This documentation differs from the official API. Jadeite adds extra features to the API including: variable font sizes, constructions examples, placeholders for classes and methods, and auto-generated “See Also” links. Additionally it is missing some items found in standard Javadoc documentation, including: generics type information, “Deprecated” tags and comments, “See Also” links, along with other minor differences. Please send any questions or feedback to bam@cs.cmu.edu.


java.awt
class GraphicsConfiguration

java.lang.Object extended by java.awt.GraphicsConfiguration

Most common way to construct:

GraphicsDevice graphicsDevice = …;

GraphicsConfiguration gc = graphicsDevice.getDefaultConfiguration();

Based on 16 examples


public abstract class GraphicsConfiguration
extends Object

The GraphicsConfiguration class describes the characteristics of a graphics destination such as a printer or monitor. There can be many GraphicsConfiguration objects associated with a single graphics device, representing different drawing modes or capabilities. The corresponding native structure will vary from platform to platform. For example, on X11 windowing systems, each visual is a different GraphicsConfiguration. On Microsoft Windows, GraphicsConfigurations represent PixelFormats available in the current resolution and color depth.

In a virtual device multi-screen environment in which the desktop area could span multiple physical screen devices, the bounds of the GraphicsConfiguration objects are relative to the virtual coordinate system. When setting the location of a component, use {@link #getBounds() getBounds} to get the bounds of the desired GraphicsConfiguration and offset the location with the coordinates of the GraphicsConfiguration, as the following code sample illustrates:

      Frame f = new Frame(gc);  // where gc is a GraphicsConfiguration
      Rectangle bounds = gc.getBounds();
      f.setLocation(10 + bounds.x, 10 + bounds.y); 

To determine if your environment is a virtual device environment, call getBounds on all of the GraphicsConfiguration objects in your system. If any of the origins of the returned bounds is not (0, 0), your environment is a virtual device environment.

You can also use getBounds to determine the bounds of the virtual device. To do this, first call getBounds on all of the GraphicsConfiguration objects in your system. Then calculate the union of all of the bounds returned from the calls to getBounds. The union is the bounds of the virtual device. The following code sample calculates the bounds of the virtual device.

      Rectangle virtualBounds = new Rectangle();
      GraphicsEnvironment ge = GraphicsEnvironment.
              getLocalGraphicsEnvironment();
      GraphicsDevice[] gs =
              ge.getScreenDevices();
      for (int j = 0; j < gs.length; j++) { 
          GraphicsDevice gd = gs[j];
          GraphicsConfiguration[] gc =
              gd.getConfigurations();
          for (int i=0; i < gc.length; i++) {
              virtualBounds =
                  virtualBounds.union(gc[i].getBounds());
          }
      } 


Constructor Summary
protected

          This is an abstract class that cannot be instantiated directly.
 
Method Summary
abstract BufferedImage
createCompatibleImage(int width, int height)

          Returns a java.awt.image.BufferedImage with a data layout and color model compatible with this GraphicsConfiguration.
 BufferedImage
createCompatibleImage(int width, int height, int transparency)

          Returns a BufferedImage that supports the specified transparency and has a data layout and color model compatible with this GraphicsConfiguration.
 VolatileImage
createCompatibleVolatileImage(int width, int height)

          Returns a java.awt.image.VolatileImage with a data layout and color model compatible with this GraphicsConfiguration.
 VolatileImage
createCompatibleVolatileImage(int width, int height, ImageCapabilities caps)

          Returns a java.awt.image.VolatileImage with a data layout and color model compatible with this GraphicsConfiguration, using the specified image capabilities.
 VolatileImage
createCompatibleVolatileImage(int width, int height, ImageCapabilities caps, int transparency)

          Returns a java.awt.image.VolatileImage with a data layout and color model compatible with this GraphicsConfiguration, using the specified image capabilities and transparency value.
 VolatileImage
createCompatibleVolatileImage(int width, int height, int transparency)

          Returns a java.awt.image.VolatileImage with a data layout and color model compatible with this GraphicsConfiguration.
abstract Rectangle

          Returns the bounds of the GraphicsConfiguration in the device coordinates.
 BufferCapabilities

          Returns the buffering capabilities of this GraphicsConfiguration.
abstract ColorModel

          Returns the java.awt.image.ColorModel associated with this GraphicsConfiguration.
abstract ColorModel
getColorModel(int transparency)

          Returns the ColorModel associated with this GraphicsConfiguration that supports the specified transparency.
abstract AffineTransform

          Returns the default java.awt.geom.AffineTransform for this GraphicsConfiguration.
abstract GraphicsDevice

          Returns the java.awt.GraphicsDevice associated with this GraphicsConfiguration.
 ImageCapabilities

          Returns the image capabilities of this GraphicsConfiguration.
abstract AffineTransform

          Returns a AffineTransform that can be concatenated with the default AffineTransform of a GraphicsConfiguration so that 72 units in user space equals 1 inch in device space.
 
