429 lines
14 KiB
C++
429 lines
14 KiB
C++
// Copyright 2010 Dolphin Emulator Project
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// SPDX-License-Identifier: GPL-2.0-or-later
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// ---------------------------------------------------------------------------------------------
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// GC graphics pipeline
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// ---------------------------------------------------------------------------------------------
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// 3d commands are issued through the fifo. The GPU draws to the 2MB EFB.
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// The efb can be copied back into ram in two forms: as textures or as XFB.
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// The XFB is the region in RAM that the VI chip scans out to the television.
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// So, after all rendering to EFB is done, the image is copied into one of two XFBs in RAM.
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// Next frame, that one is scanned out and the other one gets the copy. = double buffering.
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// ---------------------------------------------------------------------------------------------
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#include "VideoCommon/RenderBase.h"
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#include <algorithm>
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#include <cmath>
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#include <memory>
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#include <tuple>
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#include <fmt/format.h>
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#include "Common/Assert.h"
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#include "Common/ChunkFile.h"
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#include "Common/CommonTypes.h"
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#include "Common/Config/Config.h"
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#include "Common/Logging/Log.h"
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#include "Common/MsgHandler.h"
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#include "Core/Config/GraphicsSettings.h"
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#include "Core/Config/SYSCONFSettings.h"
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#include "Core/ConfigManager.h"
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#include "Core/Core.h"
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#include "Core/DolphinAnalytics.h"
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#include "Core/FifoPlayer/FifoRecorder.h"
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#include "Core/FreeLookConfig.h"
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#include "Core/HW/SystemTimers.h"
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#include "Core/System.h"
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#include "VideoCommon/AbstractFramebuffer.h"
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#include "VideoCommon/AbstractGfx.h"
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#include "VideoCommon/AbstractTexture.h"
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#include "VideoCommon/BoundingBox.h"
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#include "VideoCommon/CommandProcessor.h"
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#include "VideoCommon/FrameDumper.h"
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#include "VideoCommon/FramebufferManager.h"
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#include "VideoCommon/GraphicsModSystem/Runtime/GraphicsModManager.h"
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#include "VideoCommon/OnScreenDisplay.h"
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#include "VideoCommon/PerformanceMetrics.h"
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#include "VideoCommon/PixelEngine.h"
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#include "VideoCommon/PixelShaderManager.h"
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#include "VideoCommon/Present.h"
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#include "VideoCommon/ShaderCache.h"
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#include "VideoCommon/Statistics.h"
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#include "VideoCommon/VertexManagerBase.h"
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#include "VideoCommon/VideoBackendBase.h"
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#include "VideoCommon/VideoConfig.h"
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std::unique_ptr<Renderer> g_renderer;
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Renderer::Renderer()
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: m_prev_efb_format{PixelFormat::INVALID_FMT},
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m_last_xfb_width{MAX_XFB_WIDTH}, m_last_xfb_height{MAX_XFB_HEIGHT}
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{
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UpdateActiveConfig();
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CalculateTargetSize();
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UpdateWidescreen();
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m_config_changed_handle = ConfigChangedEvent::Register([this](u32 bits) { OnConfigChanged(bits); }, "Renderer");
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// VertexManager doesn't maintain statistics in Wii mode.
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if (!SConfig::GetInstance().bWii)
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m_update_widescreen_handle = AfterFrameEvent::Register([this] { UpdateWidescreenHeuristic(); }, "WideScreen Heuristic");
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}
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Renderer::~Renderer() = default;
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void Renderer::ClearScreen(const MathUtil::Rectangle<int>& rc, bool color_enable, bool alpha_enable,
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bool z_enable, u32 color, u32 z)
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{
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g_framebuffer_manager->FlushEFBPokes();
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g_framebuffer_manager->FlagPeekCacheAsOutOfDate();
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// Native -> EFB coordinates
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MathUtil::Rectangle<int> target_rc = Renderer::ConvertEFBRectangle(rc);
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target_rc.ClampUL(0, 0, m_target_width, m_target_height);
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// Determine whether the EFB has an alpha channel. If it doesn't, we can clear the alpha
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// channel to 0xFF.
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// On backends that don't allow masking Alpha clears, this allows us to use the fast path
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// almost all the time
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if (bpmem.zcontrol.pixel_format == PixelFormat::RGB565_Z16 ||
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bpmem.zcontrol.pixel_format == PixelFormat::RGB8_Z24 ||
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bpmem.zcontrol.pixel_format == PixelFormat::Z24)
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{
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// Force alpha writes, and clear the alpha channel.
