Author SHA1 Message Date
KG-access c4a98fc313 1) Figure 창 on/off 토글 추가
2) Coverage 분석 도구 추가 - 추가 검증 필요
2026-03-05 20:01:31 +09:00
KG-access f09e267fc2 Merge pull request 'RDM dBm/bin 단위 PSD 도시 기능 추가' (#1) from add_PSD_figure into main
Reviewed-on: #1
2026-03-04 22:22:55 +09:00
2 changed files with 402 additions and 34 deletions
+324
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@@ -0,0 +1,324 @@
function [snr_coverage_2d, azimuth_deg, elevation_deg, coverage_info, fig] = analyze_coverage(RadarParams, target_range_m, target_rcs_dBsm)
% Coverage : 2D SNR
%
% :
% 1) Azimuth 0, Elevation 0 SNR
% 2) SNR ()
% 3) RCS
%
% :
% - RadarParams:
% - target_range_m: (m), 100
% - target_rcs_dBsm: RCS (dBsm), 0
%
% :
% - snr_coverage_2d: 2D SNR [elevation x azimuth]
% - azimuth_deg:
% - elevation_deg:
% - coverage_info:
% - fig: figure
%%
if nargin < 2
target_range_m = 100; % : 100m
end
if nargin < 3
target_rcs_dBsm = 0; % : 0 dBsm = 1
end
%%
lambda = RadarParams.Waveform.lambda_c;
fc = RadarParams.Waveform.fc;
kb = RadarParams.Basic.kb;
T0 = RadarParams.Basic.T0;
%
TxPattern = RadarParams.Antenna.TxPattern;
RxPattern = RadarParams.Antenna.RxPattern;
NumTx = RadarParams.Antenna.NumTx;
NumRx = RadarParams.Antenna.NumRx;
%
rxPathGain_dB = RadarParams.Rxpath.rxPathGain_dB;
system_NF_dB = RadarParams.Rxpath.system_NF_dB;
% RCS ()
rcs_target = 10^(target_rcs_dBsm / 10);
%% 2D (1D -> 2D )
% ( )
az_common = -90:1:90;
el_common = -90:1:90;
[AZ_common_grid, EL_common_grid] = meshgrid(az_common, el_common);
% TX 2D로
avg_tx_gain_2d = zeros(length(el_common), length(az_common));
for tx = 1:NumTx
if isfield(TxPattern(tx), 'gain_az_dBi') % 1D
az_angles = TxPattern(tx).az_angles;
el_angles = TxPattern(tx).el_angles;
gain_az = TxPattern(tx).gain_az_dBi;
gain_el = TxPattern(tx).gain_el_dBi;
%
max_gain_az = max(gain_az);
max_gain_el = max(gain_el);
max_gain_ref = max(max_gain_az, max_gain_el);
% Normalize ( = 0 dB)
gain_az_norm = gain_az - max_gain_az;
gain_el_norm = gain_el - max_gain_el;
%
gain_az_interp = interp1(az_angles, gain_az_norm, AZ_common_grid, 'linear', 'extrap');
gain_el_interp = interp1(el_angles, gain_el_norm, EL_common_grid, 'linear', 'extrap');
% 2D로
tx_gain_2d = gain_az_interp + gain_el_interp + max_gain_ref;
else % 2D
az_angles = TxPattern(tx).az_angles;
el_angles = TxPattern(tx).el_angles;
gain_dBi = TxPattern(tx).gain_dBi;
[AZ_grid, EL_grid] = ndgrid(az_angles, el_angles);
F = scatteredInterpolant(AZ_grid(:), EL_grid(:), gain_dBi(:), 'linear', 'nearest');
tx_gain_2d = F(AZ_common_grid, EL_common_grid);
end
avg_tx_gain_2d = avg_tx_gain_2d + tx_gain_2d;
end
avg_tx_gain_2d = avg_tx_gain_2d / NumTx;
% RX 2D로 ( )
avg_rx_gain_2d = zeros(length(el_common), length(az_common));
for rx = 1:NumRx
if isfield(RxPattern(rx), 'gain_az_dBi') % 1D
az_angles = RxPattern(rx).az_angles;
el_angles = RxPattern(rx).el_angles;
gain_az = RxPattern(rx).gain_az_dBi;
gain_el = RxPattern(rx).gain_el_dBi;
%
max_gain_az = max(gain_az);
max_gain_el = max(gain_el);
max_gain_ref = max(max_gain_az, max_gain_el);
% Normalize ( = 0 dB)
gain_az_norm = gain_az - max_gain_az;
gain_el_norm = gain_el - max_gain_el;
%
gain_az_interp = interp1(az_angles, gain_az_norm, AZ_common_grid, 'linear', 'extrap');
