Gram-Schmidt improved
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helper.jl
35
helper.jl
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@ -49,25 +49,34 @@ function exportCSV(file::String, data, labels=nothing)
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end
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end
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"c-orthonormalization via Gram-Schmidt"
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function gram_schmidt(vecs, ws, precision=1e-10, verbose=false)
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"In-place c-orthonormalization via (modified) Gram-Schmidt. Most significant vectors determined by the singular values (compared to the threshold) are returned."
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function gram_schmidt!(vecs, ws, threshold=1e-5; verbose=false)
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c_product(i, j) = sum(vecs[i] .* ws .* vecs[j])
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proj(i, j) = (c_product(i, j) / c_product(i, i)) .* vecs[i] # component of vec[i] in vec[j]
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norm(i) = c_product(i, i)
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proj(i, j) = (c_product(i, j) / norm(i)) .* vecs[i] # component of vec[i] in vec[j]
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mask = ones(Bool, size(vecs)) # vectors to retain
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# initial normalization
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for i in eachindex(vecs)
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for j in findall(mask[1 : (i - 1)])
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vecs[i] -= proj(j, i)
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vecs[i] ./= sqrt(norm(i))
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end
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norm = c_product(i, i)
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verbose && println("Mag. of basis vector $i = $(abs(norm))")
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if abs(norm) > precision
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vecs[i] = vecs[i] ./ sqrt(norm)
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else
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mask[i] = false
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target_dim = c_rank(vecs, ws, threshold)
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for i in eachindex(vecs)
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for j in (i + 1):length(vecs)
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vecs[j] .-= proj(i, j)
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end
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end
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return vecs[mask]
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abs_norms = abs.(norm.(eachindex(vecs)))
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verbose && println("Absolute norms = $(round.(abs_norms; sigdigits=1))")
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selected_vecs_i = partialsortperm(abs_norms, 1:target_dim; rev=true)
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for i in selected_vecs_i
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vecs[i] ./= sqrt(norm(i))
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end
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return vecs[selected_vecs_i]
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end
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"Rank of a basis set (pre-normalized) under c-product"
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@ -23,7 +23,7 @@ evals = eigvals(H_EC, N_EC)
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println("Eigenvalues with GEVP:")
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display(evals)
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ortho_basis = hcat(gram_schmidt(vecs, ws)...)
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ortho_basis = hcat(gram_schmidt!(vecs, ws)...)
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N_ortho = transpose(ortho_basis) * ws_mat * ortho_basis
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println("Norm matrix after Gram-Schmidt:")
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display(round.(N_ortho; digits=2)) # should be ≈I
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@ -53,7 +53,7 @@ println("Dimensionality before Gram-Schmidt = $(length(vecs))")
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println("Absolute singular values before Gram-Schmidt:")
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display(abs.(c_singular_values(vecs, ws)))
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ortho_vecs = gram_schmidt(vecs, ws)
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ortho_vecs = gram_schmidt!(vecs, ws; verbose=true)
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ortho_basis = hcat(ortho_vecs...)
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println("Dimensionality after Gram-Schmidt = $(length(ortho_vecs))")
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