#include "ui/display/manager/display_configurator.h"
#include <cstddef>
#include <utility>
#include "base/command_line.h"
#include "base/containers/contains.h"
#include "base/functional/bind.h"
#include "base/functional/callback_helpers.h"
#include "base/logging.h"
#include "base/memory/raw_ptr.h"
#include "base/syslog_logging.h"
#include "base/system/sys_info.h"
#include "base/time/time.h"
#include "ui/base/ui_base_features.h"
#include "ui/display/display.h"
#include "ui/display/display_features.h"
#include "ui/display/display_switches.h"
#include "ui/display/manager/content_protection_manager.h"
#include "ui/display/manager/display_layout_manager.h"
#include "ui/display/manager/display_manager_util.h"
#include "ui/display/manager/managed_display_info.h"
#include "ui/display/manager/update_display_configuration_task.h"
#include "ui/display/types/display_constants.h"
#include "ui/display/types/display_mode.h"
#include "ui/display/types/display_snapshot.h"
#include "ui/display/types/gamma_ramp_rgb_entry.h"
#include "ui/display/types/native_display_delegate.h"
#include "ui/display/util/display_util.h"
namespace display {
namespace {
typedef std::vector<const DisplayMode*> DisplayModeList;
struct DisplayState {
raw_ptr<DisplaySnapshot, ExperimentalAsh> display = nullptr;
raw_ptr<const DisplayMode, ExperimentalAsh> selected_mode = nullptr;
raw_ptr<const DisplayMode, ExperimentalAsh> mirror_mode = nullptr;
};
bool IsDisplayIdInDisplayStateList(
int64_t display_id,
const DisplayConfigurator::DisplayStateList& display_list) {
return base::Contains(display_list, display_id, &DisplaySnapshot::display_id);
}
bool AreModesEqual(const DisplayMode& mode,
const ManagedDisplayMode& managed_mode) {
return mode.size() == managed_mode.size() &&
mode.refresh_rate() == managed_mode.refresh_rate() &&
mode.is_interlaced() == managed_mode.is_interlaced();
}
const DisplayMode* FindExactMatchingMode(
const DisplaySnapshot& display,
const ManagedDisplayMode& managed_mode) {
if (managed_mode.native()) {
return display.native_mode() &&
AreModesEqual(*display.native_mode(), managed_mode)
? display.native_mode()
: nullptr;
}
for (const std::unique_ptr<const DisplayMode>& mode : display.modes()) {
if (AreModesEqual(*mode, managed_mode))
return mode.get();
}
return nullptr;
}
}
const int DisplayConfigurator::kSetDisplayPowerNoFlags = 0;
const int DisplayConfigurator::kSetDisplayPowerForceProbe = 1 << 0;
const int DisplayConfigurator::kSetDisplayPowerOnlyIfSingleInternalDisplay =
1 << 1;
bool DisplayConfigurator::TestApi::TriggerConfigureTimeout() {
if (configurator_->configure_timer_.IsRunning()) {
configurator_->configure_timer_.FireNow();
return true;
} else {
return false;
}
}
base::TimeDelta DisplayConfigurator::TestApi::GetConfigureDelay() const {
return configurator_->configure_timer_.IsRunning()
? configurator_->configure_timer_.GetCurrentDelay()
: base::TimeDelta();
}
class DisplayConfigurator::DisplayLayoutManagerImpl
: public DisplayLayoutManager {
public:
explicit DisplayLayoutManagerImpl(DisplayConfigurator* configurator);
DisplayLayoutManagerImpl(const DisplayLayoutManagerImpl&) = delete;
DisplayLayoutManagerImpl& operator=(const DisplayLayoutManagerImpl&) = delete;
~DisplayLayoutManagerImpl() override;
SoftwareMirroringController* GetSoftwareMirroringController() const override;
StateController* GetStateController() const override;
MultipleDisplayState GetDisplayState() const override;
chromeos::DisplayPowerState GetPowerState() const override;
bool GetDisplayLayout(
const std::vector<DisplaySnapshot*>& displays,
MultipleDisplayState new_display_state,
chromeos::DisplayPowerState new_power_state,
RefreshRateThrottleState new_throttle_state,
bool new_vrr_enabled_state,
std::vector<DisplayConfigureRequest>* requests) const override;
DisplayStateList GetDisplayStates() const override;
bool IsMirroring() const override;
void set_configure_displays(bool configure_displays) {
configure_displays_ = configure_displays;
}
private:
std::vector<DisplayState> ParseDisplays(
