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https://github.com/LCPQ/quantum_package
synced 2025-04-22 08:20:25 +02:00
Corrected bitmask bug for Multi-reference
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@ -26,7 +26,6 @@ double precision function ao_bielec_integral(i,j,k,l)
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ao_bielec_integral = 0.d0
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double precision :: thresh
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thresh = ao_integrals_threshold
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thresh = 0.d0
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if (num_i /= num_j .or. num_k /= num_l .or. num_j /= num_k)then
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do p = 1, 3
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@ -88,7 +88,6 @@ subroutine add_integrals_to_map(mask_ijkl)
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call wall_time(wall_1)
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call cpu_time(cpu_1)
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mo_integrals_threshold = 0.d0
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!$OMP PARALLEL PRIVATE(l1,k1,j1,i1,i2,i3,i4,i,j,k,l,c, ii1,kmax, &
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!$OMP bielec_tmp_0_idx, bielec_tmp_0, bielec_tmp_1,bielec_tmp_2,bielec_tmp_3,&
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@ -57,15 +57,40 @@ Documentation
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`full_ijkl_bitmask <http://github.com/LCPQ/quantum_package/tree/master/src/Bitmask/bitmasks.irp.f#L12>`_
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Bitmask to include all possible MOs
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`generators_bitmask <http://github.com/LCPQ/quantum_package/tree/master/src/Bitmask/bitmasks.irp.f#L91>`_
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Bitmasks for generator determinants. (N_int, alpha/beta, hole/particle, generator).
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3rd index is :
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* 1 : hole for single exc
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* 1 : particle for single exc
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* 3 : hole for 1st exc of double
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* 4 : particle for 1st exc of double
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* 5 : hole for 2dn exc of double
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* 6 : particle for 2dn exc of double
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`hf_bitmask <http://github.com/LCPQ/quantum_package/tree/master/src/Bitmask/bitmasks.irp.f#L32>`_
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Hartree Fock bit mask
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`i_bitmask_gen <http://github.com/LCPQ/quantum_package/tree/master/src/Bitmask/bitmasks.irp.f#L182>`_
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Current bitmask for the generators
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`i_bitmask_ref <http://github.com/LCPQ/quantum_package/tree/master/src/Bitmask/bitmasks.irp.f#L190>`_
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Current bitmask for the reference
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`n_generators_bitmask <http://github.com/LCPQ/quantum_package/tree/master/src/Bitmask/bitmasks.irp.f#L58>`_
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Number of bitmasks for generators
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`n_int <http://github.com/LCPQ/quantum_package/tree/master/src/Bitmask/bitmasks.irp.f#L3>`_
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Number of 64-bit integers needed to represent determinants as binary strings
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`n_reference_bitmask <http://github.com/LCPQ/quantum_package/tree/master/src/Bitmask/bitmasks.irp.f#L126>`_
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Number of bitmasks for reference
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`ref_bitmask <http://github.com/LCPQ/quantum_package/tree/master/src/Bitmask/bitmasks.irp.f#L50>`_
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Reference bit mask, used in Slater rules, chosen as Hartree-Fock bitmask
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`reference_bitmask <http://github.com/LCPQ/quantum_package/tree/master/src/Bitmask/bitmasks.irp.f#L159>`_
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Bitmasks for reference determinants. (N_int, alpha/beta, hole/particle, reference)
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`bitstring_to_hexa <http://github.com/LCPQ/quantum_package/tree/master/src/Bitmask/bitmasks_routines.irp.f#L95>`_
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Transform a bit string to a string in hexadecimal format for printing
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@ -107,12 +107,17 @@ BEGIN_PROVIDER [ integer(bit_kind), generators_bitmask, (N_int,2,6,N_generators_
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if (exists) then
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call ezfio_get_bitmasks_generators(generators_bitmask)
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else
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generators_bitmask(:,:,s_hole ,1) = HF_bitmask
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generators_bitmask(:,:,s_part ,1) = iand(not(HF_bitmask(:,:)),full_ijkl_bitmask(:,:))
