mirror of
https://github.com/brl/mutter.git
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454 lines
17 KiB
XML
454 lines
17 KiB
XML
<!DOCTYPE node PUBLIC
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'-//freedesktop//DTD D-BUS Object Introspection 1.0//EN'
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'http://www.freedesktop.org/standards/dbus/1.0/introspect.dtd'>
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<node>
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<!--
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org.gnome.Mutter.DisplayConfig:
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@short_description: display configuration interface
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This interface is used by mutter and gnome-settings-daemon
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to apply multiple monitor configuration.
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-->
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<interface name="org.gnome.Mutter.DisplayConfig">
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<!--
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GetResources:
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@serial: configuration serial
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@crtcs: available CRTCs
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@outputs: available outputs
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@modes: available modes
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@max_screen_width:
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@max_screen_height:
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Retrieves the current layout of the hardware.
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@serial is an unique identifier representing the current state
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of the screen. It must be passed back to ApplyConfiguration()
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and will be increased for every configuration change (so that
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mutter can detect that the new configuration is based on old
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state).
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A CRTC (CRT controller) is a logical monitor, ie a portion
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of the compositor coordinate space. It might correspond
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to multiple monitors, when in clone mode, but not that
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it is possible to implement clone mode also by setting different
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CRTCs to the same coordinates.
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The number of CRTCs represent the maximum number of monitors
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that can be set to expand and it is a HW constraint; if more
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monitors are connected, then necessarily some will clone. This
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is complementary to the concept of the encoder (not exposed in
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the API), which groups outputs that necessarily will show the
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same image (again a HW constraint).
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A CRTC is represented by a DBus structure with the following
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layout:
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* u ID: the ID in the API of this CRTC
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* x winsys_id: the low-level ID of this CRTC (which might
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be a XID, a KMS handle or something entirely
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different)
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* i x, y, width, height: the geometry of this CRTC
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(might be invalid if the CRTC is not in
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use)
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* i current_mode: the current mode of the CRTC, or -1 if this
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CRTC is not used
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Note: the size of the mode will always correspond
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to the width and height of the CRTC
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* u current_transform: the current transform (espressed according
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to the wayland protocol)
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* au transforms: all possible transforms
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* a{sv} properties: other high-level properties that affect this
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CRTC; they are not necessarily reflected in
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the hardware.
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No property is specified in this version of the API.
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Note: all geometry information refers to the untransformed
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display.
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An output represents a physical screen, connected somewhere to
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the computer. Floating connectors are not exposed in the API.
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An output is a DBus struct with the following fields:
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* u ID: the ID in the API
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* x winsys_id: the low-level ID of this output (XID or KMS handle)
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* i current_crtc: the CRTC that is currently driving this output,
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or -1 if the output is disabled
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* au possible_crtcs: all CRTCs that can control this output
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* s name: the name of the connector to which the output is attached
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(like VGA1 or HDMI)
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* au modes: valid modes for this output
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* au clones: valid clones for this output, ie other outputs that
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can be assigned the same CRTC as this one; if you
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want to mirror two outputs that don't have each other
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in the clone list, you must configure two different
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CRTCs for the same geometry
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* a{sv} properties: other high-level properties that affect this
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output; they are not necessarily reflected in
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the hardware.
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Known properties:
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- "vendor" (s): (readonly) the human readable name
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of the manufacturer
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- "product" (s): (readonly) the human readable name
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of the display model
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- "serial" (s): (readonly) the serial number of this
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particular hardware part
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- "display-name" (s): (readonly) a human readable name
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of this output, to be shown in the UI
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- "backlight" (i): (readonly, use the specific interface)
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the backlight value as a percentage
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(-1 if not supported)
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- "primary" (b): whether this output is primary
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or not
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- "presentation" (b): whether this output is
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for presentation only
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Note: properties might be ignored if not consistenly
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applied to all outputs in the same clone group. In
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general, it's expected that presentation or primary
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outputs will not be cloned.