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alpha_enable = true;
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color &= 0x00FFFFFF;
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}
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g_gfx->ClearRegion(rc, target_rc, color_enable, alpha_enable, z_enable, color, z);
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// Scissor rect must be restored.
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BPFunctions::SetScissorAndViewport();
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}
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void Renderer::ReinterpretPixelData(EFBReinterpretType convtype)
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{
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g_framebuffer_manager->ReinterpretPixelData(convtype);
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}
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u32 Renderer::AccessEFB(EFBAccessType type, u32 x, u32 y, u32 poke_data)
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{
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if (type == EFBAccessType::PeekColor)
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{
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u32 color = g_framebuffer_manager->PeekEFBColor(x, y);
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// a little-endian value is expected to be returned
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color = ((color & 0xFF00FF00) | ((color >> 16) & 0xFF) | ((color << 16) & 0xFF0000));
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if (bpmem.zcontrol.pixel_format == PixelFormat::RGBA6_Z24)
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{
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color = RGBA8ToRGBA6ToRGBA8(color);
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}
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else if (bpmem.zcontrol.pixel_format == PixelFormat::RGB565_Z16)
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{
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color = RGBA8ToRGB565ToRGBA8(color);
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}
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if (bpmem.zcontrol.pixel_format != PixelFormat::RGBA6_Z24)
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{
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color |= 0xFF000000;
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}
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// check what to do with the alpha channel (GX_PokeAlphaRead)
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PixelEngine::AlphaReadMode alpha_read_mode =
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Core::System::GetInstance().GetPixelEngine().GetAlphaReadMode();
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if (alpha_read_mode == PixelEngine::AlphaReadMode::ReadNone)
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{
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return color;
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}
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else if (alpha_read_mode == PixelEngine::AlphaReadMode::ReadFF)
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{
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return color | 0xFF000000;
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}
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else
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{
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if (alpha_read_mode != PixelEngine::AlphaReadMode::Read00)
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{
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PanicAlertFmt("Invalid PE alpha read mode: {}", static_cast<u16>(alpha_read_mode));
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}
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return color & 0x00FFFFFF;
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}
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}
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else // if (type == EFBAccessType::PeekZ)
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{
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// Depth buffer is inverted for improved precision near far plane
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float depth = g_framebuffer_manager->PeekEFBDepth(x, y);
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if (!g_ActiveConfig.backend_info.bSupportsReversedDepthRange)
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depth = 1.0f - depth;
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// Convert to 24bit depth
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u32 z24depth = std::clamp<u32>(static_cast<u32>(depth * 16777216.0f), 0, 0xFFFFFF);
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if (bpmem.zcontrol.pixel_format == PixelFormat::RGB565_Z16)
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{
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// When in RGB565_Z16 mode, EFB Z peeks return a 16bit value, which is presumably a
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// resolved sample from the MSAA buffer.
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// Dolphin doesn't currently emulate the 3 sample MSAA mode (and potentially never will)
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// it just transparently upgrades the framebuffer to 24bit depth and color and whatever
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// level of MSAA and higher Internal Resolution the user has configured.
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// This is mostly transparent, unless the game does an EFB read.
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// But we can simply convert the 24bit depth on the fly to the 16bit depth the game expects.
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return CompressZ16(z24depth, bpmem.zcontrol.zformat);
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}
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return z24depth;
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}
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}
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void Renderer::PokeEFB(EFBAccessType type, const EfbPokeData* points, size_t num_points)
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{
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if (type == EFBAccessType::PokeColor)
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{
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for (size_t i = 0; i < num_points; i++)
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{
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// Convert to expected format (BGRA->RGBA)
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// TODO: Check alpha, depending on mode?
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const EfbPokeData& point = points[i];
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u32 color = ((point.data & 0xFF00FF00) | ((point.data >> 16) & 0xFF) |
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((point.data << 16) & 0xFF0000));
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g_framebuffer_manager->PokeEFBColor(point.x, point.y, color);
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}
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}
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else // if (type == EFBAccessType::PokeZ)
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{
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for (size_t i = 0; i < num_points; i++)
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{
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// Convert to floating-point depth.
