467 lines
20 KiB
C++
467 lines
20 KiB
C++
#include "Gallery_Scene2D.h"
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#include "../Gallery_Capture_Json.h"
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#include "../common/Observer_Json.h"
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#include "../Pixel_Frame.h"
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#include "render_2D/axis/Axis.h"
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#include "render_2D/axis/Frequency_Axis.h"
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#include "render_2D/axis/Time_Axis.h"
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#include "render_2D/plottable/Afterglow.h"
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#include "render_2D/plottable/Constellation_Diagram.h"
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#include "render_2D/plottable/Frequency_Trace.h"
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#include "render_2D/plottable/Selection_Rectangle_Overlay.h"
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#include "render_2D/plottable/Spectrum.h"
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#include "render_2D/plottable/Sweep_Spectrum.h"
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#include "render_2D/plottable/Waterfall.h"
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#include "render_2D/scene/Render_Scene_2D.h"
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#include <algorithm>
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#include <chrono>
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#include <cmath>
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#include <memory>
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#include <numbers>
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#include <span>
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#include <string>
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#include <vector>
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namespace renderive::web {
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template <>
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struct Observer_Pfr_Adapter<Render_Scene_2D::State> {
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using Type = adminive::Boost_Pfr_Base_Reflection_Adapter<
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Render_Scene_2D::State, Render_Scene_2D::State_Fields>;
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};
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template <>
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struct Observer_Pfr_Adapter<Render_Scene_2D::Observer> {
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using Type = adminive::Boost_Pfr_Base_Reflection_Adapter<
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Render_Scene_2D::Observer, Render_Scene_2D::Observer_Fields>;
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};
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namespace {
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constexpr std::size_t sweep_bins_per_block = 64;
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constexpr std::size_t sweep_block_count = 8;
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std::shared_ptr<Frame_Control_Strategy_Base> make_strategy(
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Gallery_Frame_Mode mode) {
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switch (mode) {
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case Gallery_Frame_Mode::Manual:
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return std::make_shared<Manual_Render_Scene_2D_Strategy>();
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case Gallery_Frame_Mode::Low_Latency:
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return std::make_shared<Low_Latency_Render_Scene_2D_Strategy>();
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case Gallery_Frame_Mode::Playback:
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return std::make_shared<Playback_Render_Scene_2D_Strategy>();
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}
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return {};
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}
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std::string_view mode_id(Gallery_Frame_Mode mode) {
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switch (mode) {
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case Gallery_Frame_Mode::Manual: return "manual";
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case Gallery_Frame_Mode::Low_Latency: return "low_latency";
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case Gallery_Frame_Mode::Playback: return "playback";
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}
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return "low_latency";
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}
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Time_Of_Day current_time_of_day() {
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constexpr std::int64_t day_ms = 24LL * 60LL * 60LL * 1000LL;
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const auto now = std::chrono::duration_cast<std::chrono::milliseconds>(
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std::chrono::system_clock::now().time_since_epoch())
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.count();
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return {now % day_ms};
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}
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class Gallery_Scene2D final : public Gallery_Scene_Interface {
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public:
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Gallery_Scene2D(std::string case_id, Gallery_Frame_Mode mode,
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bool automatic)
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: case_id_(std::move(case_id)), mode_(mode), automatic_(automatic) {
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rebuild();
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}
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~Gallery_Scene2D() override {
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if (scene_) scene_->deactivate_view();
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}
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const std::string& case_id() const noexcept override { return case_id_; }
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nlohmann::json controls() const override {
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return {{"resources", nlohmann::json::array()},
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{"observers", nlohmann::json::array()},
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{"render_plan", gallery_render_plan_json(*scene_)},
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{"performance_capture",
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gallery_performance_capture_json(*scene_)}};
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}
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Gallery_Frame_Mode frame_mode() const noexcept override { return mode_; }
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void reset_monitoring() override { render_count_ = 0; }
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bool can_render_automatically() const noexcept override {
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return automatic_ && mode_ == Gallery_Frame_Mode::Low_Latency;
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}
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std::uint64_t kernel_refresh_interval_ns() const override {