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A mode represents a set of parameters that are applied to
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each output, such as resolution and refresh rate. It is a separate
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object so that it can be referenced by CRTCs and outputs.
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Multiple outputs in the same CRTCs must all have the same mode.
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A mode is exposed as:
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* u ID: the ID in the API
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* x winsys_id: the low-level ID of this mode
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* u width, height: the resolution
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* d frequency: refresh rate
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* u flags: mode flags as defined in xf86drmMode.h and randr.h
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Output and modes are read-only objects (except for output properties),
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they can change only in accordance to HW changes (such as hotplugging
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a monitor), while CRTCs can be changed with ApplyConfiguration().
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XXX: actually, if you insist enough, you can add new modes
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through xrandr command line or the KMS API, overriding what the
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kernel driver and the EDID say.
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Usually, it only matters with old cards with broken drivers, or
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old monitors with broken EDIDs, but it happens more often with
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projectors (if for example the kernel driver doesn't add the
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640x480 - 800x600 - 1024x768 default modes). Probably something
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that we need to handle in mutter anyway.
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-->
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<method name="GetResources">
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<arg name="serial" direction="out" type="u" />
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<arg name="crtcs" direction="out" type="a(uxiiiiiuaua{sv})" />
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<arg name="outputs" direction="out" type="a(uxiausauaua{sv})" />
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<arg name="modes" direction="out" type="a(uxuudu)" />
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<arg name="max_screen_width" direction="out" type="i" />
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<arg name="max_screen_height" direction="out" type="i" />
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</method>
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<!--
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ApplyConfiguration:
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@serial: configuration serial
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@persistent: whether this configuration should be saved on disk
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@crtcs: new data for CRTCs
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@outputs: new data for outputs
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Applies the requested configuration changes.
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@serial must match the serial from the last GetResources() call,
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or org.freedesktop.DBus.AccessDenied will be generated.
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If @persistent is true, mutter will attempt to replicate this
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configuration the next time this HW layout appears.
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@crtcs represents the new logical configuration, as a list
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of structures containing:
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- u ID: the API ID from the corresponding GetResources() call
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- i new_mode: the API ID of the new mode to configure the CRTC
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with, or -1 if the CRTC should be disabled
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- i x, y: the new coordinates of the top left corner
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the geometry will be completed with the size information
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from @new_mode
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- u transform: the desired transform
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- au outputs: the API ID of outputs that should be assigned to
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this CRTC
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- a{sv} properties: properties whose value should be changed
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Note: CRTCs not referenced in the array will be disabled.
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@outputs represent the output property changes as:
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- u ID: the API ID of the output to change
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- a{sv} properties: properties whose value should be changed
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Note: both for CRTCs and outputs, properties not included in
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the dictionary will not be changed.
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Note: unrecognized properties will have no effect, but if the
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configuration change succeeds the property will be reported
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by the next GetResources() call, and if @persistent is true,
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it will also be saved to disk.
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If the configuration is invalid according to the previous
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GetResources() call, for example because a CRTC references
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an output it cannot drive, or not all outputs support the
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chosen mode, the error org.freedesktop.DBus.InvalidArgs will
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be generated.
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If the configuration cannot be applied for any other reason
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(eg. the screen size would exceed texture limits), the error
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org.freedesktop.DBus.Error.LimitsExceeded will be generated.
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-->
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<method name="ApplyConfiguration">
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<arg name="serial" direction="in" type="u" />
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<arg name="persistent" direction="in" type="b" />
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<arg name="crtcs" direction="in" type="a(uiiiuaua{sv})" />
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<arg name="outputs" direction="in" type="a(ua{sv})" />
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</method>
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<!--
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ChangeBacklight:
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@serial: configuration serial
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@output: the API id of the output
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@value: the new backlight value
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Changes the backlight of @output to @value, which is
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expressed as a percentage and rounded to the HW limits.