gain_el_interp = interp1(el_angles, gain_el_norm, EL_common_grid, 'linear', 'extrap');
% 2D로
rx_gain_2d = gain_az_interp + gain_el_interp + max_gain_ref;
else % 2D
az_angles = RxPattern(rx).az_angles;
el_angles = RxPattern(rx).el_angles;
gain_dBi = RxPattern(rx).gain_dBi;
[AZ_grid, EL_grid] = ndgrid(az_angles, el_angles);
F = scatteredInterpolant(AZ_grid(:), EL_grid(:), gain_dBi(:), 'linear', 'nearest');
rx_gain_2d = F(AZ_common_grid, EL_common_grid);
end
avg_rx_gain_2d = avg_rx_gain_2d + rx_gain_2d;
end
avg_rx_gain_2d = avg_rx_gain_2d / NumRx;
%% TX
% TX
pa_profile_freq = RadarParams.RFOutput.PA_Profile.freqs;
pa_profile_power_dbm = RadarParams.RFOutput.PA_Profile.power_dBm;
ptx_dbm = interp1(pa_profile_freq, pa_profile_power_dbm, fc, 'linear', 'extrap');
ptx_w = 10^((ptx_dbm - 30) / 10);
% ( )
path_loss_factor = (4 * pi * target_range_m)^2;
rxGain_linear = 10^(rxPathGain_dB / 10);
noise_power_w = kb * T0 * RadarParams.Waveform.fs_adc;
system_NF_linear = 10^(system_NF_dB / 10);
total_noise_power_w = noise_power_w * system_NF_linear * rxGain_linear; % RX
%% SNR (2D - )
% X축: Azimuth, Y축: Elevation, Z축: SNR
azimuth_deg = -90:1:90; % X축: -90 ~ 90, 1
elevation_deg = -90:1:90; % Y축: -90 ~ 90, 1
% az_common과 elevation_deg가
% (dB)
g_tx_db_grid = avg_tx_gain_2d; % [num_el x num_az]
g_rx_db_grid = avg_rx_gain_2d; % [num_el x num_az]
%
g_tx_linear_grid = 10.^(g_tx_db_grid / 10);
g_rx_linear_grid = 10.^(g_rx_db_grid / 10);
% SNR : ( × 2D )
p_rx_w = (ptx_w * g_tx_linear_grid .* g_rx_linear_grid * (lambda^2) * rcs_target) / ((path_loss_factor^2) * (4 * pi));
p_rx_after_rxgain_w = p_rx_w * rxGain_linear;
snr_linear = p_rx_after_rxgain_w / total_noise_power_w;
snr_coverage_2d = 10 * log10(max(snr_linear, eps));
%% 1D CUT (elevation=0 Azimuth cut, azimuth=0 Elevation cut)
[~, el_idx_zero] = min(abs(elevation_deg - 0));
snr_az_cut = snr_coverage_2d(el_idx_zero, :); % elevation=0
[~, az_idx_zero] = min(abs(azimuth_deg - 0));
snr_el_cut = snr_coverage_2d(:, az_idx_zero); % azimuth=0
%% Cartesian (Range, Azimuth, Elevation -> x, y, z)
[AZ_deg_grid, EL_deg_grid] = meshgrid(azimuth_deg, elevation_deg);
x_grid_m = target_range_m .* cosd(EL_deg_grid) .* cosd(AZ_deg_grid);
y_grid_m = target_range_m .* cosd(EL_deg_grid) .* sind(AZ_deg_grid);
z_grid_m = target_range_m .* sind(EL_deg_grid);
%% Coverage
snr_2d_vec = snr_coverage_2d(:);
coverage_info.azimuth_deg = azimuth_deg;
coverage_info.elevation_deg = elevation_deg;
coverage_info.snr_coverage_2d = snr_coverage_2d;
coverage_info.snr_az_cut = snr_az_cut;
coverage_info.snr_el_cut = snr_el_cut;
coverage_info.target_range_m = target_range_m;
coverage_info.target_rcs_dBsm = target_rcs_dBsm;
coverage_info.x_grid_m = x_grid_m;
coverage_info.y_grid_m = y_grid_m;
coverage_info.z_grid_m = z_grid_m;
coverage_info.mean_snr = mean(snr_2d_vec);
coverage_info.max_snr = max(snr_2d_vec);
coverage_info.min_snr = min(snr_2d_vec);
[~, max_idx_2d] = max(snr_2d_vec);
[max_el_idx_2d, max_az_idx_2d] = ind2sub(size(snr_coverage_2d), max_idx_2d);
coverage_info.max_snr_azimuth = azimuth_deg(max_az_idx_2d);
coverage_info.max_snr_elevation = elevation_deg(max_el_idx_2d);
coverage_info.max_snr_x_m = x_grid_m(max_el_idx_2d, max_az_idx_2d);
coverage_info.max_snr_y_m = y_grid_m(max_el_idx_2d, max_az_idx_2d);
coverage_info.max_snr_z_m = z_grid_m(max_el_idx_2d, max_az_idx_2d);