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return scene_->observer().next_refresh_interval_ns;
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}
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void set_client_metrics(Gallery_Client_Performance metrics) noexcept override {
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client_ = metrics;
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}
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adminive::Update_Result apply_patch(
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std::string_view, const nlohmann::json&) override {
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return {false, "no editable resource matches the requested target"};
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}
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void resize(int width, int height) override {
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const Size requested{std::max(1, width), std::max(1, height)};
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if (requested == viewport_) return;
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viewport_ = requested;
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rebuild();
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}
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void dispatch(const Gallery_Input_Event& event) override {
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std::visit([this](const auto& value) {
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using T = std::decay_t<decltype(value)>;
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if constexpr (std::same_as<T, Gallery_View_Input>) {
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if (value.type == Gallery_View_Input_Type::Show)
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scene_->activate_view();
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else if (value.type == Gallery_View_Input_Type::Hide)
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scene_->deactivate_view();
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}
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}, event);
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}
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Gallery_Render_Result render_latest_frame() override {
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update_samples();
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const auto result = scene_->render_frame(true);
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if (!result) return Gallery_Render_Result::backend_failure;
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if (*result == Plot_Render_Status::view_inactive)
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return Gallery_Render_Result::inactive;
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if (*result != Plot_Render_Status::rendered)
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return Gallery_Render_Result::frame_unavailable;
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if (scene_->wait_for_render() != Scene_Render_Result::none)
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return Gallery_Render_Result::backend_failure;
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++render_count_;
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return Gallery_Render_Result::none;
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}
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std::optional<std::string> encode_latest_pixels() override {
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std::string result;
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scene_->with_frame([&](Image_View image) {
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result = encode_pixel_frame(image, render_count_);
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});
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if (result.empty()) return std::nullopt;
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return result;
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}
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void record_pixel_response(std::chrono::steady_clock::time_point,
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std::chrono::steady_clock::time_point,
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std::chrono::steady_clock::time_point,
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std::size_t) override {}
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std::string action(const Gallery_Action_Request& request,
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bool& recognized) override {
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recognized = true;
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if (request.id == "frame_strategy_manual" ||
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request.id == "frame_strategy_low_latency" ||
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request.id == "frame_strategy_playback") {
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const auto next = request.id == "frame_strategy_manual"
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? Gallery_Frame_Mode::Manual
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: request.id == "frame_strategy_playback"
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? Gallery_Frame_Mode::Playback
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: Gallery_Frame_Mode::Low_Latency;
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const auto operation = scene_->edit_renderables(
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[strategy = make_strategy(next)](
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Scene_2D_Base::Renderable_Editor& editor) mutable {
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editor.replace_frame_control_strategy(std::move(strategy));
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});
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if (operation.wait() != Scene_Edit_Error::none)
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return "frame strategy replacement rejected";
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mode_ = next;
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return "frame strategy replaced";
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}
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if (request.id == "mode_cycle" || request.id == "mode_render") {
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static_cast<void>(render_latest_frame());
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return "frame rendered";
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}
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if (request.id == "capture_next_frame") {
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const auto capture = scene_->capture_next_frame();
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if (capture) static_cast<void>(render_latest_frame());
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return capture ? "frame captured" : "capture request rejected";
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}
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if (request.id == "capture_frames") {
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std::size_t count = 20;
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if (request.argument && std::holds_alternative<double>(*request.argument))
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count = static_cast<std::size_t>(std::clamp(
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std::get<double>(*request.argument), 1.0, 1000.0));
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const auto capture = scene_->capture_frames(count);
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if (capture) static_cast<void>(render_latest_frame());