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Returns the new value after rounding.
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-->
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<method name="ChangeBacklight">
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<arg name="serial" direction="in" type="u" />
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<arg name="output" direction="in" type="u" />
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<arg name="value" direction="in" type="i" />
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<arg name="new_value" direction="out" type="i" />
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</method>
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<!--
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GetCrtcGamma:
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@serial: configuration serial
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@crtc: API id of the crtc
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@red: red gamma ramp
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@green: green gamma ramp
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@blue: blue gamma ramp
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Requests the current gamma ramps of @crtc.
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-->
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<method name="GetCrtcGamma">
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<arg name="serial" direction="in" type="u" />
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<arg name="crtc" direction="in" type="u" />
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<arg name="red" direction="out" type="aq" />
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<arg name="green" direction="out" type="aq" />
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<arg name="blue" direction="out" type="aq" />
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</method>
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<!--
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SetCrtcGamma:
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@serial: configuration serial
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@crtc: API id of the crtc
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@red: red gamma ramp
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@green: green gamma ramp
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@blue: blue gamma ramp
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Changes the gamma ramps of @crtc.
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-->
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<method name="SetCrtcGamma">
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<arg name="serial" direction="in" type="u" />
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<arg name="crtc" direction="in" type="u" />
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<arg name="red" direction="in" type="aq" />
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<arg name="green" direction="in" type="aq" />
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<arg name="blue" direction="in" type="aq" />
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</method>
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<!--
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PowerSaveMode:
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Contains the current power saving mode for the screen, and
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allows changing it.
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Possible values:
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- 0: on
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- 1: standby
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- 2: suspend
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- 3: off
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- -1: unknown (unsupported)
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A client should not attempt to change the powersave mode
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from -1 (unknown) to any other value, and viceversa.
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Note that the actual effects of the different values
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depend on the hardware and the kernel driver in use, and
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it's perfectly possible that all values different than on
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have the same effect.
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Also, setting the PowerSaveMode to 3 (off) may or may
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not have the same effect as disabling all outputs by
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setting no CRTC on them with ApplyConfiguration(), and
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may or may not cause a configuration change.
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Also note that this property might become out of date
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if changed through different means (for example using the
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XRandR interface directly).
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-->
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<property name="PowerSaveMode" type="i" access="readwrite" />
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<!--
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MonitorsChanged:
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The signal is emitted every time the screen configuration
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changes.
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The client should then call GetResources() to read the new layout.
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-->
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<signal name="MonitorsChanged" />
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<!--
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GetCurrentState:
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@serial: configuration serial
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@monitors: available monitors
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@logical_monitors: current logical monitor configuration
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@properties: display configuration properties
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@monitors represent connected physical monitors
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* s connector: connector name (e.g. HDMI-1, DP-1, etc)
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* s vendor: vendor name
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* s product: product name
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* s serial: product serial
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* a(siiddada{sv}) modes: available modes
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* s id: mode ID
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* i width: width in physical pixels
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* i height: height in physical pixels
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* d refresh rate: refresh rate
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* d preferred scale: scale preferred as per calculations
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* ad supported scales: scales supported by this mode
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* a{sv} properties: optional properties, including:
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- "is-current" (b): the mode is currently active mode
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- "is-preferred" (b): the mode is the preferred mode
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- "is-interlaced" (b): the mode is an interlaced mode
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* a{sv} properties: optional properties, including:
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- "width-mm" (i): physical width of monitor in millimeters
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- "height-mm" (i): physical height of monitor in millimeters
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- "is-underscanning" (b): whether underscanning is enabled
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(absence of this means underscanning
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not being supported)
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- "max-screen-size" (ii): the maximum size a screen may have
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(absence of this means unlimited screen
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size)
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- "is-builtin" (b): whether the monitor is built in, e.g. a
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laptop panel (absence of this means it is
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not built in)
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- "display-name" (s): a human readable display name of the monitor
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Possible mode flags:
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1 : preferred mode
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2 : current mode
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@logical_monitors represent current logical monitor configuration
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* i x: x position
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* i y: y position
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* d scale: scale
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* u transform: transform (see below)
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* b primary: true if this is the primary logical monitor
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* a(sss) monitors: monitors displaying this logical monitor
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* connector: name of the connector (e.g. DP-1, eDP-1 etc)
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* vendor: vendor name
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* product: product name
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* serial: product serial
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* a{sv} properties: possibly other properties
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Posisble transform values:
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0: normal
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1: 90°
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2: 180°
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3: 270°
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4: flipped
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5: 90° flipped
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6: 180° flipped
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7: 270° flipped
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@layout_mode current layout mode represents the way logical monitors
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are layed out on the screen. Possible modes include:
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1 : physical
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2 : logical
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With physical layout mode, each logical monitor has the same dimensions
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as the monitor modes of the associated monitors assigned to it, no
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matter what scale is in use.
