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Finding inv(A) for Ax=b system

조회 수: 4 (최근 30일)
Asif Arshid
Asif Arshid 2017년 7월 27일
댓글: M.Shaarawy 2019년 5월 20일
I tried 3 methods to solve the system for inv(A), where A is highly sparse matrix spy(A) is given below:
1) pinv(A)......... Matlab solve it in 190 sec without any warnings.
2) A\b............. Matlab took only 10 sec but gives warning "Matrix is singular to working precision"
3) [L,U]=lu(A); inv(L)*inv(U) .......... Matlab took 50 sec but give the same warning as in 2nd method.
Is there anyway, I can get inv(A) without warnings.
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Jan
Jan 2017년 7월 27일
편집: Jan 2017년 7월 27일
@Asif Arshid: What is your question? You observed that the slash operator has a different sensitivity to detect near to singular matrices than lu and inv(L)*inv(U). What is the condition number of the matrix? Do you think that slash is to pessimistic or the lu method too sloppy? Or are you surprised by the speed of the slash operator?
Asif Arshid
Asif Arshid 2017년 7월 27일
@Stephen: I tried "mldivide", but its gives warning of "Matrix is singular to working precision".
@Jan: my question is, I need to solve my system for "x" in less time than "pinv" (190 sec). The condition number is 4.7167e+17.

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답변 (1개)

Star Strider
Star Strider 2017년 7월 27일
Use the lsqr (link) or similar function to solve sparse matrix problems.
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Star Strider
Star Strider 2017년 7월 27일
@Walter — Thank you.
M.Shaarawy
M.Shaarawy 2019년 5월 20일
Is there regularized parameterized trust region sub problem (RPTRS) in MATLAB to solve this kind of problem?

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