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imdd_silas/projects/WDM/plot_BER_vs_ROP.m
silas (home) dd6094d51e chirped WDM analsyis
minor stuff in FSO link with Magnus
2026-01-12 08:12:42 +01:00

199 lines
5.2 KiB
Matlab

%% =========================
% Routine A: BER vs ROP plots
%% =========================
function S = plot_BER_vs_ROP(res, varargin)
% S = plot_BER_vs_ROP(res, 'fec', 3.8e-3, 'eval_list', [], 'colormap', 'Spectral')
%
% Creates one BER-vs-ROP figure per evaluated distance.
% Returns S struct with FEC crossings: S.Sffe, S.Sdfe, S.Svnle, S.Smlse, S.Sdbt
%
% res.* assumed: res.ffe{ch,rop,realiz,eval_distance} etc.
p = inputParser;
p.addParameter('fec', 3.8e-3, @(x)isnumeric(x)&&isscalar(x));
p.addParameter('eval_list', [], @(x)isnumeric(x));
p.addParameter('colormap', 'Spectral', @(x)ischar(x) || isstring(x));
p.parse(varargin{:});
fec = p.Results.fec;
% -------------------- Basic metadata --------------------
rop = res.settings.rop(:);
wavelengthplan = res.settings.wavelengthplan(:);
distances = res.eval_dist_km(:);
N_ch = numel(wavelengthplan);
N_rop = numel(rop);
% -------------------- Determine dims robustly --------------------
dims = size(res.ffe);
if numel(dims) < 4, dims(end+1:4) = 1; end
N_distances = dims(4);
if numel(distances) ~= N_distances
distances = (1:N_distances).';
end
% -------------------- Choose eval distances --------------------
eval_list = p.Results.eval_list;
if isempty(eval_list)
eval_list = 1:N_distances;
end
% -------------------- Colors --------------------
try
cols = cbrewer2(char(p.Results.colormap), N_ch);
catch
cols = linspecer(N_ch);
end
% -------------------- Crossings containers --------------------
S = struct();
S.rop = rop;
S.wavelengthplan = wavelengthplan;
S.distances = distances;
S.fec = fec;
S.Sffe = cell(N_distances, N_ch);
S.Sdfe = cell(N_distances, N_ch);
S.Svnle = cell(N_distances, N_ch);
S.Smlse = cell(N_distances, N_ch);
S.Sdbt = cell(N_distances, N_ch);
% -------------------- Plot per distance --------------------
for eval_ptr = eval_list
figure('Name', sprintf('BER vs ROP @ %s', distLabel(distances, eval_ptr)));
hold on;
for ch = 1:N_ch
% Extract cell slices
ffe_cells = sliceCells4D(res.ffe , ch, eval_ptr, N_rop);
dfe_cells = sliceCells4D(res.dfe , ch, eval_ptr, N_rop);
vnle_cells = sliceCells4D(res.vnle, ch, eval_ptr, N_rop);
mlse_cells = sliceCells4D(res.mlse, ch, eval_ptr, N_rop);
dbt_cells = sliceCells4D(res.dbt , ch, eval_ptr, N_rop);
% Crossings (only depends on cells)
[S.Sffe{eval_ptr,ch}, ~] = fecCrossings(rop, ffe_cells, fec);
[S.Sdfe{eval_ptr,ch}, ~] = fecCrossings(rop, dfe_cells, fec);
[S.Svnle{eval_ptr,ch}, ~] = fecCrossings(rop, vnle_cells, fec);
[S.Smlse{eval_ptr,ch}, ~] = fecCrossings(rop, mlse_cells, fec);
[S.Sdbt{eval_ptr,ch}, ~] = fecCrossings(rop, dbt_cells, fec);
% BER matrices (complete realizations only)
ffe_mat = extractCompleteBER(ffe_cells); % N_rop x K
if ~isempty(ffe_mat)
plot(rop, ffe_mat, 'Color', cols(ch,:), ...
'DisplayName', sprintf('FFE @ %dnm', round(wavelengthplan(ch))));
end
end
set(gca,'XScale','linear','YScale','log', ...
'TickLabelInterpreter','latex','FontSize',11);
yline([3.8e-3, 2.2e-4], 'HandleVisibility','off','LineWidth',1.5);
ylabel('BER');
xlabel('ROP [dB]');
title(sprintf('BER vs. ROP @ %s', distLabel(distances, eval_ptr)));
xlim([min(rop) max(rop)]);
ylim([1e-5 0.3]);
grid on;
legend show;
beautifyBERplot;
end
end
%% =========================
% Shared helpers (unchanged)
%% =========================
function cells2D = sliceCells4D(C4, ch, eval_ptr, N_rop)
dims = size(C4);
if numel(dims) < 4, dims(end+1:4) = 1; end
N_realiz = dims(3);
cells2D = cell(N_rop, N_realiz);
chMax = dims(1);
ropMax = dims(2);
rMax = dims(3);
eMax = dims(4);
if ch > chMax || eval_ptr > eMax
return;
end
ropUse = min(N_rop, ropMax);
rUse = min(N_realiz, rMax);
tmp = squeeze(C4(ch, 1:ropUse, 1:rUse, eval_ptr));
tmp = reshape(tmp, ropUse, rUse);
cells2D(1:ropUse, 1:rUse) = tmp;
end
function lbl = distLabel(distances, eval_ptr)
if eval_ptr <= numel(distances)
d = distances(eval_ptr);
if isfinite(d)
lbl = sprintf('%.0f km', d);
return;
end
end
lbl = sprintf('eval\\_%d', eval_ptr);
end
function [S, noCrossingMask] = fecCrossings(rop, cellsNxR, fec)
Y = extractCompleteBER(cellsNxR);
if isempty(Y)
S = [];
noCrossingMask = [];
return;
end
ok = mean(Y,1,'omitnan') <= 0.1;
Y = Y(:, ok);
if isempty(Y)
S = [];
noCrossingMask = [];
return;
end
nR = size(Y,2);
S = nan(1,nR);
noCrossingMask = true(1,nR);
rop = rop(:);
for j = 1:nR
y = Y(:,j);
above = (y > fec);
idx = find(above(1:end-1) & ~above(2:end), 1, 'first');
if ~isempty(idx)
x1 = rop(idx); y1 = y(idx);
x2 = rop(idx+1); y2 = y(idx+1);
if isfinite(y1) && isfinite(y2) && y2 ~= y1
t = (fec - y1) / (y2 - y1);
S(j) = x1 + t*(x2 - x1);
noCrossingMask(j) = false;
end
end
end
end
function Y = extractCompleteBER(cellSlice)
if isempty(cellSlice), Y = []; return; end
nR = size(cellSlice,2);
keep = false(1,nR);
for r = 1:nR
col = cellSlice(:,r);
keep(r) = all(cellfun(@(c) ~isempty(c), col));
end
if ~any(keep), Y = []; return; end
Y = cellfun(@(c) c.metrics.BER, cellSlice(:,keep), 'UniformOutput', true);
end