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With logical mode, the dimension of a logical monitor is the dimension
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of the monitor mode, divided by the logical monitor scale.
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Possible @properties are:
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* "supports-mirroring" (b): FALSE if mirroring not supported; TRUE or not
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present if mirroring is supported.
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* "layout-mode" (u): Represents in what way logical monitors are laid
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out on the screen. The layout mode can be either
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of the ones listed below. Absence of this property
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means the layout mode cannot be changed, and that
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"logical" mode is assumed to be used.
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* 1 : logical - the dimension of a logical monitor is derived from
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the monitor modes associated with it, then scaled
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using the logical monitor scale.
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* 2 : physical - the dimension of a logical monitor is derived from
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the monitor modes associated with it.
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* "supports-changing-layout-mode" (b): True if the layout mode can be
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changed. Absence of this means the
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layout mode cannot be changed.
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* "global-scale-required" (b): True if all the logical monitors must
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always use the same scale. Absence of
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this means logical monitor scales can
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differ.
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* "legacy-ui-scaling-factor" (i): The legacy scaling factor traditionally
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used to scale X11 clients (commonly
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communicated via the
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Gdk/WindowScalingFactor XSetting entry).
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-->
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<method name="GetCurrentState">
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<arg name="serial" direction="out" type="u" />
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<arg name="monitors" direction="out" type="a((ssss)a(siiddada{sv})a{sv})" />
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<arg name="logical_monitors" direction="out" type="a(iiduba(ssss)a{sv})" />
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<arg name="properties" direction="out" type="a{sv}" />
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</method>
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<!--
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ApplyMonitorsConfig:
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@serial: configuration serial
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@method: configuration method
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@logical_monitors: monitors configuration
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@properties: properties
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@method represents the way the configuration should be handled.
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Possible methods:
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0: verify
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1: temporary
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2: persistent
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@logical_monitors consists of a list of logical monitor configurations.
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Each logical monitor configuration consists of:
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* i: layout x position
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* i: layout y position
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* d: scale
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* u: transform (see GetCurrentState)
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* b primary: true if this is the primary logical monitor
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* a(ssa{sv}): a list of monitors, each consisting of:
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* s: connector
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* s: monitor mode ID
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* a{sv}: monitor properties, including:
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- "enable_underscanning" (b): enable monitor underscanning;
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may only be set when underscanning
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is supported (see GetCurrentState).
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@properties may effect the global monitor configuration state. Possible
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properties are:
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* "layout-mode" (u): layout mode the passed configuration is in; may
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only be set when changing the layout mode is
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supported (see GetCurrentState).
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-->
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<method name="ApplyMonitorsConfig">
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<arg name="serial" direction="in" type="u" />
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<arg name="method" direction="in" type="u" />
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<arg name="logical_monitors" direction="in" type="a(iiduba(ssa{sv}))" />
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<arg name="properties" direction="in" type="a{sv}" />
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</method>
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</interface>
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</node>
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