for my system I solved it this way alone.
I wanted something like that:
syms x
P = expand((x-3/2)*(x-5/4)*(x-1/10)*(x+4/8)*(x-12/5))
[ cond, condCell ] = inequality( P, 'x', 'P>0' )
The result, in symbolic form is: (-1/2, 1/10) union (5/4, 3/2) union (12/5, Inf). With my function, I have the result in numeric form (cond) and symbolic form, but separated into minimum and maximum.
cond =
-0.5000 0.1000
1.2500 1.5000
2.4000 Inf
condCell =
'-1/2' ' 1/10'
'5/4' ' 3/2'
'12/5' ' Inf'
I'm curious if there is another solution for my conditions (operating system xp, computer 20 years old, matlab 2010a)
function [ ra, racell ] = inequality( P, var, test )
test = subs(test,P);
s = feval(symengine, 'solve', test, var, 'Real')
if(isempty(s)) %no solution
ra=[1 -1]; %lower > higher
racell = {'no solution' ''};
else
s = char(s);
r = strfind(s,'R_');
if(isempty(r))
u = strfind(s,'union');
j = strfind(s,'Interval');
[r,c]=size(j);
%L=[0 0 0];
%racell = cell(1,2);
for(i=1:c)
if(i<c)
II = s(j(i)+9 : u(i)-3);
else
II = s(j(i)+9 : end -1);
end
kv = strfind(II,',');
v1 = II(1:kv-1);
v2 = II(kv+1:end);
try
L(i,:) = [sym2poly(vpa(v1)) sym2poly(vpa(v2)) i];
catch exception
L(i,:) = [(vpa(v1)) (vpa(v2)) i];
end
SS(i,1) = cellstr(v1);
SS(i,2) = cellstr(v2);
end
L = sortrows(L,1);
for(i=1:c)
ind = (L(i,3));
racell(i,1)=SS(ind,1);
racell(i,2)=SS(ind,2);
end
ra=L(:,1:2);
[ra racell] = checkrange(ra, racell);
else
ra = [-Inf Inf];
racell = {'-Inf' 'Inf'};
end
end
end
function [ra racell] = checkrange(rain, racellin)
[r,c] = size(rain);
j=1;
ra(j,1) = rain(1,1);
ra(j,2) = rain(1,2);
racell(j,1)=racellin(1,1);
racell(j,2)=racellin(1,2);
for i=2:r
if(rain(i,1) == rain(i-1,2))
ra(j,2) = rain(i,2);
racell(j,2)=racellin(i,2);
else
j = j + 1;
ra(j,1) = rain(i,1);
ra(j,2) = rain(i,2);
racell(j,1)=racellin(i,1);
racell(j,2)=racellin(i,2);
end
end
end