Methods inherited from class java.lang.Object
clone, equals, finalize, getClass, hashCode, notify, notifyAll, toString, wait, wait, wait
 

Constructor Detail

GraphicsConfiguration

protected GraphicsConfiguration()
This is an abstract class that cannot be instantiated directly. Instances must be obtained from a suitable factory or query method.

Method Detail

createCompatibleImage

public abstract BufferedImage createCompatibleImage(int width,
                                                    int height)
Returns a {@link BufferedImage} with a data layout and color model compatible with this GraphicsConfiguration. This method has nothing to do with memory-mapping a device. The returned BufferedImage has a layout and color model that is closest to this native device configuration and can therefore be optimally blitted to this device.

Parameters:
width - the width of the returned BufferedImage
height - the height of the returned BufferedImage
Returns:
a BufferedImage whose data layout and color model is compatible with this GraphicsConfiguration.

createCompatibleImage

public BufferedImage createCompatibleImage(int width,
                                           int height,
                                           int transparency)
Returns a BufferedImage that supports the specified transparency and has a data layout and color model compatible with this GraphicsConfiguration. This method has nothing to do with memory-mapping a device. The returned BufferedImage has a layout and color model that can be optimally blitted to a device with this GraphicsConfiguration.

Parameters:
width - the width of the returned BufferedImage
height - the height of the returned BufferedImage
transparency - the specified transparency mode
Returns:
a BufferedImage whose data layout and color model is compatible with this GraphicsConfiguration and also supports the specified transparency.

createCompatibleVolatileImage

public VolatileImage createCompatibleVolatileImage(int width,
                                                   int height)
Returns a {@link VolatileImage} with a data layout and color model compatible with this GraphicsConfiguration. The returned VolatileImage may have data that is stored optimally for the underlying graphics device and may therefore benefit from platform-specific rendering acceleration.

Parameters:
width - the width of the returned VolatileImage
height - the height of the returned VolatileImage
Returns:
a VolatileImage whose data layout and color model is compatible with this GraphicsConfiguration.

createCompatibleVolatileImage

public VolatileImage createCompatibleVolatileImage(int width,
                                                   int height,
                                                   ImageCapabilities caps)
                                            throws AWTException
Returns a {@link VolatileImage} with a data layout and color model compatible with this GraphicsConfiguration, using the specified image capabilities. If the caps parameter is null, it is effectively ignored and this method will create a VolatileImage without regard to ImageCapabilities constraints. The returned VolatileImage has a layout and color model that is closest to this native device configuration and can therefore be optimally blitted to this device.

Parameters:
width - the width of the returned VolatileImage
height - the height of the returned VolatileImage
caps - the image capabilities
Returns:
a VolatileImage whose data layout and color model is compatible with this GraphicsConfiguration.
Throws:
AWTException - if the supplied image capabilities could not be met by this graphics configuration

createCompatibleVolatileImage

public VolatileImage createCompatibleVolatileImage(int width,
                                                   int height,
                                                   ImageCapabilities caps,
                                                   int transparency)
                                            throws AWTException
Returns a {@link VolatileImage} with a data layout and color model compatible with this GraphicsConfiguration, using the specified image capabilities and transparency value. If the caps parameter is null, it is effectively ignored and this method will create a VolatileImage without regard to ImageCapabilities constraints. The returned VolatileImage has a layout and color model that is closest to this native device configuration and can therefore be optimally blitted to this device.

