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Gradient and Laplacian for total jastrow working
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@ -35,7 +35,7 @@ print *, $X_deriv_e(4, $Z)
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print *, ''
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SUBST [X, Y, Z]
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factor_en ; ; 1;;
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factor_ee ; ; 1;;
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END_TEMPLATE
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!factor_een ; ; 1;;
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!rescale_een_e ; (1,3,1) ; 1,3,1 ;;
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@ -43,6 +43,8 @@ END_TEMPLATE
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!rescale_een_e ; (1, 2, 2) ; 1, 2, 2 ;;
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!factor_en ; ; 1;;
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!rescale_en ; (1, 2) ; 1, 2 ;;
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!factor_ee ; ; 1;;
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!rescale_ee ; (1, 2) ; 1, 2 ;;
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!elnuc_dist ; (1,1); 1,1 ;;
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!elec_dist ; (1,2); 1,2 ;;
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@ -73,7 +73,6 @@ BEGIN_PROVIDER [double precision, asymp_jasb, (2)]
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END_PROVIDER
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BEGIN_PROVIDER [double precision, factor_ee]
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implicit none
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BEGIN_DOC
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@ -108,3 +107,69 @@ BEGIN_PROVIDER [double precision, factor_ee]
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end do
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END_PROVIDER
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BEGIN_PROVIDER [double precision, factor_ee_deriv_e, (4, nelec) ]
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implicit none
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BEGIN_DOC
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! Dimensions 1-3 : dx, dy, dz
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! Dimension 4 : d2x + d2y + d2z
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END_DOC
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integer :: i, ii, j, p
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double precision :: x, x_inv, y, den, invden, lap1, lap2, lap3, third, spin_fact
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double precision, dimension(3) :: pow_ser_g
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double precision, dimension(4) :: dx
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factor_ee_deriv_e = 0.0d0
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third = 1.0d0 / 3.0d0
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do j = 1 , nelec
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do i = 1, nelec
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pow_ser_g = 0.0d0
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spin_fact = 1.0d0
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den = 1.0d0 + bord_vect(2) * rescale_ee(i, j)
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invden = 1.0d0 / den
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x_inv = 1.0d0 / (rescale_ee(i, j) + 1.0d-18)
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do ii = 1, 4
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dx(ii) = rescale_ee_deriv_e(ii, j, i)
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enddo
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if ((i.le.nelec_up .and. j.le.nelec_up) .or. &
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(i.gt.nelec_up .and. j.gt.nelec_up)) then
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spin_fact = 0.5d0
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end if
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lap1 = 0.0d0
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lap2 = 0.0d0
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lap3 = 0.0d0
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do ii = 1, 3
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x = rescale_ee(i, j)
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do p = 2, nbord
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! p a_{p+1} r[i,j]^(p-1)
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y = p * bord_vect(p + 1) * x
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pow_ser_g(ii) += y * dx(ii)
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! (p-1) p a_{p+1} r[i,j]^(p-2) r'[i,j]^2
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lap1 += (p - 1) * y * x_inv * dx(ii) * dx(ii)
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! p a_{p+1} r[i,j]^(p-1) r''[i,j]
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lap2 += y
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x = x * rescale_ee(i, j)
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end do
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! (a1 (-2 a2 r'[i,j]^2+(1+a2 r[i,j]) r''[i,j]))/(1+a2 r[i,j])^3
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lap3 += -2.0d0 * bord_vect(2) * dx(ii) * dx(ii)
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! \frac{a1 * r'(i,j)}{(a2 * r(i,j)+1)^2}
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factor_ee_deriv_e(ii, j) += spin_fact * bord_vect(1) &
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* dx(ii) * invden * invden + pow_ser_g(ii)
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enddo
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ii = 4
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lap2 *= dx(ii) * third
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lap3 += den * dx(ii)
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lap3 *= spin_fact * bord_vect(1) * invden * invden * invden
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factor_ee_deriv_e(ii, j) += lap1 + lap2 + lap3
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end do
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end do
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END_PROVIDER
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@ -58,7 +58,7 @@ BEGIN_PROVIDER [double precision, factor_en]
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BEGIN_DOC
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! Electron-nuclei contribution to Jastrow factor
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END_DOC
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integer :: i, a, p, q
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integer :: i, a, p
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double precision :: pow_ser, x
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factor_en = 0.0d0
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@ -87,7 +87,7 @@ BEGIN_PROVIDER [double precision, factor_en_deriv_e, (4, nelec) ]
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! Dimensions 1-3 : dx, dy, dz
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! Dimension 4 : d2x + d2y + d2z
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END_DOC
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integer :: i, ii, a, p, q
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integer :: i, ii, a, p
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double precision :: x, x_inv, y, den, invden, lap1, lap2, lap3, third
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double precision, dimension(3) :: pow_ser_g
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double precision, dimension(4) :: dx
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@ -100,6 +100,7 @@ BEGIN_PROVIDER [double precision, factor_en_deriv_e, (4, nelec) ]
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pow_ser_g = 0.0d0
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den = 1.0d0 + aord_vect(2, typenuc_arr(a)) * rescale_en(i, a)
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invden = 1.0d0 / den
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x_inv = 1.0d0 / rescale_en(i, a)
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do ii = 1, 4
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dx(ii) = rescale_en_deriv_e(ii, i, a)
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@ -110,7 +111,6 @@ BEGIN_PROVIDER [double precision, factor_en_deriv_e, (4, nelec) ]
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lap3 = 0.0d0
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do ii = 1, 3
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x = rescale_en(i, a)
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x_inv = 1.0d0 / x
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do p = 2, naord
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! p a_{p+1} r[i,a]^(p-1)
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y = p * aord_vect(p + 1, typenuc_arr(a)) * x
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@ -133,7 +133,7 @@ BEGIN_PROVIDER [double precision, factor_en_deriv_e, (4, nelec) ]
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ii = 4
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lap2 *= dx(ii) * third
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lap3 += den * dx(ii)
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lap3 = lap3 * aord_vect(1, typenuc_arr(a)) * invden * invden * invden
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lap3 *= aord_vect(1, typenuc_arr(a)) * invden * invden * invden
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factor_en_deriv_e(ii, i) += lap1 + lap2 + lap3
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end do
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