const std::vector<DisplaySnapshot*>& displays) const;
const DisplayMode* GetUserSelectedMode(const DisplaySnapshot& display) const;
bool AllDisplaysOnSameDevice(
const std::vector<DisplayState*>& displays) const;
bool AllDisplaysHaveDisplayMode(
const std::vector<DisplayState*>& displays) const;
bool HasSameAspectRatioAsNativeMode(const DisplaySnapshot* display,
const DisplayMode* mode) const;
bool FindExactMatchingMirrorMode(const std::vector<DisplayState*>& displays,
bool preserve_native_aspect_ratio) const;
raw_ptr<DisplayConfigurator, ExperimentalAsh> configurator_;
bool configure_displays_ = false;
};
DisplayConfigurator::DisplayLayoutManagerImpl::DisplayLayoutManagerImpl(
DisplayConfigurator* configurator)
: configurator_(configurator) {}
DisplayConfigurator::DisplayLayoutManagerImpl::~DisplayLayoutManagerImpl() {}
DisplayConfigurator::SoftwareMirroringController*
DisplayConfigurator::DisplayLayoutManagerImpl::GetSoftwareMirroringController()
const {
return configurator_->mirroring_controller_;
}
DisplayConfigurator::StateController*
DisplayConfigurator::DisplayLayoutManagerImpl::GetStateController() const {
return configurator_->state_controller_;
}
MultipleDisplayState
DisplayConfigurator::DisplayLayoutManagerImpl::GetDisplayState() const {
return configurator_->current_display_state_;
}
chromeos::DisplayPowerState
DisplayConfigurator::DisplayLayoutManagerImpl::GetPowerState() const {
return configurator_->current_power_state_;
}
std::vector<DisplayState>
DisplayConfigurator::DisplayLayoutManagerImpl::ParseDisplays(
const std::vector<DisplaySnapshot*>& snapshots) const {
std::vector<DisplayState> cached_displays;
for (auto* snapshot : snapshots) {
DisplayState display_state;
display_state.display = snapshot;
display_state.selected_mode = GetUserSelectedMode(*snapshot);
cached_displays.push_back(display_state);
}
if (!features::IsHardwareMirrorModeEnabled())
return cached_displays;
if (!configure_displays_) {
return cached_displays;
}
if (cached_displays.size() <= 1)
return cached_displays;
std::vector<DisplayState*> displays;
int num_internal_displays = 0;
for (auto& display : cached_displays) {
if (display.display->type() == DISPLAY_CONNECTION_TYPE_INTERNAL)
++num_internal_displays;
displays.emplace_back(&display);
}
CHECK_LT(num_internal_displays, 2);
LOG_IF(WARNING, num_internal_displays >= 2)
<< "At least two internal displays detected.";
if (!AllDisplaysOnSameDevice(displays))
return cached_displays;
if (!AllDisplaysHaveDisplayMode(displays))
return cached_displays;
bool can_mirror = false;
for (int attempt = 0; !can_mirror && attempt < 2; ++attempt) {
bool preserve_aspect = attempt == 0;
can_mirror = FindExactMatchingMirrorMode(displays, preserve_aspect);
}
return cached_displays;
}
bool DisplayConfigurator::DisplayLayoutManagerImpl::GetDisplayLayout(
const std::vector<DisplaySnapshot*>& displays,
MultipleDisplayState new_display_state,
chromeos::DisplayPowerState new_power_state,
RefreshRateThrottleState new_throttle_state,
bool new_vrr_enabled_state,
std::vector<DisplayConfigureRequest>* requests) const {
std::vector<DisplayState> states = ParseDisplays(displays);
std::vector<bool> display_power;
int num_on_displays =
GetDisplayPower(displays, new_power_state, &display_power);
VLOG(1) << "EnterState: display="
<< MultipleDisplayStateToString(new_display_state)
<< " power=" << DisplayPowerStateToString(new_power_state);
gfx::Size size;
for (auto* display : displays) {
requests->push_back(DisplayConfigureRequest(
display, display->current_mode(), gfx::Point(),
new_vrr_enabled_state && display->IsVrrCapable()));
}
switch (new_display_state) {
case MULTIPLE_DISPLAY_STATE_INVALID:
NOTREACHED() << "Ignoring request to enter invalid state with "
<< displays.size() << " connected display(s)";
return false;
case MULTIPLE_DISPLAY_STATE_HEADLESS:
if (displays.size() != 0) {
LOG(WARNING) << "Ignoring request to enter headless mode with "
<< displays.size() << " connected display(s)";
return false;
}