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generators_bitmask(:,:,d_hole1,1) = HF_bitmask
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generators_bitmask(:,:,d_part1,1) = iand(not(HF_bitmask(:,:)),full_ijkl_bitmask(:,:))
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generators_bitmask(:,:,d_hole2,1) = HF_bitmask
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generators_bitmask(:,:,d_part2,1) = iand(not(HF_bitmask(:,:)),full_ijkl_bitmask(:,:))
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integer :: k, ispin
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do k=1,N_generators_bitmask
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do ispin=1,2
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generators_bitmask(:,ispin,s_hole ,k) = full_ijkl_bitmask(:,d_hole1)
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generators_bitmask(:,ispin,s_part ,k) = full_ijkl_bitmask(:,d_part1)
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generators_bitmask(:,ispin,d_hole1,k) = full_ijkl_bitmask(:,d_hole1)
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generators_bitmask(:,ispin,d_part1,k) = full_ijkl_bitmask(:,d_part1)
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generators_bitmask(:,ispin,d_hole2,k) = full_ijkl_bitmask(:,d_hole2)
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generators_bitmask(:,ispin,d_part2,k) = full_ijkl_bitmask(:,d_part2)
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enddo
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enddo
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call ezfio_set_bitmasks_generators(generators_bitmask)
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endif
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@ -2,10 +2,10 @@ module bitmasks
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integer, parameter :: bit_kind_shift = 6 ! 5: 32 bits, 6: 64 bits
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integer, parameter :: bit_kind_size = 64
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integer, parameter :: bit_kind = 64/8
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integer, parameter :: s_hole = 1
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integer, parameter :: s_part = 2
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integer, parameter :: d_hole1 = 3
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integer, parameter :: d_part1 = 4
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integer, parameter :: d_hole2 = 5
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integer, parameter :: d_part2 = 6
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integer, parameter :: d_hole1 = 1
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integer, parameter :: d_part1 = 2
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integer, parameter :: d_hole2 = 3
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integer, parameter :: d_part2 = 4
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integer, parameter :: s_hole = 5
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integer, parameter :: s_part = 6
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end module
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@ -23,7 +23,7 @@ Needed Modules
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* `BiInts <http://github.com/LCPQ/quantum_package/tree/master/src/BiInts>`_
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* `Bitmask <http://github.com/LCPQ/quantum_package/tree/master/src/Bitmask>`_
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* `CISD <http://github.com/LCPQ/quantum_package/tree/master/src/CISD>`_
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* `CISD_SC2 <http://github.com/LCPQ/quantum_package/tree/master/src/CISD_SC2>`_
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* `SC2 <http://github.com/LCPQ/quantum_package/tree/master/src/SC2>`_
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* `CISD_selected <http://github.com/LCPQ/quantum_package/tree/master/src/CISD_selected>`_
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* `Dets <http://github.com/LCPQ/quantum_package/tree/master/src/Dets>`_
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* `Electrons <http://github.com/LCPQ/quantum_package/tree/master/src/Electrons>`_
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@ -19,7 +19,7 @@ BEGIN_PROVIDER [ logical, H_apply_buffer_allocated ]
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! Uninitialized. Filled by H_apply subroutines.
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END_DOC
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integer :: iproc, sze
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sze = 100
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sze = 10000
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if (.not.associated(H_apply_buffer)) then
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allocate(H_apply_buffer(0:nproc-1))
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iproc = 0
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@ -47,14 +47,6 @@ subroutine $subroutine_diexc(key_in, hole_1,particl_1, hole_2, particl_2, i_gene
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occ_hole_tmp(N_int*bit_kind_size,2))
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$init_thread
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!print*,'key_in !!'
