPtr = &line[0].y;
	}
	// FIXME: should fold the following in with TestUtilities.cpp xy_at_t()
	double s = 1 - t;
	double cubicVal = cPtr[0] * s * s * s + 3 * cPtr[2] * s * s * t
	+ 3 * cPtr[4] * s * t * t + cPtr[6] * t * t * t;
	return (cubicVal - lPtr[0]) / (lPtr[2] - lPtr[0]);
	}

	private:

	const Cubic& cubic;
	const _Line& line;
	double* range;
	bool moreHorizontal;

	};

	int horizontalIntersect(const Cubic& cubic, double y, double tRange[3]) {
	LineCubicIntersections c(cubic, ((_Line) 0), tRange);
	return c.horizontalIntersect(y);
	}

	int horizontalIntersect(const Cubic& cubic, double left, double right, double y,
	double tRange[3]) {
	LineCubicIntersections c(cubic, ((_Line) 0), tRange);
	int result = c.horizontalIntersect(y);
	for (int index = 0; index < result; ) {
	double x, y;
	xy_at_t(cubic, tRange[index], x, y);
	if (x < left \|\| x > right) {
	if (--result > index) {
	tRange[index] = tRange[result];
	}
	continue;
	}
	++index;
	}
	return result;
	}

	int horizontalIntersect(const Cubic& cubic, double left, double right, double y,
	bool flipped, Intersections& intersections) {
	LineCubicIntersections c(cubic, ((_Line) 0), intersections.fT[0]);
	int result = c.horizontalIntersect(y);
	for (int index = 0; index < result; ) {
	double x, y;
	xy_at_t(cubic, intersections.fT[0][index], x, y);
	if (x < left \|\| x > right) {
	if (--result > index) {
	intersections.fT[0][index] = intersections.fT[0][result];
	}
	continue;
	}
	intersections.fT[1][index] = (x - left) / (right - left);
	++index;
	}
	if (flipped) {
	// OPTIMIZATION: instead of swapping, pass original line, use [1].x - [0].x
	for (int index = 0; index < result; ++index) {
	intersections.fT[1][index] = 1 - intersections.fT[1][index];
	}
	}
	return result;
	}

	int verticalIntersect(const Cubic& cubic, double top, double bottom, double x,
	bool flipped, Intersections& intersections) {
	LineCubicIntersections c(cubic, ((_Line) 0), intersections.fT[0]);
	int result = c.verticalIntersect(x);
	for (int index = 0; index < result; ) {
	double x, y;
	xy_at_t(cubic, intersections.fT[0][index], x, y);
	if (y < top \|\| y > bottom) {
	if (--result > index) {
	intersections.fT[1][index] = intersections.fT[0][result];
	}
	continue;
	}
	intersections.fT[0][index] = (y - top) / (bottom - top);
	++index;
	}
	if (flipped) {
	// OPTIMIZATION: instead of swapping, pass original line, use [1].x - [0].x
	for (int index = 0; index < result; ++index) {
	intersections.fT[1][index] = 1 - intersections.fT[1][index];
	}
	}
	return result;
	}

	int intersect(const Cubic& cubic, const _Line& line, double cRange[3], double lRange[3]) {
	LineCubicIntersections c(cubic, line, cRange);
	int roots;
	if (approximately_equal(line[0].y, line[1].y)) {
	roots = c.horizontalIntersect(line[0].y);
	} else {
	roots = c.intersect();
	}
	for (int index = 0; index < roots; ++index) {
	lRange[index] = c.findLineT(cRange[index]);
	}
	return roots;
	}