How can I make a system identify if a solution has no solutions?

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Jonas Freiheit
Jonas Freiheit le 19 Sep 2020
Commenté : Jonas Freiheit le 23 Sep 2020
Hello,
I was wondering how I can make this backsubstitution program identify whether a solution is infinite or has no solutions?
Thank you
function x = backsub(U,b)
if det(A)<=0.000001 %For infinite solution
n = length(b);
syms t
x=sym(zeros(n,1))
x(n)=sym('t')
b=(sym(b))
for i = n:-1:1
x(i)=b(i);
x(n)=sym('t')
if i<n
for j = n:-1:i+1
x(i)=x(i)-A(i,j)*x(j);
end
end
x(i)=x(i)/A(i,i);
end
else %For unique solution
n = length(b);
x = zeros(size(b));
for i = n:-1:1
x(i)=b(i);
if i<n
for j = n:-1:i+1
x(i)=x(i)-A(i,j)*x(j);
end
end
x(i)=x(i)/A(i,i);
x=double(x)
end
end
end

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Keyur Mistry
Keyur Mistry le 22 Sep 2020
I understand you want to identify that the given system has infinite solution or no solution. For the same you can consider using command ‘rank’ on the system matrix ‘U’.
I hope this is useful for you to find the solution.
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Keyur Mistry
Keyur Mistry le 22 Sep 2020
For more clarifiacton rank(U) and rank([U b]) can be compared to check if 'b' is inside the image space of 'U' or not. This is to identify if there is ‘infinite solution’ or ‘no solution’.
Jonas Freiheit
Jonas Freiheit le 23 Sep 2020
Interesting.
Thanks

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