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!call print_key(key_in)
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!print*,'hole_1, particl_1'
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!call print_key(hole_1)
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!call print_key(particl_1)
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!print*,'hole_2, particl_2'
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!call print_key(hole_2)
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!call print_key(particl_2)
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!!!! First couple hole particle
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@ -352,9 +344,11 @@ subroutine $subroutine($params_main)
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$decls_main
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integer :: i_generator, k, nmax
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double precision :: wall_0, wall_1, wall_2, d
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integer :: i_generator, nmax
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double precision :: wall_0, wall_1, wall_2
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integer(omp_lock_kind) :: lck
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integer(bit_kind), allocatable :: mask(:,:,:)
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integer :: ispin, k
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PROVIDE H_apply_buffer_allocated mo_bielec_integrals_in_map N_det_selectors psi_generators
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PROVIDE psi_det_sorted_bit coef_hf_selector
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@ -363,22 +357,45 @@ subroutine $subroutine($params_main)
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call wall_time(wall_1)
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!$ call omp_init_lock(lck)
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!$OMP PARALLEL DEFAULT(SHARED) &
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!$OMP PRIVATE(i_generator,wall_2)
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!$OMP PRIVATE(i_generator,wall_2,ispin,k,mask)
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allocate( mask(N_int,2,6) )
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!$OMP DO SCHEDULE(guided)
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do i_generator=1,nmax
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if (abort_here) then
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cycle
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endif
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$skip
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! Create bit masks for holes and particles
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do ispin=1,2
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do k=1,N_int
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mask(k,ispin,s_hole) = &
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iand(generators_bitmask(k,ispin,s_hole,i_bitmask_gen), &
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psi_generators(k,ispin,i_generator) )
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mask(k,ispin,s_part) = &
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iand(generators_bitmask(k,ispin,s_part,i_bitmask_gen), &
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not(psi_generators(k,ispin,i_generator)) )
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mask(k,ispin,d_hole1) = &
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iand(generators_bitmask(k,ispin,d_hole1,i_bitmask_gen), &
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psi_generators(k,ispin,i_generator) )
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mask(k,ispin,d_part1) = &
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iand(generators_bitmask(k,ispin,d_part1,i_bitmask_gen), &
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not(psi_generators(k,ispin,i_generator)) )
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mask(k,ispin,d_hole2) = &
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iand(generators_bitmask(k,ispin,d_hole2,i_bitmask_gen), &
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psi_generators(k,ispin,i_generator) )
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mask(k,ispin,d_part2) = &
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iand(generators_bitmask(k,ispin,d_part2,i_bitmask_gen), &
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not (psi_generators(k,ispin,i_generator)) )
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enddo
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enddo
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call $subroutine_diexc(psi_generators(1,1,i_generator), &
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generators_bitmask(1,1,d_hole1,i_bitmask_gen), &
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generators_bitmask(1,1,d_part1,i_bitmask_gen), &
