Plot y^2 = x^2 + 1 (The expression to the left of the equals sign is not a valid target for an assignment.)
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%Clear memory
clear;
%Number of points
N = 10000;
%Preallocate memory
x = zeros(1,N);
y1 = zeros(1,N);
x = -5 + (5+5)*rand(1,N);
y1^2 = x^2 + 1;
plot(x,y1), grid on;
I get the following error:
The expression to the left of the equals sign is not a valid target for an assignment.
How can I plot this first on x,y axis, then on x^2 and y^2?
Thanks in advance.
채택된 답변
MA
2014년 11월 1일
clear all
clc;
N = 10000;
x = zeros(1,N);
y1 = zeros(1,N);
y2 = zeros(1,N);
x = -5 + (5+5)*rand(1,N);
for i=1:N
y1(i)=(x(i)^2 + 1)^(1/2);
y2(i)=-(x(i)^2 + 1)^(1/2);
end
plot(x,y1)
hold on
plot(x,y2)
grid on
good luck
댓글 수: 1
David Young
2014년 11월 1일
Seems a shame to give an answer that uses a loop when it would be more natural and simpler to use the vector form.
추가 답변 (4개)
David Young
2014년 11월 1일
The error message says it all: you can't assign something to y1^2. Remember that in a programming language, the "=" operator isn't like "=" in algebra. What it does is to assign the value of the expression to its right to the variable (or, in MATLAB, to the matrix elements) given by the expression on its left.
So you need a variable on the left here. How about taking the square root?
y1 = sqrt(x.^2 + 1);
That might not get you all the way (because the square root has more than one solution) but it's a start.
Two things to note. You need .^, not ^. And the preallocation step isn't necessary; in fact it just wastes time and adds complexity.
Roger Stafford
2014년 11월 1일
편집: Roger Stafford
2014년 11월 1일
You can generate this hyperbola plot using hyperbolic functions as parameters:
t = linspace(-4,4,500);
x = sinh(t);
y = cosh(t);
plot(x,y,'y-')
axis equal
You cannot have mathematical expressions on the left hand side of an assignment, as you have in
y1^2 = x^2 + 1;
Presumably you meant to do
y1 = sqrt(x.^2 + 1);
or
y1=-sqrt(x.^2 + 1);
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