%% 3D + 1D Cut
fig = figure('Name', 'Coverage Analysis - 3D + 1D Cut');
set(fig, 'Position', [100, 100, 1600, 900]);
% Subplot 1: x-SNR Cut (elevation=0)
subplot(2, 3, 1);
x_cut_m = target_range_m .* cosd(azimuth_deg);
plot(x_cut_m, snr_az_cut, 'b-', 'LineWidth', 2);
hold on;
[~, max_idx_az] = max(snr_az_cut);
plot(x_cut_m(max_idx_az), snr_az_cut(max_idx_az), 'r*', 'MarkerSize', 15, 'LineWidth', 2);
grid on;
xlabel('x (m)');
ylabel('SNR (dB)');
title('1D CUT: elevation = 0 deg');
hold off;
% Subplot 2: z-SNR Cut (azimuth=0)
subplot(2, 3, 2);
z_cut_m = target_range_m .* sind(elevation_deg);
plot(z_cut_m, snr_el_cut, 'g-', 'LineWidth', 2);
hold on;
[~, max_idx_el] = max(snr_el_cut);
plot(z_cut_m(max_idx_el), snr_el_cut(max_idx_el), 'r*', 'MarkerSize', 15, 'LineWidth', 2);
grid on;
xlabel('z (m)');
ylabel('SNR (dB)');
title('1D CUT: azimuth = 0 deg');
hold off;
% Subplot 3: x-y top view (color = SNR at elevation=0)
subplot(2, 3, 3);
x_top_m = target_range_m .* cosd(azimuth_deg);
y_top_m = target_range_m .* sind(azimuth_deg);
scatter(x_top_m, y_top_m, 45, snr_az_cut, 'filled');
axis equal;
grid on;
cb = colorbar;
ylabel(cb, 'SNR (dB)');
xlabel('x (m)');
ylabel('y (m)');
title('Top View (elevation = 0 deg)');
% Subplot 4-5: 3D Surface (geometry = x,y,z, color = SNR)
subplot(2, 3, 4:5, 'replace');
surf(x_grid_m, y_grid_m, z_grid_m, snr_coverage_2d, 'EdgeColor', 'none');
colormap(jet);
cb_3d = colorbar;
ylabel(cb_3d, 'SNR (dB)');
xlabel('x (m)');
ylabel('y (m)');
zlabel('z (m)');
title('3D Coverage in Cartesian Coordinates (Click to inspect)');
view(45, 30);
grid on;
hold on;
plot3(coverage_info.max_snr_x_m, coverage_info.max_snr_y_m, coverage_info.max_snr_z_m, 'r*', 'MarkerSize', 20, 'LineWidth', 2);
hold off;
% Datacursor mode ( )
dcm_obj = datacursormode(fig);
dcm_obj.Enable = 'on';
set(dcm_obj, 'UpdateFcn', @datatip_update_callback);
set(dcm_obj, 'SnapToDataVertex', 'on');
% Help text
fprintf('\n>>> Data Cursor Mode ENABLED <<<\n');
fprintf('Instructions:\n');
fprintf(' 1. Left-click on the 3D surface to inspect points\n');
fprintf(' 2. Tooltip shows x, y, z (m) and SNR[dB]\n');
fprintf(' 3. Press Escape or click "Disable Data Cursor" in Figure Tools to deactivate\n\n');
%% Nested function for datacursor callback
function output_txt = datatip_update_callback(~, event)
pos = event.Position;
x_val = pos(1);
y_val = pos(2);
z_val = pos(3);
dist2 = (x_grid_m - x_val).^2 + (y_grid_m - y_val).^2 + (z_grid_m - z_val).^2;
[~, nearest_idx] = min(dist2(:));
[nearest_el_idx, nearest_az_idx] = ind2sub(size(dist2), nearest_idx);
snr_val = snr_coverage_2d(nearest_el_idx, nearest_az_idx);
output_txt = {
['x: ' num2str(x_val, '%.3f') ' m']
['y: ' num2str(y_val, '%.3f') ' m']
['z: ' num2str(z_val, '%.3f') ' m']
['SNR[dB]: ' num2str(snr_val, '%.3f')]
};
end
% Subplot 6: x-z side view (azimuth=0, color=SNR)
subplot(2, 3, 6);
x_side_m = target_range_m .* cosd(elevation_deg);
z_side_m = target_range_m .* sind(elevation_deg);
scatter(x_side_m, z_side_m, 45, snr_el_cut, 'filled');
grid on;
cb_side = colorbar;
ylabel(cb_side, 'SNR (dB)');
xlabel('x (m)');
ylabel('z (m)');
title('Side View (azimuth = 0 deg)');
%
sgtitle(sprintf('3D Coverage (x,y,z) | Max SNR: %.2f dB at (%.2f, %.2f, %.2f) m', ...
