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this is the code i have so far. i need to write a function m-file that can solve the arc cosine function for [0, 2pi]. it is giving me an error when i try acosfull(0,0), it does not give me the error....what am i missing?
function [theta] = acosfull(x,y)
%acossfull: find output angle of arccos over 0<theta<2*pi
% find value of acos(z) in the correct quadrant over the full range [0
% 2pi]
if y==x==0
theta=0
disp('Error.')
else r=sqrt(x^2 + y^2);
z=x/r;
acos(z)
end

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Victoria Walker
Victoria Walker am 29 Okt. 2020
One of my variables is a lowercase a, will this interfere?
Walter Roberson
Walter Roberson am 29 Okt. 2020
Not at all. MATLAB does not have any implicit multiplication, not anywhere, so there is no danger that acos(z) might be interpreted as a*cos(z)

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Walter Roberson
Walter Roberson am 6 Feb. 2012

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y==x==0
is parsed as
((y==x)==0)
So it compares x to y to give 0 (false) or 1 (true), and then it compares that 0 or 1 to 0. Effectively what you coded is
if y ~= x
Try
if y == x && y == 0

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Wolfgang Garn
Wolfgang Garn am 8 Aug. 2013
Bearbeitet: Wolfgang Garn am 8 Aug. 2013

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In short theta = acos(x./sqrt(x.*x+y.*y)) + (y<0)*pi or below with a couple of tests.
function theta = acosfull(x,y)
%acossfull: find output angle of arccos over 0<theta<2*pi
% find value of acos(z) in the correct quadrant over the full range [0 2pi];
% acosfull requires as input x and y coordinates (length of x and y side of a rectangular triangle).
if nargin<1 % then give examples
disp('A series of examples:');
disp('45° = acosfull(2,2) radians: '); acosfull(2,2)
disp('90° = acosfull(0,3) radians: '); acosfull(0,3)
disp('135° = acosfull(-2,2) radians: '); acosfull(-2,2)
disp('180° = acosfull(-2,0) radians: '); acosfull(-2,0)
disp('225° = acosfull(-3,-3) radians: '); acosfull(-3,-3)
disp('270° = acosfull(0,-4) radians: '); acosfull(0,-4)
disp('315° = acosfull(2,-2) radians: '); acosfull(2,-2)
disp('360° = acosfull(2,-0.001) radians: '); acosfull(2,-0.001)
disp('NaN = acosfull(0,0): '); acosfull(0,0)
acosfull([2 -2 -2 -2 0], [2 2 -2 -2 0])
end
if nargin<2 % then display warning (and attempt original acos)
warning('acosfull requires as input x and y coordinates (or length of x and y side of a rectangular triangle).');
if nargin>0, theta = acos(x); end
else
theta = acos(x./sqrt(x.*x+y.*y)) + (y<0)*pi;
end

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Mahmoud Taha
Mahmoud Taha am 8 Nov. 2014
basic trigonometry says cos is an even function and plot((1:-0.01:-1),acos(1:-0.01:-1)/pi) shows only positive output so all you need actually is:
(y>=0-y<0).*acos(x./sqrt(x.*x+y.*y))
I thought it is important to correct this misunderstanding
Sai Zhou
Sai Zhou am 13 Jan. 2021
Nither of the answers works....
Steven Lord
Steven Lord am 13 Jan. 2021
Can you show us the code you ran and describe specifically what about the answers didn't work?
  • Do you receive warning and/or error messages? If so the full and exact text of those messages (all the text displayed in orange and/or red in the Command Window) may be useful in determining what's going on and how to avoid the warning and/or error.
  • Does it do something different than what you expected? If so, what did it do and what did you expect it to do?
  • Did MATLAB crash? If so please send the crash log file (with a description of what you were running or doing in MATLAB when the crash occured) to Technical Support using the telephone icon in the upper-right corner of this page so we can investigate.

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Danay Rosh
Danay Rosh am 7 Apr. 2019

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arccos(pi/2)

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madhan ravi
madhan ravi am 7 Apr. 2019
Bearbeitet: madhan ravi am 7 Apr. 2019
arccos() is not even a valid syntax in MATLAB
Walter Roberson
Walter Roberson am 9 Apr. 2019
arccos(pi/2) is valid syntax, but arccos() is not a function provided by MATLAB at the MATLAB level.
arccos is provided by the MuPAD programming language that runs inside the Symbolic Computing toolbox. https://www.mathworks.com/help/symbolic/mupad_ref/arccos.html . For example,
evalin(symengine, 'arccos(pi/2)')
is valid.
madhan ravi
madhan ravi am 10 Apr. 2019
Noted with care sir Walter.
John D'Errico
John D'Errico am 13 Jan. 2021
I might also add that the number acos(pi/2) will not even be a real number, but imaginary.
acos(pi/2)
ans =
0 + 1.0232i
The set of inputs for which acos will produce REAL results is limited to the interval [-1,1].

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