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generators_bitmask(1,1,d_hole2,i_bitmask_gen), &
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generators_bitmask(1,1,d_part2,i_bitmask_gen), &
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mask(1,1,d_hole1), mask(1,1,d_part1), &
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mask(1,1,d_hole2), mask(1,1,d_part2), &
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i_generator $params_post)
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call $subroutine_monoexc(psi_generators(1,1,i_generator), &
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generators_bitmask(1,1,s_hole ,i_bitmask_gen), &
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generators_bitmask(1,1,s_part ,i_bitmask_gen), &
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mask(1,1,s_hole ), mask(1,1,s_part ), &
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i_generator $params_post)
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!$ call omp_set_lock(lck)
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call wall_time(wall_2)
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@ -390,23 +407,46 @@ subroutine $subroutine($params_main)
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!$ call omp_unset_lock(lck)
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enddo
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!$OMP END DO
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deallocate( mask )
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!$OMP END PARALLEL
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!$ call omp_destroy_lock(lck)
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allocate( mask(N_int,2,6) )
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do i_generator=nmax+1,N_det_generators
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if (abort_here) then
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exit
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endif
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$skip
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! Create bit masks for holes and particles
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do ispin=1,2
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do k=1,N_int
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mask(k,ispin,s_hole) = &
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iand(generators_bitmask(k,ispin,s_hole,i_bitmask_gen), &
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psi_generators(k,ispin,i_generator) )
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mask(k,ispin,s_part) = &
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iand(generators_bitmask(k,ispin,s_part,i_bitmask_gen), &
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not(psi_generators(k,ispin,i_generator)) )
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mask(k,ispin,d_hole1) = &
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iand(generators_bitmask(k,ispin,d_hole1,i_bitmask_gen), &
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psi_generators(k,ispin,i_generator) )
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mask(k,ispin,d_part1) = &
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iand(generators_bitmask(k,ispin,d_part1,i_bitmask_gen), &
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not(psi_generators(k,ispin,i_generator)) )
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mask(k,ispin,d_hole2) = &
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iand(generators_bitmask(k,ispin,d_hole2,i_bitmask_gen), &
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psi_generators(k,ispin,i_generator) )
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mask(k,ispin,d_part2) = &
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iand(generators_bitmask(k,ispin,d_part2,i_bitmask_gen), &
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not(psi_generators(k,ispin,i_generator)) )
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enddo
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enddo
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call $subroutine_diexc(psi_generators(1,1,i_generator), &
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generators_bitmask(1,1,d_hole1,i_bitmask_gen), &
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generators_bitmask(1,1,d_part1,i_bitmask_gen), &
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generators_bitmask(1,1,d_hole2,i_bitmask_gen), &
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generators_bitmask(1,1,d_part2,i_bitmask_gen), &
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mask(1,1,d_hole1), mask(1,1,d_part1), &
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mask(1,1,d_hole2), mask(1,1,d_part2), &
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i_generator $params_post)
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call $subroutine_monoexc(psi_generators(1,1,i_generator), &