break;
case MULTIPLE_DISPLAY_STATE_SINGLE: {
if (displays.size() != 1 && num_on_displays != 1) {
LOG(WARNING) << "Ignoring request to enter single mode with "
<< displays.size() << " connected displays and "
<< num_on_displays << " turned on";
return false;
}
for (size_t i = 0; i < states.size(); ++i) {
const DisplayState* state = &states[i];
(*requests)[i].mode =
display_power[i] ? state->selected_mode.get() : NULL;
if (display_power[i] || states.size() == 1) {
const DisplayMode* mode_info = state->selected_mode;
if (!mode_info) {
LOG(WARNING) << "No selected mode when configuring display: "
<< state->display->ToString();
return false;
}
if (mode_info->size() == gfx::Size(1024, 768)) {
VLOG(1) << "Potentially misdetecting display(1024x768):"
<< " displays size=" << states.size()
<< ", num_on_displays=" << num_on_displays
<< ", current size:" << size.width() << "x" << size.height()
<< ", i=" << i << ", display=" << state->display->ToString()
<< ", display_mode=" << mode_info->ToString();
}
size = mode_info->size();
}
}
break;
}
case MULTIPLE_DISPLAY_STATE_MULTI_MIRROR: {
if (configurator_->mirroring_controller_->IsSoftwareMirroringEnforced()) {
LOG(WARNING) << "Ignoring request to enter hardware mirror mode "
"because software mirroring is enforced";
return false;
}
const bool can_set_mirror_mode =
states.size() > 1 && num_on_displays != 1;
if (!can_set_mirror_mode) {
LOG(WARNING) << "Ignoring request to enter mirrored mode with "
<< states.size() << " connected display(s) and "
<< num_on_displays << " turned on";
return false;
}
const DisplayMode* mode_info = states[0].mirror_mode;
if (!mode_info) {
SYSLOG(INFO) << "Either hardware mirroring was disabled or no common "
"mode between the available displays was found to "
"support it. Using software mirroring instead.";
return false;
}
size = mode_info->size();
for (size_t i = 0; i < states.size(); ++i) {
const DisplayState* state = &states[i];
(*requests)[i].mode =
display_power[i] ? state->mirror_mode.get() : NULL;
}
break;
}
case MULTIPLE_DISPLAY_STATE_MULTI_EXTENDED: {
if (states.size() < 2) {
LOG(WARNING) << "Ignoring request to enter extended mode with "
<< states.size() << " connected display(s) and "
<< num_on_displays << " turned on";
return false;
}
for (size_t i = 0; i < states.size(); ++i) {
const DisplayState* state = &states[i];
(*requests)[i].origin.set_y(size.height() ? size.height() + kVerticalGap
: 0);
(*requests)[i].mode =
display_power[i] ? state->selected_mode.get() : NULL;
const DisplayMode* mode_info = states[i].selected_mode;
if (!mode_info) {
LOG(WARNING) << "No selected mode when configuring display: "
<< state->display->ToString();
return false;
}
size.set_width(std::max<int>(size.width(), mode_info->size().width()));
size.set_height(size.height() + (size.height() ? kVerticalGap : 0) +
mode_info->size().height());
}
break;
}
}
if (new_throttle_state == kRefreshRateThrottleEnabled) {
for (DisplayConfigureRequest& request : *requests) {
if (request.display->type() != DISPLAY_CONNECTION_TYPE_INTERNAL)
continue;
std::vector<const DisplayMode*> modes =
GetSeamlessRefreshRateModes(*request.display, *request.mode);
if (modes.size() < 2)
break;
DCHECK_GT(request.mode->refresh_rate(), (*modes.begin())->refresh_rate());
request.mode = (*modes.begin());
}
}
DCHECK(new_display_state == MULTIPLE_DISPLAY_STATE_HEADLESS ||
!size.IsEmpty());
return true;
}
DisplayConfigurator::DisplayStateList
DisplayConfigurator::DisplayLayoutManagerImpl::GetDisplayStates() const {
return configurator_->cached_displays();
}
bool DisplayConfigurator::DisplayLayoutManagerImpl::IsMirroring() const {
if (GetDisplayState() == MULTIPLE_DISPLAY_STATE_MULTI_MIRROR)
return true;
return GetSoftwareMirroringController() &&
GetSoftwareMirroringController()->SoftwareMirroringEnabled();
}
const DisplayMode*
DisplayConfigurator::DisplayLayoutManagerImpl::GetUserSelectedMode(
const DisplaySnapshot& display) const {
const DisplayMode* selected_mode = nullptr;
auto* state_controller = GetStateController();