coverage_info.max_snr, coverage_info.max_snr_x_m, coverage_info.max_snr_y_m, coverage_info.max_snr_z_m), 'FontSize', 12);
%%
fprintf('\n===== 3D COVERAGE ANALYSIS REPORT (Cartesian x,y,z) =====\n');
fprintf('Target Configuration:\n');
fprintf(' - Range: %.1f m\n', target_range_m);
fprintf(' - RCS: %.1f dBsm\n', target_rcs_dBsm);
fprintf(' - Analysis Angles: Azimuth ±90 deg, Elevation ±90 deg\n');
fprintf('\nSNR Statistics (Full Grid):\n');
fprintf(' - Mean SNR: %.2f dB\n', coverage_info.mean_snr);
fprintf(' - Max SNR: %.2f dB @ (x,y,z)=(%.2f, %.2f, %.2f) m\n', coverage_info.max_snr, coverage_info.max_snr_x_m, coverage_info.max_snr_y_m, coverage_info.max_snr_z_m);
fprintf(' - Min SNR: %.2f dB\n', coverage_info.min_snr);
fprintf(' - SNR Range: %.2f dB\n', coverage_info.max_snr - coverage_info.min_snr);
fprintf('\n1D CUT Statistics:\n');
fprintf(' - elevation=0 cut: Max=%.2f dB, Min=%.2f dB\n', max(snr_az_cut), min(snr_az_cut));
fprintf(' - azimuth=0 cut: Max=%.2f dB, Min=%.2f dB\n', max(snr_el_cut), min(snr_el_cut));
fprintf('System Parameters:\n');
fprintf(' - TX Power: %.2f dBm\n', ptx_dbm);
fprintf(' - RX Gain: %.1f dB\n', rxPathGain_dB);
fprintf(' - System NF: %.1f dB\n', system_NF_dB);
fprintf('=============================================\n\n');
end
+44
View File
@@ -10,6 +10,17 @@ currentFilePath = mfilename('fullpath');
currentFolder = fileparts(currentFilePath); currentFolder = fileparts(currentFilePath);
addpath(genpath(currentFolder)); addpath(genpath(currentFolder));
%% =================== ===================
% figure를 on/off .
PlotToggle.range_profile = false; % Step 8 Range Profile
PlotToggle.tx_single = false; % Figure 1 Single chirp waveform
PlotToggle.tx_multi = false; % Figure 2 Multi chirp waveform
PlotToggle.tx_antenna = false; % Figure 3 TX antenna pattern
PlotToggle.rx_antenna = false; % Figure 4 RX antenna pattern
PlotToggle.rd_map = false; % Figure 5 Range-Doppler map
PlotToggle.cfar = false; % Figure 6 CFAR detections
PlotToggle.coverage = true; % Figure 7 Coverage analysis
%% =================== =================== %% =================== ===================
% 1) % 1)
@@ -205,6 +216,7 @@ adc_digital_expanded = reshape(adc_digital, [size(adc_digital,1), 1, size(adc_di
[range_data, r_axis] = process_range_fft_lpf(adc_digital_expanded, RadarParams); [range_data, r_axis] = process_range_fft_lpf(adc_digital_expanded, RadarParams);
% step 8. Range Profile (1 , 1 ) % step 8. Range Profile (1 , 1 )
if PlotToggle.range_profile
figure('Name', 'Range Profile with Ideal LPF'); figure('Name', 'Range Profile with Ideal LPF');
plot(r_axis, 20*log10(abs(squeeze(range_data(1,1,1,:))))); plot(r_axis, 20*log10(abs(squeeze(range_data(1,1,1,:)))));
grid on; hold on; grid on; hold on;
@@ -214,6 +226,7 @@ title(['Range Profile (LPF Cut-off: ', num2str(RadarParams.Rxpath.fc_lpf/1e6), '
% LPF % LPF
xline((RadarParams.Rxpath.fc_lpf * RadarParams.Basic.c)/(2*RadarParams.Waveform.Slope), '--r', 'LPF Cut-off'); xline((RadarParams.Rxpath.fc_lpf * RadarParams.Basic.c)/(2*RadarParams.Waveform.Slope), '--r', 'LPF Cut-off');
end