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generators_bitmask(1,1,s_hole ,i_bitmask_gen), &
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generators_bitmask(1,1,s_part ,i_bitmask_gen), &
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mask(1,1,s_hole ), mask(1,1,s_part ), &
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i_generator $params_post)
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call wall_time(wall_2)
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$printout_always
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@ -419,6 +459,7 @@ subroutine $subroutine($params_main)
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$copy_buffer
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$generate_psi_guess
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abort_here = abort_all
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deallocate( mask )
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end
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@ -56,16 +56,40 @@ logical function is_in_wavefunction(key,Nint,Ndet)
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endif
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enddo
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if (is_in_wavefunction) then
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return
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exit
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endif
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endif
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i += 1
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if (i > N_det) then
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exit
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return
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! exit
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endif
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enddo
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! DEBUG is_in_wf
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! if (is_in_wavefunction) then
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! degree = 1
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! do i=1,N_det
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! integer :: degree
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! call get_excitation_degree(key,psi_det(1,1,i),degree,N_int)
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! if (degree == 0) then
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! exit
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! endif
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! enddo
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! if (degree /=0) then
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! stop 'pouet 1'
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! endif
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! else
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! do i=1,N_det
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! call get_excitation_degree(key,psi_det(1,1,i),degree,N_int)
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! if (degree == 0) then
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! stop 'pouet 2'
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! endif
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! enddo
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! endif
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! END DEBUG is_in_wf
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end
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integer function connected_to_ref(key,keys,Nint,N_past_in,Ndet)
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@ -92,14 +116,10 @@ integer function connected_to_ref(key,keys,Nint,N_past_in,Ndet)
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N_past = max(1,N_past_in)
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if (Nint == 1) then
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do i=N_past-1,1,-1
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do i=1,N_past-1
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degree_x2 = popcnt(xor( key(1,1), keys(1,1,i))) + &
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popcnt(xor( key(1,2), keys(1,2,i)))
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if(degree_x2 == 0)then
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connected_to_ref = -i
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return
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endif
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if (degree_x2 > 5) then
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if (degree_x2 > 4) then
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cycle
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else
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connected_to_ref = i
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@ -112,16 +132,12 @@ integer function connected_to_ref(key,keys,Nint,N_past_in,Ndet)