if (state_controller) {
ManagedDisplayMode mode;
const bool mode_found = state_controller->GetSelectedModeForDisplayId(
display.display_id(), &mode);
if (display::features::IsListAllDisplayModesEnabled()) {
selected_mode =
mode_found ? FindExactMatchingMode(display, mode) : nullptr;
} else {
selected_mode = mode_found
? FindDisplayModeMatchingSize(display, mode.size())
: nullptr;
}
}
return selected_mode ? selected_mode : display.native_mode();
}
bool DisplayConfigurator::DisplayLayoutManagerImpl::AllDisplaysOnSameDevice(
const std::vector<DisplayState*>& displays) const {
DisplayState* first_display = displays.front();
for (auto it = displays.begin() + 1; it != displays.end(); ++it) {
if (first_display->display->sys_path() != (*it)->display->sys_path())
return false;
}
return true;
}
bool DisplayConfigurator::DisplayLayoutManagerImpl::AllDisplaysHaveDisplayMode(
const std::vector<DisplayState*>& displays) const {
for (const auto* display : displays) {
if (display->display->modes().empty())
return false;
}
return true;
}
bool DisplayConfigurator::DisplayLayoutManagerImpl::
HasSameAspectRatioAsNativeMode(const DisplaySnapshot* display,
const DisplayMode* mode) const {
return display->native_mode()->size().width() * mode->size().height() ==
display->native_mode()->size().height() * mode->size().width();
}
bool DisplayConfigurator::DisplayLayoutManagerImpl::FindExactMatchingMirrorMode(
const std::vector<DisplayState*>& displays,
bool preserve_native_aspect_ratio) const {
DCHECK(displays.size() > 0);
std::vector<std::vector<const DisplayMode*>> mode_lists;
for (auto* d : displays) {
std::vector<const DisplayMode*> mode_list;
for (auto& mode : d->display->modes()) {
if (d->display->type() != DISPLAY_CONNECTION_TYPE_INTERNAL &&
preserve_native_aspect_ratio &&
!HasSameAspectRatioAsNativeMode(d->display, mode.get())) {
continue;
}
mode_list.emplace_back(mode.get());
}
std::sort(
mode_list.begin(), mode_list.end(),
[](const DisplayMode* const& a, const DisplayMode* const& b) -> bool {
if (a->size().GetArea() > b->size().GetArea())
return true;
if (a->size().GetArea() < b->size().GetArea())
return false;
return a->refresh_rate() > b->refresh_rate();
});
mode_lists.emplace_back(mode_list);
}
std::vector<std::vector<const DisplayMode*>::iterator> it_list;
for (auto& mode_list : mode_lists)
it_list.emplace_back(mode_list.begin());
for (; it_list[0] != mode_lists[0].end(); ++it_list[0]) {
bool found = true;
for (size_t i = 1; i < mode_lists.size(); ++i) {
while (it_list[i] != mode_lists[i].end() &&
(*it_list[i])->size().GetArea() >=
(*it_list[0])->size().GetArea()) {
if ((*it_list[i])->size() == (*it_list[0])->size() &&
(*it_list[i])->is_interlaced() == (*it_list[0])->is_interlaced()) {
displays[i]->mirror_mode = *it_list[i];
break;
}
++it_list[i];
}
if (!displays[i]->mirror_mode) {
found = false;
break;
}
}
if (found) {
displays[0]->mirror_mode = *it_list[0];
return true;
}
for (auto* d : displays)
d->mirror_mode = nullptr;
}
return false;
}
const DisplayMode* DisplayConfigurator::FindDisplayModeMatchingSize(
const DisplaySnapshot& display,
const gfx::Size& size) {
const DisplayMode* best_mode = NULL;
for (const std::unique_ptr<const DisplayMode>& mode : display.modes()) {
if (mode->size() != size)
continue;
if (mode.get() == display.native_mode()) {
best_mode = mode.get();
break;
}
if (!best_mode) {
best_mode = mode.get();
continue;
}
if (mode->is_interlaced()) {
if (!best_mode->is_interlaced())
continue;
} else {
if (best_mode->is_interlaced()) {
best_mode = mode.get();
continue;
}
}
if (mode->refresh_rate() < best_mode->refresh_rate())
continue;
best_mode = mode.get();
}
return best_mode;
}
DisplayConfigurator::DisplayConfigurator()
: state_controller_(nullptr),
mirroring_controller_(nullptr),
is_panel_fitting_enabled_(false),
configure_displays_(base::SysInfo::IsRunningOnChromeOS()),
current_display_state_(MULTIPLE_DISPLAY_STATE_INVALID),
current_power_state_(chromeos::DISPLAY_POWER_ALL_ON),
requested_display_state_(MULTIPLE_DISPLAY_STATE_INVALID),
