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190 lines
5.5 KiB
190 lines
5.5 KiB
/*
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* Copyright (c) 1997, Oracle and/or its affiliates. All rights reserved.
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* ORACLE PROPRIETARY/CONFIDENTIAL. Use is subject to license terms.
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*
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*
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*
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*
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*
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*
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*
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*
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*
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*
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*
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*
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*
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*
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*
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*
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*
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*
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*
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*
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*/
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package java.awt.geom;
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import java.util.*;
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/**
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* A utility class to iterate over the path segments of an rounded rectangle
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* through the PathIterator interface.
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*
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* @author Jim Graham
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*/
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class RoundRectIterator implements PathIterator {
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double x, y, w, h, aw, ah;
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AffineTransform affine;
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int index;
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RoundRectIterator(RoundRectangle2D rr, AffineTransform at) {
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this.x = rr.getX();
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this.y = rr.getY();
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this.w = rr.getWidth();
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this.h = rr.getHeight();
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this.aw = Math.min(w, Math.abs(rr.getArcWidth()));
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this.ah = Math.min(h, Math.abs(rr.getArcHeight()));
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this.affine = at;
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if (aw < 0 || ah < 0) {
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// Don't draw anything...
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index = ctrlpts.length;
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}
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}
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/**
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* Return the winding rule for determining the insideness of the
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* path.
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* @see #WIND_EVEN_ODD
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* @see #WIND_NON_ZERO
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*/
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public int getWindingRule() {
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return WIND_NON_ZERO;
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}
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/**
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* Tests if there are more points to read.
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* @return true if there are more points to read
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*/
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public boolean isDone() {
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return index >= ctrlpts.length;
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}
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/**
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* Moves the iterator to the next segment of the path forwards
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* along the primary direction of traversal as long as there are
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* more points in that direction.
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*/
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public void next() {
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index++;
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}
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private static final double angle = Math.PI / 4.0;
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private static final double a = 1.0 - Math.cos(angle);
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private static final double b = Math.tan(angle);
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private static final double c = Math.sqrt(1.0 + b * b) - 1 + a;
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private static final double cv = 4.0 / 3.0 * a * b / c;
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private static final double acv = (1.0 - cv) / 2.0;
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// For each array:
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// 4 values for each point {v0, v1, v2, v3}:
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// point = (x + v0 * w + v1 * arcWidth,
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// y + v2 * h + v3 * arcHeight);
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private static double ctrlpts[][] = {
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{ 0.0, 0.0, 0.0, 0.5 },
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{ 0.0, 0.0, 1.0, -0.5 },
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{ 0.0, 0.0, 1.0, -acv,
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0.0, acv, 1.0, 0.0,
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0.0, 0.5, 1.0, 0.0 },
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{ 1.0, -0.5, 1.0, 0.0 },
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{ 1.0, -acv, 1.0, 0.0,
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1.0, 0.0, 1.0, -acv,
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1.0, 0.0, 1.0, -0.5 },
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{ 1.0, 0.0, 0.0, 0.5 },
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{ 1.0, 0.0, 0.0, acv,
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1.0, -acv, 0.0, 0.0,
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1.0, -0.5, 0.0, 0.0 },
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{ 0.0, 0.5, 0.0, 0.0 },
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{ 0.0, acv, 0.0, 0.0,
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0.0, 0.0, 0.0, acv,
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0.0, 0.0, 0.0, 0.5 },
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{},
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};
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private static int types[] = {
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SEG_MOVETO,
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SEG_LINETO, SEG_CUBICTO,
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SEG_LINETO, SEG_CUBICTO,
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SEG_LINETO, SEG_CUBICTO,
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SEG_LINETO, SEG_CUBICTO,
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SEG_CLOSE,
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};
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/**
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* Returns the coordinates and type of the current path segment in
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* the iteration.
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* The return value is the path segment type:
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* SEG_MOVETO, SEG_LINETO, SEG_QUADTO, SEG_CUBICTO, or SEG_CLOSE.
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* A float array of length 6 must be passed in and may be used to
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* store the coordinates of the point(s).
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* Each point is stored as a pair of float x,y coordinates.
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* SEG_MOVETO and SEG_LINETO types will return one point,
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* SEG_QUADTO will return two points,
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* SEG_CUBICTO will return 3 points
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* and SEG_CLOSE will not return any points.
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* @see #SEG_MOVETO
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* @see #SEG_LINETO
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* @see #SEG_QUADTO
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* @see #SEG_CUBICTO
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* @see #SEG_CLOSE
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*/
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public int currentSegment(float[] coords) {
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if (isDone()) {
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throw new NoSuchElementException("roundrect iterator out of bounds");
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}
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double ctrls[] = ctrlpts[index];
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int nc = 0;
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for (int i = 0; i < ctrls.length; i += 4) {
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coords[nc++] = (float) (x + ctrls[i + 0] * w + ctrls[i + 1] * aw);
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coords[nc++] = (float) (y + ctrls[i + 2] * h + ctrls[i + 3] * ah);
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}
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if (affine != null) {
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affine.transform(coords, 0, coords, 0, nc / 2);
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}
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return types[index];
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}
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/**
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* Returns the coordinates and type of the current path segment in
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* the iteration.
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* The return value is the path segment type:
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* SEG_MOVETO, SEG_LINETO, SEG_QUADTO, SEG_CUBICTO, or SEG_CLOSE.
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* A double array of length 6 must be passed in and may be used to
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* store the coordinates of the point(s).
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* Each point is stored as a pair of double x,y coordinates.
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* SEG_MOVETO and SEG_LINETO types will return one point,
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* SEG_QUADTO will return two points,
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* SEG_CUBICTO will return 3 points
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* and SEG_CLOSE will not return any points.
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* @see #SEG_MOVETO
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* @see #SEG_LINETO
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* @see #SEG_QUADTO
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* @see #SEG_CUBICTO
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* @see #SEG_CLOSE
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*/
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public int currentSegment(double[] coords) {
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if (isDone()) {
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throw new NoSuchElementException("roundrect iterator out of bounds");
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}
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double ctrls[] = ctrlpts[index];
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int nc = 0;
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for (int i = 0; i < ctrls.length; i += 4) {
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coords[nc++] = (x + ctrls[i + 0] * w + ctrls[i + 1] * aw);
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coords[nc++] = (y + ctrls[i + 2] * h + ctrls[i + 3] * ah);
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}
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if (affine != null) {
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affine.transform(coords, 0, coords, 0, nc / 2);
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}
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return types[index];
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}
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}
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