Parameters:
width - the width of the returned VolatileImage
height - the height of the returned VolatileImage
caps - the image capabilities
transparency - the specified transparency mode
Returns:
a VolatileImage whose data layout and color model is compatible with this GraphicsConfiguration.
Throws:
AWTException - if the supplied image capabilities could not be met by this graphics configuration

createCompatibleVolatileImage

public VolatileImage createCompatibleVolatileImage(int width,
                                                   int height,
                                                   int transparency)
Returns a {@link VolatileImage} with a data layout and color model compatible with this GraphicsConfiguration. The returned VolatileImage may have data that is stored optimally for the underlying graphics device and may therefore benefit from platform-specific rendering acceleration.

Parameters:
width - the width of the returned VolatileImage
height - the height of the returned VolatileImage
transparency - the specified transparency mode
Returns:
a VolatileImage whose data layout and color model is compatible with this GraphicsConfiguration.

getBounds

public abstract Rectangle getBounds()
Returns the bounds of the GraphicsConfiguration in the device coordinates. In a multi-screen environment with a virtual device, the bounds can have negative X or Y origins.

Returns:
the bounds of the area covered by this GraphicsConfiguration.

getBufferCapabilities

public BufferCapabilities getBufferCapabilities()
Returns the buffering capabilities of this GraphicsConfiguration.

Returns:
the buffering capabilities of this graphics configuration object

getColorModel

public abstract ColorModel getColorModel()
Returns the {@link ColorModel} associated with this GraphicsConfiguration.

Returns:
a ColorModel object that is associated with this GraphicsConfiguration.

getColorModel

public abstract ColorModel getColorModel(int transparency)
Returns the ColorModel associated with this GraphicsConfiguration that supports the specified transparency.

Parameters:
transparency - the specified transparency mode
Returns:
a ColorModel object that is associated with this GraphicsConfiguration and supports the specified transparency or null if the transparency is not a valid value.

getDefaultTransform

public abstract AffineTransform getDefaultTransform()
Returns the default {@link AffineTransform} for this GraphicsConfiguration. This AffineTransform is typically the Identity transform for most normal screens. The default AffineTransform maps coordinates onto the device such that 72 user space coordinate units measure approximately 1 inch in device space. The normalizing transform can be used to make this mapping more exact. Coordinates in the coordinate space defined by the default AffineTransform for screen and printer devices have the origin in the upper left-hand corner of the target region of the device, with X coordinates increasing to the right and Y coordinates increasing downwards. For image buffers not associated with a device, such as those not created by createCompatibleImage, this AffineTransform is the Identity transform.

Returns:
the default AffineTransform for this GraphicsConfiguration.

getDevice

public abstract GraphicsDevice getDevice()
Returns the {@link GraphicsDevice} associated with this GraphicsConfiguration.

Returns:
a GraphicsDevice object that is associated with this GraphicsConfiguration.

getImageCapabilities

public ImageCapabilities getImageCapabilities()
Returns the image capabilities of this GraphicsConfiguration.

Returns:
the image capabilities of this graphics configuration object

getNormalizingTransform

public abstract AffineTransform getNormalizingTransform()
Returns a AffineTransform that can be concatenated with the default AffineTransform of a GraphicsConfiguration so that 72 units in user space equals 1 inch in device space.

For a particular {@link Graphics2D}, g, one can reset the transformation to create such a mapping by using the following pseudocode:

      GraphicsConfiguration gc = g.getDeviceConfiguration();

      g.setTransform(gc.getDefaultTransform());
      g.transform(gc.getNormalizingTransform());
 
Note that sometimes this AffineTransform is identity, such as for printers or metafile output, and that this AffineTransform is only as accurate as the information supplied by the underlying system. For image buffers not associated with a device, such as those not created by createCompatibleImage, this AffineTransform is the Identity transform since there is no valid distance measurement.

Returns:
an AffineTransform to concatenate to the default AffineTransform so that 72 units in user space is mapped to 1 inch in device space.


This documentation differs from the official API. Jadeite adds extra features to the API including: variable font sizes, constructions examples, placeholders for classes and methods, and auto-generated “See Also” links. Additionally it is missing some items found in standard Javadoc documentation, including: generics type information, “Deprecated” tags and comments, “See Also” links, along with other minor differences. Please send any questions or feedback to bam@cs.cmu.edu.
This page displays the Jadeite version of the documention, which is derived from the offical documentation that contains this copyright notice:
Copyright 2008 Sun Microsystems, Inc. All rights reserved. Use is subject to license terms. Also see the documentation redistribution policy.
The official Sun™ documentation can be found here at http://java.sun.com/javase/6/docs/api/.