try use
syms r real
...
M=b.'*a
Simbolic Toolbox: how to avoid conj() in matrix *
조회 수: 80 (최근 30일)
이전 댓글 표시
N=10;x=0:(N-1);
syms real r;
a=r.^(x),
b=r.^(-x),
M=b'*a
Result is
a =
[ 1, r, r^2, r^3, r^4, r^5, r^6, r^7, r^8, r^9]
b =
[ 1, 1/r, 1/r^2, 1/r^3, 1/r^4, 1/r^5, 1/r^6, 1/r^7, 1/r^8, 1/r^9]
M =
[ 1, r, r^2, r^3, r^4, r^5, r^6, r^7, r^8, r^9]
[ 1/conj(r), r/conj(r), r^2/conj(r), r^3/conj(r), r^4/conj(r), r^5/conj(r), r^6/conj(r), r^7/conj(r), r^8/conj(r), r^9/conj(r)]
[ 1/conj(r)^2, r/conj(r)^2, r^2/conj(r)^2, r^3/conj(r)^2, r^4/conj(r)^2, r^5/conj(r)^2, r^6/conj(r)^2, r^7/conj(r)^2, r^8/conj(r)^2, r^9/conj(r)^2]
[ 1/conj(r)^3, r/conj(r)^3, r^2/conj(r)^3, r^3/conj(r)^3, r^4/conj(r)^3, r^5/conj(r)^3, r^6/conj(r)^3, r^7/conj(r)^3, r^8/conj(r)^3, r^9/conj(r)^3]
[ 1/conj(r)^4, r/conj(r)^4, r^2/conj(r)^4, r^3/conj(r)^4, r^4/conj(r)^4, r^5/conj(r)^4, r^6/conj(r)^4, r^7/conj(r)^4, r^8/conj(r)^4, r^9/conj(r)^4]
[ 1/conj(r)^5, r/conj(r)^5, r^2/conj(r)^5, r^3/conj(r)^5, r^4/conj(r)^5, r^5/conj(r)^5, r^6/conj(r)^5, r^7/conj(r)^5, r^8/conj(r)^5, r^9/conj(r)^5]
[ 1/conj(r)^6, r/conj(r)^6, r^2/conj(r)^6, r^3/conj(r)^6, r^4/conj(r)^6, r^5/conj(r)^6, r^6/conj(r)^6, r^7/conj(r)^6, r^8/conj(r)^6, r^9/conj(r)^6]
[ 1/conj(r)^7, r/conj(r)^7, r^2/conj(r)^7, r^3/conj(r)^7, r^4/conj(r)^7, r^5/conj(r)^7, r^6/conj(r)^7, r^7/conj(r)^7, r^8/conj(r)^7, r^9/conj(r)^7]
[ 1/conj(r)^8, r/conj(r)^8, r^2/conj(r)^8, r^3/conj(r)^8, r^4/conj(r)^8, r^5/conj(r)^8, r^6/conj(r)^8, r^7/conj(r)^8, r^8/conj(r)^8, r^9/conj(r)^8]
[ 1/conj(r)^9, r/conj(r)^9, r^2/conj(r)^9, r^3/conj(r)^9, r^4/conj(r)^9, r^5/conj(r)^9, r^6/conj(r)^9, r^7/conj(r)^9, r^8/conj(r)^9, r^9/conj(r)^9]
댓글 수: 0
채택된 답변
Andrei Bobrov
2011년 12월 28일
댓글 수: 8
Yildirim Dirik
2019년 5월 16일
Many thanks for your help. For below case, how can I define the every variable as real in the variable vecor 'a' ?
a = sym('a',[1,12])';
추가 답변 (1개)
moh ab
2019년 6월 26일
hi my friends
i have problem in result of equetion .
in my code
syms te1 te2 ted1 ted2
q=[cos(te1+te2) -sin(te1+te2) 0;...
sin(te1+te2) cos(te1+te2) 0;...
0 0 1]
q1 =
[ -sin(te1 + te2), -cos(te1 + te2), 0]
[ cos(te1 + te2), -sin(te1 + te2), 0]
[ 0, 0, 0]
q2 =
[ -ted2*sin(te1 + te2), -ted2*cos(te1 + te2), 0]
[ ted2*cos(te1 + te2), -ted2*sin(te1 + te2), 0]
[ 0, 0, 0]
t=q1+q2
z=t*.q'
the z(1,1)=0
but in result of matlab show
sin(te1 + te2)*(ted1*cos(te1 + te2) + ted2*cos(te1 + te2)) - cos(te1 + te2)*(ted1*sin(te1 + te2) + ted2*sin(te1 + te2))
how can i fix it ?
댓글 수: 0
참고 항목
카테고리
Help Center 및 File Exchange에서 Symbolic Math Toolbox에 대해 자세히 알아보기
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
또한 다음 목록에서 웹사이트를 선택하실 수도 있습니다.
미주
- América Latina (Español)
- Canada (English)
- United States (English)
유럽
- Belgium (English)
- Denmark (English)
- Deutschland (Deutsch)
- España (Español)
- Finland (English)
- France (Français)
- Ireland (English)
- Italia (Italiano)
- Luxembourg (English)
- Netherlands (English)
- Norway (English)
- Österreich (Deutsch)
- Portugal (English)
- Sweden (English)
- Switzerland
- United Kingdom (English)
아시아 태평양
- Australia (English)
- India (English)
- New Zealand (English)
- 中国
- 日本Japanese (日本語)
- 한국Korean (한국어)