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else if (Nint==2) then
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do i=N_past-1,1,-1
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do i=1,N_past-1
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degree_x2 = popcnt(xor( key(1,1), keys(1,1,i))) + &
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popcnt(xor( key(1,2), keys(1,2,i))) + &
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popcnt(xor( key(2,1), keys(2,1,i))) + &
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popcnt(xor( key(2,2), keys(2,2,i)))
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if(degree_x2 == 0)then
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connected_to_ref = -i
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return
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endif
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if (degree_x2 > 5) then
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if (degree_x2 > 4) then
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cycle
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else
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connected_to_ref = i
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@ -133,18 +149,14 @@ integer function connected_to_ref(key,keys,Nint,N_past_in,Ndet)
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else if (Nint==3) then
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do i=N_past-1,1,-1
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do i=1,N_past-1
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degree_x2 = popcnt(xor( key(1,1), keys(1,1,i))) + &
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popcnt(xor( key(1,2), keys(1,2,i))) + &
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popcnt(xor( key(2,1), keys(2,1,i))) + &
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popcnt(xor( key(2,2), keys(2,2,i))) + &
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popcnt(xor( key(3,1), keys(3,1,i))) + &
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popcnt(xor( key(3,2), keys(3,2,i)))
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if(degree_x2 == 0)then
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connected_to_ref = -i
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return
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endif
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if (degree_x2 > 5) then
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if (degree_x2 > 4) then
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cycle
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else
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connected_to_ref = i
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@ -156,7 +168,7 @@ integer function connected_to_ref(key,keys,Nint,N_past_in,Ndet)
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else
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do i=N_past-1,1,-1
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do i=1,N_past-1
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degree_x2 = popcnt(xor( key(1,1), keys(1,1,i))) + &
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popcnt(xor( key(1,2), keys(1,2,i)))
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!DEC$ LOOP COUNT MIN(3)
|
||||
@ -164,11 +176,7 @@ integer function connected_to_ref(key,keys,Nint,N_past_in,Ndet)
|
||||
degree_x2 = degree_x2 + popcnt(xor( key(l,1), keys(l,1,i))) +&
|
||||
popcnt(xor( key(l,2), keys(l,2,i)))
|
||||
enddo
|
||||
if(degree_x2 == 0)then
|
||||
connected_to_ref = -i
|
||||
return
|
||||
endif
|
||||
if (degree_x2 > 5) then
|
||||
if (degree_x2 > 4) then
|
||||
cycle
|
||||
else
|
||||
connected_to_ref = i
|
||||
|
@ -6,5 +6,9 @@ s = H_apply("FCI",openmp=True)
|
||||
s.set_selection_pt2("epstein_nesbet_2x2")
|
||||
print s
|
||||
|
||||
s = H_apply("FCI_PT2",openmp=True)
|
||||
s.set_perturbation("epstein_nesbet_2x2")
|
||||
print s
|
||||
|
||||
END_SHELL
|
||||
|
||||
|
@ -5,9 +5,9 @@ program cisd
|
||||
|
||||
double precision, allocatable :: pt2(:), norm_pert(:), H_pert_diag(:)
|
||||
integer :: N_st, degree
|
||||
character*(64) :: perturbation
|
||||
N_st = N_states
|
||||
allocate (pt2(N_st), norm_pert(N_st),H_pert_diag(N_st))
|
||||
character*(64) :: perturbation
|
||||
|
||||
pt2 = 1.d0
|
||||
diag_algorithm = "Lapack"
|
||||
|
@ -33,8 +33,8 @@ BEGIN_PROVIDER [ integer, N_det_generators ]
|
||||
N_det_generators = N_det
|
||||
do i=1,N_det
|
||||
norm = norm + psi_average_norm_contrib_sorted(i)
|
||||
if (norm > threshold_generators) then
|
||||
N_det_generators = i-1
|
||||
if (norm >= threshold_generators) then
|
||||
N_det_generators = i
|
||||
exit
|
||||
endif
|
||||
enddo
|
||||
|
@ -66,14 +66,24 @@ subroutine pt2_epstein_nesbet_2x2(det_pert,c_pert,e_2_pert,H_pert_diag,Nint,ndet
|
||||
call i_H_psi(det_pert,psi_selectors,psi_selectors_coef,Nint,N_det_selectors,psi_selectors_size,N_st,i_H_psi_array)
|
||||
