Add some missing spaces.
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@ -148,7 +148,7 @@ where
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}
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/// Given the Cholesky decomposition of a matrix `M`, a scalar `sigma` and a vector `v`,
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/// performs a rank one update such that we end up with the decomposition of `M + sigma * v*v.adjoint()`.
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/// performs a rank one update such that we end up with the decomposition of `M + sigma * (v * v.adjoint())`.
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#[inline]
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pub fn rank_one_update<R2: Dim, S2>(&mut self, x: &Vector<N, R2, S2>, sigma: N::RealField)
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where
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@ -182,9 +182,9 @@ where
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// loads the data into a new matrix with an additional jth row/column
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let mut chol = unsafe { Matrix::new_uninitialized_generic(self.chol.data.shape().0.add(U1), self.chol.data.shape().1.add(U1)) };
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chol.slice_range_mut(..j, ..j).copy_from(&self.chol.slice_range(..j, ..j));
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chol.slice_range_mut(..j, j+1..).copy_from(&self.chol.slice_range(..j, j..));
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chol.slice_range_mut(j+1.., ..j).copy_from(&self.chol.slice_range(j.., ..j));
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chol.slice_range_mut(j+1.., j+1..).copy_from(&self.chol.slice_range(j.., j..));
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chol.slice_range_mut(..j, j + 1..).copy_from(&self.chol.slice_range(..j, j..));
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chol.slice_range_mut(j + 1.., ..j).copy_from(&self.chol.slice_range(j.., ..j));
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chol.slice_range_mut(j + 1.., j + 1..).copy_from(&self.chol.slice_range(j.., j..));
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// update the jth row
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let top_left_corner = self.chol.slice_range(..j, ..j);
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@ -203,10 +203,10 @@ where
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let bottom_left_corner = self.chol.slice_range(j.., ..j);
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// new_colj = (col_jplus - bottom_left_corner * new_rowj.adjoint()) / center_element;
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new_colj.gemm(-N::one() / center_element, &bottom_left_corner, &new_rowj_adjoint, N::one() / center_element);
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chol.slice_range_mut(j+1.., j).copy_from(&new_colj);
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chol.slice_range_mut(j + 1.., j).copy_from(&new_colj);
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// update the bottom right corner
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let mut bottom_right_corner = chol.slice_range_mut(j+1.., j+1..);
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let mut bottom_right_corner = chol.slice_range_mut(j + 1.., j + 1..);
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Self::xx_rank_one_update(&mut bottom_right_corner, &mut new_colj, -N::RealField::one());
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Cholesky { chol }
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@ -229,21 +229,21 @@ where
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// loads the data into a new matrix except for the jth row/column
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let mut chol = unsafe { Matrix::new_uninitialized_generic(self.chol.data.shape().0.sub(U1), self.chol.data.shape().1.sub(U1)) };
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chol.slice_range_mut(..j, ..j).copy_from(&self.chol.slice_range(..j, ..j));
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chol.slice_range_mut(..j, j..).copy_from(&self.chol.slice_range(..j, j+1..));
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chol.slice_range_mut(j.., ..j).copy_from(&self.chol.slice_range(j+1.., ..j));
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chol.slice_range_mut(j.., j..).copy_from(&self.chol.slice_range(j+1.., j+1..));
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chol.slice_range_mut(..j, j..).copy_from(&self.chol.slice_range(..j, j + 1..));
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chol.slice_range_mut(j.., ..j).copy_from(&self.chol.slice_range(j + 1.., ..j));
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chol.slice_range_mut(j.., j..).copy_from(&self.chol.slice_range(j + 1.., j + 1..));
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// updates the bottom right corner
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let mut bottom_right_corner = chol.slice_range_mut(j.., j..);
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let mut workspace = self.chol.column(j).clone_owned();
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let mut old_colj = workspace.rows_range_mut(j+1..);
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let mut old_colj = workspace.rows_range_mut(j + 1..);
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Self::xx_rank_one_update(&mut bottom_right_corner, &mut old_colj, N::RealField::one());
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Cholesky { chol }
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}
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/// Given the Cholesky decomposition of a matrix `M`, a scalar `sigma` and a vector `v`,
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/// performs a rank one update such that we end up with the decomposition of `M + sigma * x*x.adjoint()`.
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/// performs a rank one update such that we end up with the decomposition of `M + sigma * (x * x.adjoint())`.
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///
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/// This helper method is calling for by `rank_one_update` but also `insert_column` and `remove_column`
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/// where it is used on a square slice of the decomposition
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