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const EfbPokeData& point = points[i];
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float depth = float(point.data & 0xFFFFFF) / 16777216.0f;
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if (!g_ActiveConfig.backend_info.bSupportsReversedDepthRange)
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depth = 1.0f - depth;
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g_framebuffer_manager->PokeEFBDepth(point.x, point.y, depth);
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}
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}
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}
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unsigned int Renderer::GetEFBScale() const
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{
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return m_efb_scale;
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}
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int Renderer::EFBToScaledX(int x) const
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{
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return x * static_cast<int>(m_efb_scale);
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}
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int Renderer::EFBToScaledY(int y) const
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{
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return y * static_cast<int>(m_efb_scale);
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}
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float Renderer::EFBToScaledXf(float x) const
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{
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return x * ((float)GetTargetWidth() / (float)EFB_WIDTH);
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}
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float Renderer::EFBToScaledYf(float y) const
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{
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return y * ((float)GetTargetHeight() / (float)EFB_HEIGHT);
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}
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std::tuple<int, int> Renderer::CalculateTargetScale(int x, int y) const
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{
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return std::make_tuple(x * static_cast<int>(m_efb_scale), y * static_cast<int>(m_efb_scale));
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}
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// return true if target size changed
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bool Renderer::CalculateTargetSize()
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{
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if (g_ActiveConfig.iEFBScale == EFB_SCALE_AUTO_INTEGRAL)
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{
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auto target_rectangle = g_presenter->GetTargetRectangle();
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// Set a scale based on the window size
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int width = EFB_WIDTH * target_rectangle.GetWidth() / m_last_xfb_width;
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int height = EFB_HEIGHT * target_rectangle.GetHeight() / m_last_xfb_height;
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m_efb_scale = std::max((width - 1) / EFB_WIDTH + 1, (height - 1) / EFB_HEIGHT + 1);
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}
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else
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{
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m_efb_scale = g_ActiveConfig.iEFBScale;
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}
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const u32 max_size = g_ActiveConfig.backend_info.MaxTextureSize;
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if (max_size < EFB_WIDTH * m_efb_scale)
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m_efb_scale = max_size / EFB_WIDTH;
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auto [new_efb_width, new_efb_height] = CalculateTargetScale(EFB_WIDTH, EFB_HEIGHT);
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new_efb_width = std::max(new_efb_width, 1);
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new_efb_height = std::max(new_efb_height, 1);
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if (new_efb_width != m_target_width || new_efb_height != m_target_height)
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{
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m_target_width = new_efb_width;
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m_target_height = new_efb_height;
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auto& system = Core::System::GetInstance();
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auto& pixel_shader_manager = system.GetPixelShaderManager();
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pixel_shader_manager.SetEfbScaleChanged(EFBToScaledXf(1), EFBToScaledYf(1));
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return true;
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}
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return false;
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}
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MathUtil::Rectangle<int> Renderer::ConvertEFBRectangle(const MathUtil::Rectangle<int>& rc) const
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{
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MathUtil::Rectangle<int> result;
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result.left = EFBToScaledX(rc.left);
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result.top = EFBToScaledY(rc.top);
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result.right = EFBToScaledX(rc.right);
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result.bottom = EFBToScaledY(rc.bottom);
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return result;
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}
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void Renderer::UpdateWidescreen()
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{
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if (SConfig::GetInstance().bWii)
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m_is_game_widescreen = Config::Get(Config::SYSCONF_WIDESCREEN);
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// suggested_aspect_mode overrides SYSCONF_WIDESCREEN
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if (g_ActiveConfig.suggested_aspect_mode == AspectMode::Analog)
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m_is_game_widescreen = false;
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else if (g_ActiveConfig.suggested_aspect_mode == AspectMode::AnalogWide)
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m_is_game_widescreen = true;
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// If widescreen hack is disabled override game's AR if UI is set to 4:3 or 16:9.
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if (!g_ActiveConfig.bWidescreenHack)
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{
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const auto aspect_mode = g_ActiveConfig.aspect_mode;
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if (aspect_mode == AspectMode::Analog)
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m_is_game_widescreen = false;
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else if (aspect_mode == AspectMode::AnalogWide)
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m_is_game_widescreen = true;
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}
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}
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// Heuristic to detect if a GameCube game is in 16:9 anamorphic widescreen mode.
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void Renderer::UpdateWidescreenHeuristic()
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{
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const auto flush_statistics = g_vertex_manager->ResetFlushAspectRatioCount();
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// If suggested_aspect_mode (GameINI) is configured don't use heuristic.
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if (g_ActiveConfig.suggested_aspect_mode != AspectMode::Auto)
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return;
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UpdateWidescreen();
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// If widescreen hack isn't active and aspect_mode (UI) is 4:3 or 16:9 don't use heuristic.