h = diag_H_mat_elem(det_pert,Nint)
|
||||
do i =1,N_st
|
||||
delta_e = h - CI_electronic_energy(i)
|
||||
e_2_pert(i) = 0.5d0 * (delta_e - dsqrt(delta_e * delta_e + 4.d0 * i_H_psi_array(i) * i_H_psi_array(i)))
|
||||
if (dabs(i_H_psi_array(i)) > 1.d-6) then
|
||||
c_pert(i) = e_2_pert(i)/i_H_psi_array(i)
|
||||
if (i_H_psi_array(i) /= 0.d0) then
|
||||
delta_e = h - CI_electronic_energy(i)
|
||||
if (delta_e > 0.d0) then
|
||||
e_2_pert(i) = 0.5d0 * (delta_e - dsqrt(delta_e * delta_e + 4.d0 * i_H_psi_array(i) * i_H_psi_array(i)))
|
||||
else
|
||||
e_2_pert(i) = 0.5d0 * (delta_e + dsqrt(delta_e * delta_e + 4.d0 * i_H_psi_array(i) * i_H_psi_array(i)))
|
||||
endif
|
||||
if (dabs(i_H_psi_array(i)) > 1.d-6) then
|
||||
c_pert(i) = e_2_pert(i)/i_H_psi_array(i)
|
||||
else
|
||||
c_pert(i) = 0.d0
|
||||
endif
|
||||
H_pert_diag(i) = h*c_pert(i)*c_pert(i)
|
||||
else
|
||||
c_pert(i) = -1.d0
|
||||
e_2_pert(i) = 0.d0
|
||||
c_pert(i) = 0.d0
|
||||
H_pert_diag(i) = 0.d0
|
||||
endif
|
||||
H_pert_diag(i) = h*c_pert(i)*c_pert(i)
|
||||
enddo
|
||||
|
||||
end
|
||||
|
@ -8,7 +8,7 @@ Documentation
|
||||
.. Do not edit this section. It was auto-generated from the
|
||||
.. NEEDED_MODULES file.
|
||||
|
||||
`cisd_sc2 <http://github.com/LCPQ/quantum_package/tree/master/src/CISD_SC2/SC2.irp.f#L1>`_
|
||||
`cisd_sc2 <http://github.com/LCPQ/quantum_package/tree/master/src/SC2/SC2.irp.f#L1>`_
|
||||
CISD+SC2 method :: take off all the disconnected terms of a CISD (selected or not)
|
||||
.br
|
||||
dets_in : bitmasks corresponding to determinants
|
||||
@ -24,25 +24,51 @@ Documentation
|
||||
.br
|
||||
Initial guess vectors are not necessarily orthonormal
|
||||
|
||||
`repeat_excitation <http://github.com/LCPQ/quantum_package/tree/master/src/CISD_SC2/SC2.irp.f#L169>`_
|
||||
`repeat_excitation <http://github.com/LCPQ/quantum_package/tree/master/src/SC2/SC2.irp.f#L169>`_
|
||||
Undocumented
|
||||
|
||||
`cisd <http://github.com/LCPQ/quantum_package/tree/master/src/CISD_SC2/cisd_SC2.irp.f#L1>`_
|
||||
`cisd <http://github.com/LCPQ/quantum_package/tree/master/src/SC2/cisd_SC2.irp.f#L1>`_
|
||||
Undocumented
|
||||
|
||||
`ci_sc2_eigenvectors <http://github.com/LCPQ/quantum_package/tree/master/src/CISD_SC2/diagonalize_CI_SC2.irp.f#L19>`_
|
||||
`ci_sc2_eigenvectors <http://github.com/LCPQ/quantum_package/tree/master/src/SC2/diagonalize_CI_SC2.irp.f#L19>`_
|
||||
Eigenvectors/values of the CI matrix
|
||||
|
||||
`ci_sc2_electronic_energy <http://github.com/LCPQ/quantum_package/tree/master/src/CISD_SC2/diagonalize_CI_SC2.irp.f#L18>`_
|
||||
`ci_sc2_electronic_energy <http://github.com/LCPQ/quantum_package/tree/master/src/SC2/diagonalize_CI_SC2.irp.f#L18>`_
|
||||
Eigenvectors/values of the CI matrix
|
||||
|
||||
`ci_sc2_energy <http://github.com/LCPQ/quantum_package/tree/master/src/CISD_SC2/diagonalize_CI_SC2.irp.f#L1>`_
|
||||
`ci_sc2_energy <http://github.com/LCPQ/quantum_package/tree/master/src/SC2/diagonalize_CI_SC2.irp.f#L1>`_
|
||||
N_states lowest eigenvalues of the CI matrix
|
||||
|
||||
`diagonalize_ci_sc2 <http://github.com/LCPQ/quantum_package/tree/master/src/CISD_SC2/diagonalize_CI_SC2.irp.f#L38>`_
|
||||
`diagonalize_ci_sc2 <http://github.com/LCPQ/quantum_package/tree/master/src/SC2/diagonalize_CI_SC2.irp.f#L38>`_
|
||||
Replace the coefficients of the CI states by the coefficients of the
|
||||
eigenstates of the CI matrix
|
||||
|
||||
`pt2_epstein_nesbet_sc2_projected <http://github.com/LCPQ/quantum_package/tree/master/src/SC2/pert_sc2.irp.f#L2>`_
|
||||
compute the Epstein-Nesbet perturbative first order coefficient and second order energetic contribution
|
||||
.br
|
||||
for the various N_st states,
|
||||
.br
|
||||
but with the correction in the denominator
|
||||
.br
|
||||
comming from the interaction of that determinant with all the others determinants
|
||||
.br
|
||||
that can be repeated by repeating all the double excitations
|
||||
.br
|
||||
: you repeat all the correlation energy already taken into account in CI_electronic_energy(1)
|
||||
.br
|
||||
that could be repeated to this determinant.
|
||||
.br
|
||||
In addition, for the perturbative energetic contribution you have the standard second order
|
||||
.br
|
||||
e_2_pert = <psi_i|H|det_pert>^2/(Delta_E)
|
||||
.br
|
||||
and also the purely projected contribution
|
||||
.br
|
||||
H_pert_diag = <HF|H|det_pert> c_pert
|
||||
|
||||
`repeat_all_e_corr <http://github.com/LCPQ/quantum_package/tree/master/src/SC2/pert_sc2.irp.f#L82>`_
|
||||
Undocumented
|
||||
|
||||
|
||||
|
||||
Needed Modules
|
||||
|
@ -51,7 +51,11 @@ END_PROVIDER
|
||||
E_corr_per_selectors(i) = -1000.d0
|
||||
endif
|
||||
enddo
|
||||
inv_selectors_coef_hf = 1.d0/coef_hf_selector
|
||||
if (dabs(coef_hf_selector) > 1.d-8) then
|
||||
inv_selectors_coef_hf = 1.d0/coef_hf_selector
|
||||
else
|
||||
inv_selectors_coef_hf = 0.d0
|
||||
endif
|
||||
do i = 1,n_double_selectors
|
||||
E_corr_per_selectors(double_index_selectors(i)) *=inv_selectors_coef_hf
|
||||
enddo
|
||||
|
Loading…
x
Reference in New Issue
Block a user