- Singular value decomposition exists for all rectangular matrices
- A square is a rectangle
- LR , LQR, LU may not exist for some matrices
- All matrices are basically rotation and stretching.
- A = ULV'
- U and V are rotations
- L is the scaling
- L square will have the eigen values of AA'
- U and V are orthonormal matrices, so their inverse and transpose are same
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