pending_power_state_(chromeos::DISPLAY_POWER_ALL_ON),
has_pending_power_state_(false),
pending_power_flags_(kSetDisplayPowerNoFlags),
force_configure_(false),
display_externally_controlled_(false),
display_control_changing_(false),
displays_suspended_(false),
layout_manager_(new DisplayLayoutManagerImpl(this)),
content_protection_manager_(new ContentProtectionManager(
layout_manager_.get(),
base::BindRepeating(&DisplayConfigurator::configurator_disabled,
base::Unretained(this)))),
has_unassociated_display_(false),
pending_vrr_state_(::features::IsVariableRefreshRateEnabled()) {
AddObserver(content_protection_manager_.get());
}
DisplayConfigurator::~DisplayConfigurator() {
RemoveObserver(content_protection_manager_.get());
if (native_display_delegate_)
native_display_delegate_->RemoveObserver(this);
CallAndClearInProgressCallbacks(false);
CallAndClearQueuedCallbacks(false);
}
void DisplayConfigurator::SetDelegateForTesting(
std::unique_ptr<NativeDisplayDelegate> display_delegate) {
DCHECK(!native_display_delegate_);
native_display_delegate_ = std::move(display_delegate);
SetConfigureDisplays(true);
}
void DisplayConfigurator::SetInitialDisplayPower(
chromeos::DisplayPowerState power_state) {
if (requested_power_state_) {
return;
}
requested_power_state_ = power_state;
if (current_display_state_ == MULTIPLE_DISPLAY_STATE_INVALID) {
current_power_state_ = power_state;
NotifyPowerStateObservers();
return;
}
UpdatePowerState(power_state);
}
void DisplayConfigurator::InitializeDisplayPowerState() {
SetInitialDisplayPower(chromeos::DISPLAY_POWER_ALL_ON);
}
void DisplayConfigurator::Init(
std::unique_ptr<NativeDisplayDelegate> display_delegate,
bool is_panel_fitting_enabled) {
is_panel_fitting_enabled_ = is_panel_fitting_enabled;
if (configurator_disabled())
return;
if (!native_display_delegate_)
native_display_delegate_ = std::move(display_delegate);
native_display_delegate_->AddObserver(this);
content_protection_manager_->set_native_display_delegate(
native_display_delegate_.get());
}
void DisplayConfigurator::SetConfigureDisplays(bool configure_displays) {
configure_displays_ = configure_displays;
layout_manager_->set_configure_displays(configure_displays);
}
void DisplayConfigurator::TakeControl(DisplayControlCallback callback) {
if (display_control_changing_) {
std::move(callback).Run(false);
return;
}
if (!display_externally_controlled_) {
std::move(callback).Run(true);
return;
}
display_control_changing_ = true;
native_display_delegate_->TakeDisplayControl(
base::BindOnce(&DisplayConfigurator::OnDisplayControlTaken,
weak_ptr_factory_.GetWeakPtr(), std::move(callback)));
}
void DisplayConfigurator::OnDisplayControlTaken(DisplayControlCallback callback,
bool success) {
display_control_changing_ = false;
display_externally_controlled_ = !success;
if (success) {
force_configure_ = true;
if (requested_power_state_) {
SetDisplayPower(*requested_power_state_, kSetDisplayPowerNoFlags,
base::DoNothing());
}
}
std::move(callback).Run(success);
}
void DisplayConfigurator::RelinquishControl(DisplayControlCallback callback) {
if (display_control_changing_) {
std::move(callback).Run(false);
return;
}
if (display_externally_controlled_) {
std::move(callback).Run(true);
return;
}
if (configuration_task_) {
std::move(callback).Run(false);
return;
}
display_control_changing_ = true;
SetDisplayPowerInternal(
chromeos::DISPLAY_POWER_ALL_OFF, kSetDisplayPowerNoFlags,
base::BindOnce(&DisplayConfigurator::SendRelinquishDisplayControl,
weak_ptr_factory_.GetWeakPtr(), std::move(callback)));
}
void DisplayConfigurator::SendRelinquishDisplayControl(
DisplayControlCallback callback,
bool success) {
if (success) {
display_externally_controlled_ = true;
native_display_delegate_->RelinquishDisplayControl(
base::BindOnce(&DisplayConfigurator::OnDisplayControlRelinquished,
weak_ptr_factory_.GetWeakPtr(), std::move(callback)));
} else {
display_control_changing_ = false;
std::move(callback).Run(false);
}
}
void DisplayConfigurator::OnDisplayControlRelinquished(