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if (!g_ActiveConfig.bWidescreenHack && (g_ActiveConfig.aspect_mode == AspectMode::Analog ||
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g_ActiveConfig.aspect_mode == AspectMode::AnalogWide))
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return;
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// Modify the threshold based on which aspect ratio we're already using:
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// If the game's in 4:3, it probably won't switch to anamorphic, and vice-versa.
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static constexpr u32 TRANSITION_THRESHOLD = 3;
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const auto looks_normal = [](auto& counts) {
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return counts.normal_vertex_count > counts.anamorphic_vertex_count * TRANSITION_THRESHOLD;
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};
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const auto looks_anamorphic = [](auto& counts) {
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return counts.anamorphic_vertex_count > counts.normal_vertex_count * TRANSITION_THRESHOLD;
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};
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const auto& persp = flush_statistics.perspective;
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const auto& ortho = flush_statistics.orthographic;
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const auto ortho_looks_anamorphic = looks_anamorphic(ortho);
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if (looks_anamorphic(persp) || ortho_looks_anamorphic)
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{
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// If either perspective or orthographic projections look anamorphic, it's a safe bet.
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m_is_game_widescreen = true;
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}
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else if (looks_normal(persp) || (m_was_orthographically_anamorphic && looks_normal(ortho)))
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{
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// Many widescreen games (or AR/GeckoCodes) use anamorphic perspective projections
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// with NON-anamorphic orthographic projections.
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// This can cause incorrect changes to 4:3 when perspective projections are temporarily not
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// shown. e.g. Animal Crossing's inventory menu.
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// Unless we were in a situation which was orthographically anamorphic
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// we won't consider orthographic data for changes from 16:9 to 4:3.
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m_is_game_widescreen = false;
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}
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m_was_orthographically_anamorphic = ortho_looks_anamorphic;
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}
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void Renderer::OnConfigChanged(u32 bits)
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{
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if (bits & CONFIG_CHANGE_BIT_ASPECT_RATIO)
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UpdateWidescreen();
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}
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void Renderer::TrackSwaps(u32 xfb_addr, u32 fb_width, u32 fb_stride, u32 fb_height, u64 ticks)
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{
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if (xfb_addr && fb_width && fb_stride && fb_height)
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{
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// Update our last xfb values
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m_last_xfb_addr = xfb_addr;
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m_last_xfb_ticks = ticks;
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m_last_xfb_width = fb_width;
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m_last_xfb_stride = fb_stride;
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m_last_xfb_height = fb_height;
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}
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}
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bool Renderer::UseVertexDepthRange() const
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{
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// We can't compute the depth range in the vertex shader if we don't support depth clamp.
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if (!g_ActiveConfig.backend_info.bSupportsDepthClamp)
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return false;
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// We need a full depth range if a ztexture is used.
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if (bpmem.ztex2.op != ZTexOp::Disabled && !bpmem.zcontrol.early_ztest)
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return true;
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// If an inverted depth range is unsupported, we also need to check if the range is inverted.
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if (!g_ActiveConfig.backend_info.bSupportsReversedDepthRange && xfmem.viewport.zRange < 0.0f)
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return true;
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// If an oversized depth range or a ztexture is used, we need to calculate the depth range
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// in the vertex shader.
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return fabs(xfmem.viewport.zRange) > 16777215.0f || fabs(xfmem.viewport.farZ) > 16777215.0f;
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}
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void Renderer::DoState(PointerWrap& p)
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{
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p.Do(m_is_game_widescreen);
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p.Do(m_frame_count);
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p.Do(m_prev_efb_format);
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p.Do(m_last_xfb_ticks);
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p.Do(m_last_xfb_addr);
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p.Do(m_last_xfb_width);
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p.Do(m_last_xfb_stride);
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p.Do(m_last_xfb_height);
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g_bounding_box->DoState(p);
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if (p.IsReadMode())
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{
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m_was_orthographically_anamorphic = false;
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// This technically counts as the end of the frame
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AfterFrameEvent::Trigger();
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// re-display the most recent XFB
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g_presenter->ImmediateSwap(m_last_xfb_addr, m_last_xfb_width, m_last_xfb_stride,
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m_last_xfb_height, m_last_xfb_ticks);
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}
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#if defined(HAVE_FFMPEG)
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g_frame_dumper->DoState(p);
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#endif
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}
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