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return capture ? "frame capture started" : "capture request rejected";
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}
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recognized = false;
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return {};
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}
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void record_action_notice_if_empty(std::string_view) override {}
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std::string telemetry_json() const override {
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const auto observer = scene_->observer();
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auto kernel_observer = observer_json(observer);
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kernel_observer["mode"] = mode_id(mode_);
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kernel_observer["event"] = "render_completed";
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kernel_observer["limit"] = "none";
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return nlohmann::json{
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{"kernel_observer", std::move(kernel_observer)},
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{"performance", {{"successful_render_count", render_count_}}},
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{"client_performance", {{"transport_fps", client_.transport_fps}}},
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{"performance_capture", gallery_performance_capture_json(*scene_)}}
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.dump();
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}
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private:
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template <class Product, class... Arguments>
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static renderive_Owner<Product> build(
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typename Product::Builder& builder, Arguments&&... arguments) {
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return static_cast<Renderable_Builder<Product, typename Product::State>&>(
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builder)
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.build(std::forward<Arguments>(arguments)...);
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}
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void rebuild() {
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Render_Scene_2D::State scene_state;
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scene_state.viewport = viewport_;
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scene_state.background = Color{3, 8, 14, 255};
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scene_ = Render_Scene_2D::Builder{scene_state}.build(
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make_strategy(mode_));
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{
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auto attach = scene_->attach_builder();
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const auto root = scene_->root_renderable();
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const bool numeric_domain =
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case_id_ == "sweep_spectrum" || case_id_ == "constellation";
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const bool time_domain = case_id_ == "frequency_trace";
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const int left = 62;
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const int top = 18;
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const auto width = static_cast<std::size_t>(
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std::max(1, viewport_.width - 86));
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const auto height = static_cast<std::size_t>(
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std::max(1, viewport_.height - 64));
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if (time_domain || case_id_ == "waterfall" || case_id_ == "axis_lab") {
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Time_Axis::State state;
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state.orientation = time_domain || case_id_ == "axis_lab"
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? Orientation::Horizontal
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: Orientation::Vertical;
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state.visible_count = 80;
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state.x = left;
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state.y = state.orientation == Orientation::Horizontal
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? top + static_cast<int>(height)
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: top;
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state.pixel_length =
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state.orientation == Orientation::Horizontal ? width : height;
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state.color = Color{69, 221, 190, 255};
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Time_Axis::Builder builder{state, &attach};
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time_axis_ = build<Time_Axis>(builder, root);
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time_axis_->set_object_name("Time Axis");
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}
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if (!time_domain && !numeric_domain) {
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Frequency_Axis::State state;
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state.orientation = Orientation::Horizontal;
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state.coordinates = Range{88'000'000.0, 108'000'000.0};
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state.x = left;
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state.y = top + static_cast<int>(height);
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state.pixel_length = width;
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state.color = Color{118, 145, 184, 255};
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state.wheel = true;
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state.drag = true;
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Frequency_Axis::Builder builder{state, &attach};
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frequency_axis_ = build<Frequency_Axis>(builder, root);
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frequency_axis_->set_object_name("Frequency Axis");
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} else if (numeric_domain) {
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Axis::State state;
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state.orientation = Orientation::Horizontal;
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state.coordinates = case_id_ == "constellation"
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? Range{-1.25, 1.25}
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: Range{0.0, 300.0};
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state.x = left;
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state.y = top + static_cast<int>(height);
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state.pixel_length = width;
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state.color = Color{118, 145, 184, 255};
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state.wheel = true;
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state.drag = true;
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Axis::Builder builder{state, &attach};