DisplayControlCallback callback,
bool success) {
display_control_changing_ = false;
display_externally_controlled_ = success;
if (!success) {
force_configure_ = true;
RunPendingConfiguration();
}
std::move(callback).Run(success);
}
void DisplayConfigurator::ForceInitialConfigure() {
if (configurator_disabled())
return;
DCHECK(native_display_delegate_);
native_display_delegate_->Initialize();
DCHECK(!configuration_task_);
configuration_task_ = std::make_unique<UpdateDisplayConfigurationTask>(
native_display_delegate_.get(), layout_manager_.get(),
requested_display_state_, GetRequestedPowerState(),
kSetDisplayPowerForceProbe, kRefreshRateThrottleDisabled,
GetRequestedVrrState(), true, kConfigurationTypeFull,
base::BindOnce(&DisplayConfigurator::OnConfigured,
weak_ptr_factory_.GetWeakPtr()));
configuration_task_->Run();
}
bool DisplayConfigurator::SetColorMatrix(
int64_t display_id,
const std::vector<float>& color_matrix) {
if (!IsDisplayIdInDisplayStateList(display_id, cached_displays_))
return false;
return native_display_delegate_->SetColorMatrix(display_id, color_matrix);
}
bool DisplayConfigurator::SetGammaCorrection(
int64_t display_id,
const std::vector<GammaRampRGBEntry>& degamma_lut,
const std::vector<GammaRampRGBEntry>& gamma_lut) {
if (!IsDisplayIdInDisplayStateList(display_id, cached_displays_))
return false;
return native_display_delegate_->SetGammaCorrection(display_id, degamma_lut,
gamma_lut);
}
void DisplayConfigurator::SetPrivacyScreen(int64_t display_id,
bool enabled,
ConfigurationCallback callback) {
#if DCHECK_IS_ON()
DisplaySnapshot* internal_display = nullptr;
for (DisplaySnapshot* display : cached_displays_) {
if (display->type() == DISPLAY_CONNECTION_TYPE_INTERNAL) {
internal_display = display;
break;
}
}
DCHECK(internal_display);
DCHECK_EQ(internal_display->display_id(), display_id);
DCHECK_NE(internal_display->privacy_screen_state(), kNotSupported);
DCHECK(internal_display->current_mode());
#endif
native_display_delegate_->SetPrivacyScreen(display_id, enabled,
std::move(callback));
}
chromeos::DisplayPowerState DisplayConfigurator::GetRequestedPowerState()
const {
return requested_power_state_.value_or(chromeos::DISPLAY_POWER_ALL_ON);
}
void DisplayConfigurator::PrepareForExit() {
configure_displays_ = false;
}
void DisplayConfigurator::SetDisplayPowerInternal(
chromeos::DisplayPowerState power_state,
int flags,
ConfigurationCallback callback) {
if (power_state == current_power_state_ &&
power_state == pending_power_state_ &&
!(flags & kSetDisplayPowerForceProbe)) {
std::move(callback).Run(true);
return;
}
pending_power_state_ = power_state;
has_pending_power_state_ = true;
pending_power_flags_ = flags;
queued_configuration_callbacks_.push_back(std::move(callback));
if (configure_timer_.IsRunning()) {
configure_timer_.Reset();
return;
}
RunPendingConfiguration();
}
void DisplayConfigurator::SetDisplayPower(
chromeos::DisplayPowerState power_state,
int flags,
ConfigurationCallback callback) {
if (configurator_disabled()) {
std::move(callback).Run(false);
return;
}
VLOG(1) << "SetDisplayPower: power_state="
<< DisplayPowerStateToString(power_state) << " flags=" << flags
<< ", configure timer="
<< (configure_timer_.IsRunning() ? "Running" : "Stopped");
requested_power_state_ = power_state;
SetDisplayPowerInternal(*requested_power_state_, flags, std::move(callback));
}
void DisplayConfigurator::SetDisplayMode(MultipleDisplayState new_state) {
if (configurator_disabled())
return;
VLOG(1) << "SetDisplayMode: state="
<< MultipleDisplayStateToString(new_state);
if (current_display_state_ == new_state) {
if (mirroring_controller_ &&
new_state == MULTIPLE_DISPLAY_STATE_MULTI_EXTENDED)
mirroring_controller_->SetSoftwareMirroring(false);
NotifyDisplayStateObservers(true, new_state);
return;
}
requested_display_state_ = new_state;
RunPendingConfiguration();
}
void DisplayConfigurator::OnConfigurationChanged() {
if (displays_suspended_) {
VLOG(1) << "Displays are currently suspended. Not attempting to "