% step 9. Doppler-FFT % step 9. Doppler-FFT
[rd_cube, v_axis] = process_doppler_fft(range_data, RadarParams); [rd_cube, v_axis] = process_doppler_fft(range_data, RadarParams);
@@ -232,21 +245,39 @@ idx_single = (t <= T_chirp);
t_single = t(idx_single); t_single = t(idx_single);
tx_mask_single = tx_mask(idx_single); tx_mask_single = tx_mask(idx_single);
fig_single = [];
if PlotToggle.tx_single
fig_single = visualize_tx_waveform(t_single, RadarParams.Waveform.Timing, RadarParams.Waveform.fc, RadarParams.Waveform.f_start, RadarParams.Waveform.Slope, tx_mask_single, RadarParams.Waveform.nonideal.peak_phase_error, RadarParams.Waveform.nonideal.f_ripple); fig_single = visualize_tx_waveform(t_single, RadarParams.Waveform.Timing, RadarParams.Waveform.fc, RadarParams.Waveform.f_start, RadarParams.Waveform.Slope, tx_mask_single, RadarParams.Waveform.nonideal.peak_phase_error, RadarParams.Waveform.nonideal.f_ripple);
end
% [Figure 2] 퀀 MIMO % [Figure 2] 퀀 MIMO
% (: mimoMode와 NumTx ) % (: mimoMode와 NumTx )
fig_multi = [];
if PlotToggle.tx_multi
fig_multi = visualize_multi_tx_waveform(t, RadarParams.Waveform.Timing, RadarParams.Waveform.fc, RadarParams.Waveform.f_start, RadarParams.Waveform.Slope, tx_mask, NumChirps, RadarParams.Waveform.mimoMode, NumTx); fig_multi = visualize_multi_tx_waveform(t, RadarParams.Waveform.Timing, RadarParams.Waveform.fc, RadarParams.Waveform.f_start, RadarParams.Waveform.Slope, tx_mask, NumChirps, RadarParams.Waveform.mimoMode, NumTx);
end
% --- [ Figure 3, 4: ] --- % --- [ Figure 3, 4: ] ---
% 'TX' 'RX' . % 'TX' 'RX' .
fig_tx_ant = [];
if PlotToggle.tx_antenna
fig_tx_ant = visualize_antenna_pattern(TxPattern, 'TX'); fig_tx_ant = visualize_antenna_pattern(TxPattern, 'TX');
end
fig_rx_ant = [];
if PlotToggle.rx_antenna
fig_rx_ant = visualize_antenna_pattern(RxPattern, 'RX'); fig_rx_ant = visualize_antenna_pattern(RxPattern, 'RX');
end
% [Figure 5] Range-Doppler Map (NumRx NCI RDM) % [Figure 5] Range-Doppler Map (NumRx NCI RDM)
fig_rd_map = [];
if PlotToggle.rd_map
fig_rd_map = visualize_rd_map_with_spurs(target_rd_map, r_axis, v_axis, Target, RadarParams.SpurParams, RadarParams, RadarParams.Waveform.Slope); fig_rd_map = visualize_rd_map_with_spurs(target_rd_map, r_axis, v_axis, Target, RadarParams.SpurParams, RadarParams, RadarParams.Waveform.Slope);
end
% [Figure 6] CFAR (2D MAP ) % [Figure 6] CFAR (2D MAP )
fig_cfar = [];
if PlotToggle.cfar
fig_cfar = figure('Name', 'CFAR Detections on NCI RDM'); fig_cfar = figure('Name', 'CFAR Detections on NCI RDM');
imagesc(r_axis, v_axis, 20*log10(abs(target_rd_map))); imagesc(r_axis, v_axis, 20*log10(abs(target_rd_map)));
axis xy; axis xy;
@@ -266,6 +297,19 @@ if ~isempty(cfar_detections)
end end
hold off; hold off;
end
% ================= Coverage Analysis (Performance Analysis) =================
% [Figure 7] Angular Coverage : 2D SNR
% 100m, RCS 0 dBsm SNR
snr_coverage_2d = [];
azimuth_deg = [];
elevation_deg = [];
coverage_info = [];
fig_coverage = [];
if PlotToggle.coverage
[snr_coverage_2d, azimuth_deg, elevation_deg, coverage_info, fig_coverage] = analyze_coverage(RadarParams, 10, 0);
end