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domain_axis_ = build<Axis>(builder, root);
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domain_axis_->set_object_name("Domain Axis");
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}
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if (case_id_ != "waterfall") {
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Axis::State state;
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state.orientation = Orientation::Vertical;
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state.coordinates = case_id_ == "constellation"
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? Range{-1.25, 1.25}
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: time_domain ? Range{-1.0, 1.0}
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: Range{-120.0, -20.0};
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state.x = left;
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state.y = top;
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state.pixel_length = height;
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state.color = Color{118, 145, 184, 255};
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Axis::Builder builder{state, &attach};
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value_axis_ = build<Axis>(builder, root);
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value_axis_->set_object_name("Value Axis");
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}
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if (case_id_ == "spectrum" || case_id_ == "selection_overlay") {
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Spectrum::State state;
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state.frequency_range = {88'000'000.0, 108'000'000.0};
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state.frequency_point_size = 512;
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state.center_frequency = 98'000'000.0;
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state.max_hold_visible = true;
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state.current_pen = {Color{53, 230, 178, 255}, 2.0};
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state.max_pen = {Color{255, 209, 102, 255}, 1.2};
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state.min_pen = {Color{122, 162, 255, 255}, 1.2};
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Spectrum::Builder builder{state, &attach};
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spectrum_ = build<Spectrum>(
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builder, root, frequency_axis_, value_axis_);
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spectrum_->set_object_name("Spectrum");
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if (case_id_ == "selection_overlay") {
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Selection_Rectangle_Overlay::State overlay_state;
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overlay_state.selection_brush =
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{Color{23, 59, 102, 90}, Brush_Style::Solid};
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Selection_Rectangle_Overlay::Builder overlay_builder{
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overlay_state, &attach};
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selection_ = build<Selection_Rectangle_Overlay>(
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overlay_builder, root, frequency_axis_, value_axis_);
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selection_->set_object_name("Selection Overlay");
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}
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} else if (case_id_ == "waterfall") {
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Waterfall::State state;
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state.frequency_range = {88'000'000.0, 108'000'000.0};
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state.power_range = {-120.0, -20.0};
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state.frequency_bin_count = 256;
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Waterfall::Builder builder{state, &attach};
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waterfall_ = build<Waterfall>(
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builder, root, frequency_axis_, time_axis_);
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waterfall_->set_object_name("Waterfall");
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} else if (case_id_ == "afterglow") {
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Afterglow::State state;
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state.frequency_range = {88'000'000.0, 108'000'000.0};
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state.power_range = {-120.0, -20.0};
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state.frequency_point_size = 192;
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state.power_point_size = 96;
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state.attenuation_rate = 0.18;
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Afterglow::Builder builder{state, &attach};
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afterglow_ = build<Afterglow>(
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builder, root, frequency_axis_, value_axis_);
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afterglow_->set_object_name("Afterglow");
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} else if (case_id_ == "sweep_spectrum") {
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Sweep_Spectrum::State state;
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state.frequency_range = {0.0, 300.0};
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state.bins_per_block = static_cast<int>(sweep_bins_per_block);
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state.block_count = static_cast<int>(sweep_block_count);
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Sweep_Spectrum::Builder builder{state, &attach};
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sweep_ = build<Sweep_Spectrum>(
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builder, root, domain_axis_, value_axis_);
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sweep_->set_object_name("Sweep Spectrum");
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} else if (case_id_ == "frequency_trace") {
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Frequency_Trace::State state;
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state.pen = {Color{53, 230, 178, 255}, 2.0};
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Frequency_Trace::Builder builder{state, &attach};
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trace_ = build<Frequency_Trace>(
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builder, root, time_axis_, value_axis_);
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trace_->set_object_name("Frequency Trace");
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} else if (case_id_ == "constellation") {
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Constellation_Diagram::State state;
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state.i_range = {-1.25, 1.25};
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state.q_range = {-1.25, 1.25};
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state.point_color = Color{73, 230, 195, 255};
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state.anchor_color = Color{255, 209, 102, 255};
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Constellation_Diagram::Builder builder{state, &attach};
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constellation_ = build<Constellation_Diagram>(
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builder, root, domain_axis_, value_axis_);