<< "reconfigure them.";
return;
}
configure_timer_.Start(FROM_HERE, base::Milliseconds(kConfigureDelayMs), this,
&DisplayConfigurator::ConfigureDisplays);
}
void DisplayConfigurator::OnDisplaySnapshotsInvalidated() {
VLOG(1) << "Display snapshots invalidated.";
cached_displays_.clear();
}
void DisplayConfigurator::AddObserver(Observer* observer) {
observers_.AddObserver(observer);
}
void DisplayConfigurator::RemoveObserver(Observer* observer) {
observers_.RemoveObserver(observer);
}
bool DisplayConfigurator::HasObserverForTesting(Observer* observer) const {
return observers_.HasObserver(observer);
}
void DisplayConfigurator::MaybeSetRefreshRateThrottleState(
int64_t display_id,
RefreshRateThrottleState state) {
DisplaySnapshot* display = nullptr;
for (DisplaySnapshot* cached_display : cached_displays_) {
if (cached_display->display_id() == display_id) {
display = cached_display;
break;
}
}
if (display == nullptr) {
LOG(ERROR) << "Did not find display with id: " << display_id;
return;
}
if (display->type() != DISPLAY_CONNECTION_TYPE_INTERNAL) {
LOG(ERROR) << "Can't throttle refresh rate for non-internal display: "
<< display_id;
return;
}
if (display->current_mode() == nullptr) {
VLOG(4) << "Mode not set for display.";
return;
}
std::vector<const DisplayMode*> matching_modes =
GetSeamlessRefreshRateModes(*display, *display->current_mode());
if (matching_modes.size() < 2) {
VLOG(4) << "No mode candidates for seamless refresh rate change.";
return;
}
if ((state == kRefreshRateThrottleEnabled) !=
(display->current_mode() == *matching_modes.begin())) {
pending_refresh_rate_throttle_state_ = state;
RunPendingConfiguration();
}
}
void DisplayConfigurator::SuspendDisplays(ConfigurationCallback callback) {
if (configurator_disabled()) {
std::move(callback).Run(false);
return;
}
displays_suspended_ = true;
configure_timer_.Stop();
SetDisplayPowerInternal(chromeos::DISPLAY_POWER_ALL_OFF,
kSetDisplayPowerNoFlags, std::move(callback));
}
void DisplayConfigurator::ResumeDisplays() {
if (configurator_disabled())
return;
displays_suspended_ = false;
if (current_display_state_ == MULTIPLE_DISPLAY_STATE_MULTI_MIRROR ||
current_display_state_ == MULTIPLE_DISPLAY_STATE_MULTI_EXTENDED) {
configure_timer_.Start(
FROM_HERE, base::Milliseconds(kResumeConfigureMultiDisplayDelayMs),
this, &DisplayConfigurator::ConfigureDisplays);
}
if (requested_power_state_) {
SetDisplayPower(*requested_power_state_, kSetDisplayPowerNoFlags,
base::DoNothing());
}
}
void DisplayConfigurator::ConfigureDisplays() {
if (configurator_disabled())
return;
force_configure_ = true;
RunPendingConfiguration();
}
void DisplayConfigurator::RunPendingConfiguration() {
if (configuration_task_)
return;
if (!ShouldRunConfigurationTask()) {
LOG(ERROR) << "Called RunPendingConfiguration without any changes"
" requested";
CallAndClearQueuedCallbacks(true);
return;
}
ConfigurationType configuration_type = kConfigurationTypeFull;
if (!HasPendingFullConfiguration()) {
DCHECK(HasPendingSeamlessConfiguration());
configuration_type = kConfigurationTypeSeamless;
}
configuration_task_ = std::make_unique<UpdateDisplayConfigurationTask>(
native_display_delegate_.get(), layout_manager_.get(),
requested_display_state_, pending_power_state_, pending_power_flags_,
pending_refresh_rate_throttle_state_.value_or(
kRefreshRateThrottleDisabled),
GetRequestedVrrState(), force_configure_, configuration_type,
base::BindOnce(&DisplayConfigurator::OnConfigured,
weak_ptr_factory_.GetWeakPtr()));
force_configure_ = false;
pending_power_flags_ = kSetDisplayPowerNoFlags;
has_pending_power_state_ = false;
requested_display_state_ = MULTIPLE_DISPLAY_STATE_INVALID;
pending_refresh_rate_throttle_state_ = absl::nullopt;
pending_vrr_state_ = absl::nullopt;
DCHECK(in_progress_configuration_callbacks_.empty());
in_progress_configuration_callbacks_.swap(queued_configuration_callbacks_);
configuration_task_->Run();
}
void DisplayConfigurator::OnConfigured(
bool success,
const std::vector<DisplaySnapshot*>& displays,
