how to find a line perpendicular to another line?
71 vues (au cours des 30 derniers jours)
Afficher commentaires plus anciens
X = [126.3798 126.3818]
Y = [37.5517 37.5495]
I want to find a perpendicular line to this XY line at second point like this image.
Thanks.
0 commentaires
Réponse acceptée
Jan
le 21 Oct 2022
Modifié(e) : Jan
le 21 Oct 2022
% 2 points to define a line:
X = [126.3798 126.3818];
Y = [37.5517 37.5495];
% Its direction:
v = [diff(X); diff(Y)];
n = v / vecnorm(v); % Normalized
% Orthogonal means dot(n,m) = 0 or:
% n(1) * m(1) + n(2) * m(2) = 0
% There are 2 solutions:
m_a = [n(2), -n(1)];
m_b = [-n(2), n(1)]; % Other orientation
Now choose one of these m's as direction of the line. Use any point to start from as initial point.
0 commentaires
Plus de réponses (2)
Matt J
le 21 Oct 2022
Modifié(e) : Matt J
le 21 Oct 2022
The equation is,
dot(X-Y,Z-Z0)=0
where Z0 is a known point on the desired line.
X = [126.3798 126.3818];
Y = [37.5517 37.5495];
Z0=(X+Y)/2;
line([X(1),Y(1)],[X(2),Y(2)],LineStyle='--'); hold on %original line
fimplicit(@(Z1,Z2) (X-Y)*[Z1-Z0(1);Z2-Z0(2)]); hold off %perpendicular bisector
0 commentaires
Image Analyst
le 21 Oct 2022
Try this well commented demo:
% Define original line.
X = [126.3798 126.3818];
Y = [37.5517 37.5495];
% Plot it.
plot(X, Y, 'b.-', 'LineWidth', 2, 'MarkerSize', 30)
grid on;
% Determine slope of original line.
originalSlope = diff(Y)/diff(X)
% The slope of the perpendicular line is -1 over the original slope.
newSlope = -1/originalSlope
% To draw second perpendicular line use point slope formula
% (y-y2) = slope * (x-x2)
% Define range of x values for the new perpendicular line.
x = linspace(X(2), 126.385, 10);
% Get y values over that new x range.
yPerp = newSlope * (x - X(2)) + Y(2)
% Plot perpendicular line
hold on;
plot(x, yPerp, 'r.-', 'LineWidth', 2, 'MarkerSize', 30)
axis equal % Make it so it's scaled the same in x and y
0 commentaires
Voir également
Catégories
En savoir plus sur Mathematics and Optimization dans Help Center et File Exchange
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!