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constellation_->set_object_name("Constellation Diagram");
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}
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}
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scene_->activate_view();
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update_samples();
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static_cast<void>(scene_->render_frame(true));
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static_cast<void>(scene_->wait_for_render());
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}
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void update_samples() {
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const std::size_t count =
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waterfall_ ? 256U :
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afterglow_ ? 192U :
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sweep_ ? sweep_bins_per_block * sweep_block_count : 512U;
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std::vector<double> values(count);
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const std::uint64_t sample_sequence = sample_sequence_++;
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const std::uint64_t time_sequence = sweep_
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? sample_sequence / sweep_block_count * sweep_block_count
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: sample_sequence;
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const double time = static_cast<double>(time_sequence) * 0.075;
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for (std::size_t index = 0; index < count; ++index) {
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const double x = static_cast<double>(index) / (count - 1);
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const auto gaussian = [](double value, double center, double width) {
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const double normalized = (value - center) / width;
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return std::exp(-0.5 * normalized * normalized);
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};
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values[index] = std::clamp(
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-112.0 + std::sin(index * 0.31 + time) * 3.5 +
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62.0 * gaussian(x, 0.31 + std::sin(time) * 0.025, 0.025) +
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43.0 * gaussian(x, 0.58, 0.06) +
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30.0 * gaussian(x, 0.79, 0.015),
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-120.0, -20.0);
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}
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if (spectrum_) spectrum_->update_samples(values);
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if (waterfall_) waterfall_->append_row(current_time_of_day(), values);
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if (afterglow_) afterglow_->append_spectrum(values);
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if (sweep_) {
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const std::size_t block_index = static_cast<std::size_t>(
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sample_sequence % sweep_block_count);
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const std::size_t first = block_index * sweep_bins_per_block;
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sweep_->append_block(std::span<const double>(
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values.data() + first, sweep_bins_per_block));
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}
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if (trace_) trace_->append_sample(current_time_of_day(), std::sin(time));
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if (constellation_) {
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constexpr std::size_t symbol_count =
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static_cast<std::size_t>(Constellation_Diagram_Type::Psk8);
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const std::size_t symbol_index = sample_sequence % symbol_count;
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const double phase = 2.0 * std::numbers::pi *
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static_cast<double>(symbol_index) /
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static_cast<double>(symbol_count);
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const double i_noise =
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std::sin(time * 17.0 + static_cast<double>(symbol_index) * 0.73) * 0.04;
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const double q_noise =
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std::cos(time * 19.0 + static_cast<double>(symbol_index) * 1.11) * 0.04;
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constellation_->append_point(
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{std::cos(phase) + i_noise, std::sin(phase) + q_noise});
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}
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}
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std::string case_id_;
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Gallery_Frame_Mode mode_;
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bool automatic_{};
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Size viewport_{560, 320};
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std::unique_ptr<Render_Scene_2D> scene_;
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renderive_Owner<Frequency_Axis> frequency_axis_;
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renderive_Owner<Axis> domain_axis_;
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renderive_Owner<Axis> value_axis_;
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renderive_Owner<Time_Axis> time_axis_;
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renderive_Owner<Spectrum> spectrum_;
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renderive_Owner<Waterfall> waterfall_;
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renderive_Owner<Afterglow> afterglow_;
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renderive_Owner<Sweep_Spectrum> sweep_;
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renderive_Owner<Frequency_Trace> trace_;
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renderive_Owner<Selection_Rectangle_Overlay> selection_;
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renderive_Owner<Constellation_Diagram> constellation_;
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Gallery_Client_Performance client_;
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std::uint64_t render_count_{};
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std::uint64_t sample_sequence_{};
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};
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} // namespace
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std::unique_ptr<Gallery_Scene_Interface> make_gallery_scene_2d(
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std::uint64_t, std::string case_id, Gallery_Frame_Mode mode,
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bool automatic_low_latency) {
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return std::make_unique<Gallery_Scene2D>(
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|
std::move(case_id), mode, automatic_low_latency);
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}
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} // namespace renderive::web
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