Update BlockRIP experiment

This commit is contained in:
Ksyer
2024-01-27 20:58:09 +08:00
parent 8f965c1466
commit c2e23b4fbf
5 changed files with 169 additions and 0 deletions
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N = 128; % 脉冲个数
M = 1; % 频点个数
K = 10; % 目标个数
d = 32;
epsilon = 1e-5; % 误差
f_c = 10e9; % 初始载频 10GHz
Delta_f = 8e6; % 载频步进间隔 8MHz
% c = 299792458; % 光速
c = 3e8;
scatter_coef = 0.3; % 目标散射强度
B = 64e6; % 带宽 64MHz
% B_0 = 1e9;
f_s = 3 * f_c; % 快时间采样率
T_p = 10 / f_s; % 单载频脉冲下的采样周期 / 脉冲宽度
T_r = T_p * 10;
r_0 = 1; % 初始距离 r(0)
velocity = 5e5; % 目标速度(假设目标做匀速直线运动)
lambda = c / f_c; % 雷达工作波长
% 仿真时间
delta_t = 1e-3 * T_p;
max_t = 30 * T_r;
range_t = 0:delta_t:max_t-delta_t;
len = length(range_t);
% 绘图
figure_flag_1 = false;
figure_flag_2 = false;
figure_flag_3 = false;
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filename = "/Users/ksyer/CLionProjects/BlockRIP/cmake-build-debug/1.txt";
df = dlmread(filename);
x = df(:, 1);
y = df(:, 2);
scatter(x, y);
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%
M = 200;
N = 1e12;
P = N / M;
s = 10;
epsilon = 1e-5;
x = 22:0.2:30;
N = zeros(size(x));
P = zeros(size(x));
sigma = zeros(size(x));
for i = 1: length(x)
N(i) = 10^x(i);
P(i) = N(i) / M;
ita_1_lb = sqrt(172.24 * 32.0 * s * (log(4 * s) ^ 2) * log(8 * N(i)) * log(9 * P(i)) / P(i));
ita_2_lb = sqrt(32.0 / 3.0 * s * (-log(epsilon)) / P(i));
sigma(i) = ita_1_lb * (1 + ita_1_lb) + ita_2_lb;
end
semilogx(P, sigma);
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% 仿真入口,确定 N 和 s 后,通过遍历 eta_1 和 eta_2 来计算出 P
% 设置用于遍历 eta 的参数
eta_1_step = 1e-2;
eta_2_step = 1e-8;
eta_1_start = eta_1_step;
eta_2_start = eta_2_step;
eta_1_end = (sqrt(5) - 1) / 2; % 大于这个值时,eta_1 ^2 + eta_1 必定会大于 1
eta_2_end = 1e-3;
eta_1 = eta_1_start:eta_1_step:eta_1_end;
eta_2 = eta_2_start:eta_2_step:eta_2_end;
eta_1_N = length(eta_1);
eta_2_N = length(eta_2);
N = 1e14;
s = 10;
epsilon = 1e-5;
C_1 = 5576;
C_2 = 10.66;
result = zeros(eta_1_N, eta_2_N);
metric_1 = zeros(eta_1_N, 1);
metric_2 = zeros(eta_2_N, 1);
for i = 1:eta_1_N
metric_1(i) = (C_1 * s * (log(4*s))^2 * log(8*N)) / (eta_1(i) ^ 2);
end
for j = 1:eta_2_N
metric_2(j) = (C_2 * s * log(epsilon^-1)) / (eta_2(j) ^ 2);
end
sigmas = zeros(eta_1_N, 1 * eta_2_N);
results = zeros(eta_1_N, 1 * eta_2_N);
k = 0;
d = 1e2;
for i = 1:eta_1_N
for j = 1:eta_2_N
sigma = eta_1(i) * (1 + eta_1(i)) + eta_2(j);
if sigma > 1
continue
end
sigmas(i, j) = sigma;
k = k + 1;
m1 = metric_1(i);
m2 = metric_2(j);
m = solve_test(m1);
if m1 < m2
m = max(m, m2);
end
if m > N
results(i, j) = 0;
else
results(i, j) = N / m;
end
end
end
figure;
% semilogy(sigmas, results);
h = heatmap(results);
h.GridVisible = false;
ax = gca;
xn = length(ax.XDisplayLabels);
yn = length(ax.YDisplayLabels);
for i = 1:length(ax.XDisplayLabels)
% if rem(i, rem(xn, 10)) ~= 0
% ax.XDisplayLabels(i) = {nan};
% end
end
for i = 1:length(ax.YDisplayLabels)
% if rem(i, rem(yn, 10)) ~= 0
% ax.YDisplayLabels(i) = {nan};
% end
end
% heatmap(result);
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% 由于函数单调,因此可以用二分法求 x/log(9x) = k 的解
function result = solve_test(k)
eps = 1e-3;
l = 1;
r = k;
while r - l > eps
mid = (l+r) / 2;
if (foo(mid) < foo(r))
l = mid;
else
r = mid;
end
end
result = l;
end
function f = foo(x)
f = x / log(9 * x);
end