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ci_dress_mu_opt
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@ -332,27 +332,24 @@ return
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SOFT_TOUCH ci_dress_min ci_dress_max
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SOFT_TOUCH ci_dress_min ci_dress_max
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END_PROVIDER
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END_PROVIDER
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BEGIN_PROVIDER [ double precision, ci_dress_mu_opt ]
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BEGIN_PROVIDER [ double precision, ci_dress_opt ]
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BEGIN_DOC
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BEGIN_DOC
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! Use for optimizing mu
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! Use for optimizing mu
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END_DOC
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END_DOC
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implicit none
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implicit none
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integer :: i, j, k, l
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integer :: i, j, k, l
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double precision :: T, dij, f, E_noJ, dE
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double precision :: T, dij, f, E_noJ, dE
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! E_noJ = -0.5d0*psidet_lapl*psidet_inv + E_pot + E_nucl
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! energy = H \Phi / \Phi
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! ci_dress_mu_opt = (E_loc - energy_mu) * psi_value_inv * jast_value_inv * &
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E_noJ = -0.5d0*psidet_lapl*psidet_inv + E_pot + E_nucl
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! det_alpha_value(1) * det_beta_value(1)
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dE = (E_loc - E_noJ) * psi_value_inv * jast_value_inv ! PsiJ.J
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! energy_mu = H_mu \Phi / \Phi
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dE = (E_loc - energy_mu) * psi_value_inv * jast_value_inv
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! dE = (E_loc - E_noJ) * psi_value_inv * jast_value_inv
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k = 1
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k = 1
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i = det_coef_matrix_rows( k)
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i = det_coef_matrix_rows( k)
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j = det_coef_matrix_columns(k)
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j = det_coef_matrix_columns(k)
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f = det_alpha_value(i) * det_beta_value(j)
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f = det_alpha_value(i) * det_beta_value(j)
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ci_dress_mu_opt = dE * f
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ci_dress_opt = dE * f
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ci_dress_mu_opt_min = min(ci_dress_mu_opt_min, ci_dress_mu_opt)
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ci_dress_opt_min = min(ci_dress_opt_min, ci_dress_opt)
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ci_dress_mu_opt_max = max(ci_dress_mu_opt_max, ci_dress_mu_opt)
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ci_dress_opt_max = max(ci_dress_opt_max, ci_dress_opt)
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SOFT_TOUCH ci_dress_mu_opt_min ci_dress_mu_opt_max
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SOFT_TOUCH ci_dress_opt_min ci_dress_opt_max
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END_PROVIDER
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END_PROVIDER
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BEGIN_PROVIDER [ double precision, ci_dress_Htilde, (size_ci_dress) ]
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BEGIN_PROVIDER [ double precision, ci_dress_Htilde, (size_ci_dress) ]
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@ -366,8 +363,7 @@ BEGIN_PROVIDER [ double precision, ci_dress_Htilde, (size_ci_dress) ]
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integer :: i, j, k, l
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integer :: i, j, k, l
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double precision :: T, h_psidet, dij, f, E_noJ, dE
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double precision :: T, h_psidet, dij, f, E_noJ, dE
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h_psidet = -0.5d0*psidet_lapl*psidet_inv + E_pot + E_nucl
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E_noJ = -0.5d0*psidet_lapl*psidet_inv + E_pot + E_nucl
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E_noJ = h_psidet
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dE = E_loc - E_noJ
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dE = E_loc - E_noJ
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do k=1,det_num
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do k=1,det_num
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i = det_coef_matrix_rows(k)
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i = det_coef_matrix_rows(k)
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@ -22,13 +22,20 @@ BEGIN_PROVIDER [ double precision, Energy_mu ]
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implicit none
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implicit none
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integer :: i
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integer :: i
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Energy_mu = E_nucl
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double precision :: lapl
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!DIR$ VECTOR ALIGNED
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lapl = 0.d0
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!DIR$ LOOP COUNT(200)
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do i=1,elec_num
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do i = 1, elec_num
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lapl += psidet_grad_lapl(4,i)*psidet_inv + jast_elec_mu_lapl(i) + &
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Energy_mu += E_kin_elec_psidet(i)
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2.d0*psidet_inv * (&
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psidet_grad_lapl(1,i)*jast_elec_mu_grad_x(i) + &
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psidet_grad_lapl(2,i)*jast_elec_mu_grad_y(i) + &
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psidet_grad_lapl(3,i)*jast_elec_mu_grad_z(i) ) + ( &
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jast_elec_mu_grad_x(i)*jast_elec_mu_grad_x(i) + &
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jast_elec_mu_grad_y(i)*jast_elec_mu_grad_y(i) + &
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jast_elec_mu_grad_z(i)*jast_elec_mu_grad_z(i) )
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enddo
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enddo
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Energy_mu += Eff_pot_mu + Eff_pot_deriv_mu + E_nucl_elec - three_body_mu
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Energy_mu = -0.5d0 * lapl + E_nucl + E_pot
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energy_mu_min = min(energy_mu_min,energy_mu)
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energy_mu_min = min(energy_mu_min,energy_mu)
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energy_mu_max = max(energy_mu_max,energy_mu)
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energy_mu_max = max(energy_mu_max,energy_mu)
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@ -239,3 +246,23 @@ BEGIN_PROVIDER [ double precision, ci_dress_mu, (size_ci_dress_mu) ]
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END_PROVIDER
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END_PROVIDER
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BEGIN_PROVIDER [ double precision, ci_dress_mu_opt ]
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BEGIN_DOC
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! Use for optimizing mu
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END_DOC
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implicit none
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integer :: i, j, k, l
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double precision :: T, dij, f, E_noJ, dE
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! energy_mu = H_mu \Phi / \Phi
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dE = (E_loc - energy_mu) * psi_value_inv * jast_value_inv ! PsiJ.J
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k = 1
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i = det_coef_matrix_rows( k)
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j = det_coef_matrix_columns(k)
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f = det_alpha_value(i) * det_beta_value(j)
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ci_dress_mu_opt = dE * f
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ci_dress_mu_opt = E_loc - energy_mu
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ci_dress_mu_opt_min = min(ci_dress_mu_opt_min, ci_dress_mu_opt)
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ci_dress_mu_opt_max = max(ci_dress_mu_opt_max, ci_dress_mu_opt)
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SOFT_TOUCH ci_dress_mu_opt_min ci_dress_mu_opt_max
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END_PROVIDER
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