function [ R rho theta ] = radonmatrix(drho, dtheta, M, N)
% radonmatrix - Discrete Radon Trasnform matrix
%
% SYNOPSIS
% [ R rho theta ] = radonmatrix(drho, dtheta, M, N)
%
% DESCRIPTION
% Returns a matrix representation of a Discrete Radon
% Transform (DRT).
%
% INPUT
% drho Radial spacing the the DRT.
% dtheta Angular spacing of the DRT (rad).
% M Number of rows in the image.
% N Number of columns in the image.
%
% OUTPUT
% R LP x MN DRT matrix. The values of the L and
% P will depend on the radial and angular spacings.
% rho Vector of radial sample locations.
% theta Vector of angular sample locations (rad).
%
% For each angle, we define a set of rays parameterized
% by rho. We then find the pixels on the MxN grid that
% are closest to each line. The elements in R corresponding
% to those pixels are given the value of 1.
% The maximum extent of the region of support. It's for
% rho = 0 and theta = pi/4, the line that runs caddy-corner.
W = sqrt(M^2 + N^2);
rho = -W/2 : drho : W/2;
theta = 0 : dtheta : 180 - dtheta;
L = length(rho);
P = length(theta);
R = false(L*P, M*N);
% Define a meshgrid w/ (0,0) in the middle that
% we can use a standard coordinate system.
[ mimg nimg ] = imggrid(1, 1, [ M N ]);
% We loop over each angle and define all of the lines.
% We then just figure out which indices each line goes
% through and put a 1 there.
for ii = 1 : P
phi = theta(ii) * pi/180;
% The equaiton is rho = m * sin(phi) + n * cos(phi).
% We either define a vector for m and solve for n
% or vice versa. We chose which one based on angle
% so that we never g4et close to dividing by zero.
if(phi >= pi/4 && phi <= 3*pi/4)
t = -W : min(1/sqrt(2), 1/abs(cot(phi))) : +W;
T = length(t);
rhom = repmat(rho(:), 1, T);
tn = repmat(t(:)', L, 1);
mline = (rhom - tn * cos(phi)) ./ sin(phi);
for jj = 1 : L
p = round(tn(jj,:) - min(nimg)) + 1;
q = round(mline(jj,:) - min(mimg)) + 1;
inds = p >= 1 & p <= N & q >= 1 & q <= M;
R((ii-1)*L + jj, unique(sub2ind([ M N ], q(inds), p(inds)))) = 1;
end
else
t = -W : min(1/sqrt(2), 1/abs(tan(phi))) : +W;
T = length(t);
rhon = repmat(rho(:)', T, 1);
tm = repmat(t(:), 1, L);
nline = (rhon - tm * sin(phi)) ./ cos(phi);
for jj = 1 : L
p = round(nline(:,jj) - min(nimg)) + 1;
q = round(tm(:,jj) - min(mimg)) + 1;
inds = p >= 1 & p <= N & q >= 1 & q <= M;
R((ii-1)*L + jj, unique(sub2ind([ M N ], q(inds), p(inds)))) = 1;
end
end
end
R = double(sparse(R));
return;
ऊपर दिए गए imggrid फ़ंक्शन का उपयोग किया गया है।
function [ m n ] = imggrid(dm, dn, sz)
% imggrid -- Returns rectilinear coordinate vectors
%
% SYNOPSIS
% [ m n ] = imggrid(dm, dn, sz)
%
% DESCRIPTION
% Given the sample spacings and the image size, this
% function returns the row and column coordinate vectors
% for the image. Both vectors are centered about zero.
%
% INPUT
% dm Spacing between rows.
% dn Spacing between columns.
% sz 2x1 vector of the image size: [ Nrows Ncols ].
%
% OUTPUT
% m sz(1) x 1 row coordinate vector.
% n 1 x sz(2) column coordinate vector.
M = sz(1);
N = sz(2);
if(mod(M, 2) == 0)
m = dm * (ceil(-M/2) : floor(M/2) - 1)';
else
m = dm * (ceil(-M/2) : floor(M/2))';
end
if(mod(N, 2) == 0)
n = dn * (ceil(-N/2) : floor(N/2) - 1);
else
n = dn * (ceil(-N/2) : floor(N/2));
end
क्या imggrid है (...)? – FizxMike
@FizxMike क्षमा करें। यह एक स्थानीय कार्य है जो दो समन्वय वैक्टर को परिभाषित करता है जो लगभग शून्य केंद्रित होते हैं। यदि आयाम का आकार 'एम' और' एम' भी है, तो यह केवल '(छत (-एम/2): मंजिल (एम/2) -1)'; यदि आकार अजीब है, तो यह '(छत (-एम/2): मंजिल (एम/2))' है। यह ऑफ़सेट सेटिंग (1: एम) का एकमात्र तरीका है ताकि मूल केंद्र पिक्सेल पर हो। – AnonSubmitter85
आदर्श रूप से हम मूल्य को 1 सेट करने के बजाय, प्रासंगिक पिक्सेल के साथ parametrized लाइनों के छेड़छाड़ की लंबाई की गणना करेंगे, है ना? – jjjjjj