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Printing overlap
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@ -314,9 +314,18 @@ subroutine ZMQ_pt2(E, pt2_data, pt2_data_err, relative_error, N_in)
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print '(A)', '========== ================= =========== =============== =============== ================='
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print '(A)', '========== ================= =========== =============== =============== ================='
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pt2_overlap(:,pt2_stoch_istate) = pt2_data % overlap(:,pt2_stoch_istate)
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do k=1,N_states
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print *, 'Overlap'
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pt2_overlap(pt2_stoch_istate,k) = pt2_data % overlap(k,pt2_stoch_istate)
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enddo
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! ! The overlap is not exactly zero because of the guiding function.
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! ! Remove the bias
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! do k=1,pt2_stoch_istate-1
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! pt2_overlap(k,pt2_stoch_istate) -= pt2_data % overlap(k,pt2_stoch_istate)
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! enddo
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print *, 'Overlap before orthogonalization'
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print *, pt2_overlap(:,pt2_stoch_istate)
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print *, pt2_overlap(:,pt2_stoch_istate)
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print *, 'Overlap after orthogonalization'
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print *, pt2_overlap(pt2_stoch_istate,:)
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print *, '-------'
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print *, '-------'
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SOFT_TOUCH pt2_overlap
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SOFT_TOUCH pt2_overlap
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@ -520,7 +529,7 @@ subroutine pt2_collector(zmq_socket_pull, E, relative_error, pt2_data, pt2_data_
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if ((time - time1 > 1.d0) .or. (n==N_det_generators)) then
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if ((time - time1 > 1.d0) .or. (n==N_det_generators)) then
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time1 = time
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time1 = time
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print '(G10.3, 2X, F16.10, 2X, G10.3, 2X, G14.6, 2X, G14.6, 2X, F10.4, A10)', c, avg+E, eqt, avg2, avg3(pt2_stoch_istate), time-time0, ''
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print '(G10.3, 2X, F16.10, 2X, G10.3, 2X, G14.6, 2X, G14.6, 2X, F10.4)', c, avg+E, eqt, avg2, avg3(pt2_stoch_istate), time-time0
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if (stop_now .or. ( &
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if (stop_now .or. ( &
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(do_exit .and. (dabs(pt2_data_err % pt2(pt2_stoch_istate)) / &
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(do_exit .and. (dabs(pt2_data_err % pt2(pt2_stoch_istate)) / &
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(1.d-20 + dabs(pt2_data % pt2(pt2_stoch_istate)) ) <= relative_error))) ) then
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(1.d-20 + dabs(pt2_data % pt2(pt2_stoch_istate)) ) <= relative_error))) ) then
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@ -780,17 +780,17 @@ subroutine fill_buffer_double(i_generator, sp, h1, h2, bannedOrb, banned, fock_d
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endif
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endif
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enddo
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enddo
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do istate=1,N_states
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do jstate=1,N_states
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pt2_data % overlap(jstate,istate) += coef(jstate) * coef(istate)
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enddo
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enddo
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! Gram-Schmidt using input overlap matrix
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! Gram-Schmidt using input overlap matrix
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do istate=1,N_states
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do istate=1,N_states
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do jstate=1,istate-1
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do jstate=1,istate-1
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if ( (pt2_overlap(istate,jstate) == 0.d0).or.(pt2_overlap(jstate,jstate) == 0.d0) ) cycle
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if ( (pt2_overlap(jstate,istate) == 0.d0).or.(pt2_overlap(jstate,jstate) == 0.d0) ) cycle
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coef(istate) = coef(istate) - pt2_overlap(istate,jstate)/pt2_overlap(jstate,jstate) * coef(jstate)
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coef(istate) = coef(istate) - pt2_overlap(jstate,istate)/pt2_overlap(jstate,jstate) * coef(jstate)
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enddo
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enddo
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do istate=1, N_states
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do jstate=1,N_states
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pt2_data % overlap(jstate,istate) += coef(jstate) * coef(istate)
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enddo
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enddo
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enddo
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enddo
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