const std::vector<DisplaySnapshot*>& unassociated_displays,
MultipleDisplayState new_display_state,
chromeos::DisplayPowerState new_power_state,
bool new_vrr_state_) {
VLOG(1) << "OnConfigured: success=" << success << " new_display_state="
<< MultipleDisplayStateToString(new_display_state)
<< " new_power_state=" << DisplayPowerStateToString(new_power_state);
cached_displays_ = displays;
has_unassociated_display_ = unassociated_displays.size();
if (success) {
current_display_state_ = new_display_state;
UpdatePowerState(new_power_state);
current_vrr_state_ = new_vrr_state_;
}
configuration_task_.reset();
NotifyDisplayStateObservers(success, new_display_state);
CallAndClearInProgressCallbacks(success);
if (success && !configure_timer_.IsRunning() &&
ShouldRunConfigurationTask()) {
configure_timer_.Start(FROM_HERE, base::Milliseconds(kConfigureDelayMs),
this, &DisplayConfigurator::RunPendingConfiguration);
} else {
if (!configure_timer_.IsRunning())
CallAndClearQueuedCallbacks(success);
}
}
void DisplayConfigurator::UpdatePowerState(
chromeos::DisplayPowerState new_power_state) {
chromeos::DisplayPowerState old_power_state = current_power_state_;
current_power_state_ = new_power_state;
if (has_pending_power_state_)
return;
pending_power_state_ = new_power_state;
if (old_power_state != current_power_state_)
NotifyPowerStateObservers();
}
bool DisplayConfigurator::ShouldRunConfigurationTask() const {
return HasPendingSeamlessConfiguration() || HasPendingFullConfiguration();
}
bool DisplayConfigurator::HasPendingFullConfiguration() const {
if (force_configure_)
return true;
if (requested_display_state_ != current_display_state_ &&
requested_display_state_ != MULTIPLE_DISPLAY_STATE_INVALID)
return true;
if (has_pending_power_state_)
return true;
if (ShouldConfigureVrr()) {
return true;
}
if (HasPendingSeamlessConfiguration() && IsVrrEnabledOnInternalDisplay()) {
return true;
}
return false;
}
bool DisplayConfigurator::HasPendingSeamlessConfiguration() const {
return pending_refresh_rate_throttle_state_.has_value();
}
void DisplayConfigurator::CallAndClearInProgressCallbacks(bool success) {
for (auto& callback : in_progress_configuration_callbacks_)
std::move(callback).Run(success);
in_progress_configuration_callbacks_.clear();
}
void DisplayConfigurator::CallAndClearQueuedCallbacks(bool success) {
for (auto& callback : queued_configuration_callbacks_)
std::move(callback).Run(success);
queued_configuration_callbacks_.clear();
}
void DisplayConfigurator::NotifyDisplayStateObservers(
bool success,
MultipleDisplayState attempted_state) {
if (success) {
for (Observer& observer : observers_)
observer.OnDisplayModeChanged(cached_displays_);
} else {
for (Observer& observer : observers_)
observer.OnDisplayModeChangeFailed(cached_displays_, attempted_state);
}
}
void DisplayConfigurator::NotifyPowerStateObservers() {
for (Observer& observer : observers_)
observer.OnPowerStateChanged(current_power_state_);
}
bool DisplayConfigurator::IsDisplayOn() const {
return current_power_state_ != chromeos::DISPLAY_POWER_ALL_OFF;
}
void DisplayConfigurator::SetVrrEnabled(bool enable_vrr) {
if (current_vrr_state_ == enable_vrr) {
return;
}
pending_vrr_state_ = enable_vrr;
if (!configure_timer_.IsRunning()) {
RunPendingConfiguration();
}
}
bool DisplayConfigurator::GetRequestedVrrState() const {
return pending_vrr_state_.value_or(current_vrr_state_);
}
bool DisplayConfigurator::ShouldConfigureVrr() const {
for (const auto* display : cached_displays_) {
if (!display->IsVrrCapable()) {
continue;
}
if (display->IsVrrEnabled() != GetRequestedVrrState()) {
return true;
}
}
return false;
}
bool DisplayConfigurator::IsVrrEnabledOnInternalDisplay() const {
const DisplaySnapshot* internal_display;
for (const auto* display : cached_displays_) {
if (display->type() == DISPLAY_CONNECTION_TYPE_INTERNAL) {
internal_display = display;
break;
}
}
return internal_display != nullptr &&
internal_display->current_mode() != nullptr &&
internal_display->IsVrrEnabled();
}
}