MPQC 3.0.0-alpha
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g12_quartet_data.h
1//
2// g12_quartet_data.h
3//
4// Copyright (C) 2005 Edward Valeev
5//
6// Author: Edward Valeev <evaleev@vt.edu>
7// Maintainer: EV
8//
9// This file is part of the SC Toolkit.
10//
11// The SC Toolkit is free software; you can redistribute it and/or modify
12// it under the terms of the GNU Library General Public License as published by
13// the Free Software Foundation; either version 2, or (at your option)
14// any later version.
15//
16// The SC Toolkit is distributed in the hope that it will be useful,
17// but WITHOUT ANY WARRANTY; without even the implied warranty of
18// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
19// GNU Library General Public License for more details.
20//
21// You should have received a copy of the GNU Library General Public License
22// along with the SC Toolkit; see the file COPYING.LIB. If not, write to
23// the Free Software Foundation, 675 Mass Ave, Cambridge, MA 02139, USA.
24//
25// The U.S. Government is granted a limited license as per AL 91-7.
26//
27
28#include <util/misc/math.h>
29#include <chemistry/qc/libint2/static.h>
30#include <chemistry/qc/libint2/libint2_utils.h>
31
32#ifndef _chemistry_qc_libint2_g12quartetdata_h
33#define _chemistry_qc_libint2_g12quartetdata_h
34
35namespace sc {
36
37/*--------------------------------------------------------------------------------
38 This function computes constants used in OSRR for a given quartet of primitives
39
40 gamma is the exponent of the Gaussian geminal in the integral
41 --------------------------------------------------------------------------------*/
42inline void G12Libint2::g12_quartet_data_(prim_data *Data, double scale, double gamma, double g2_4, bool eri_only)
43{
44#define STATIC_OO2NP1
45#include "static.h"
46
47 /*----------------
48 Local variables
49 ----------------*/
50 double P[3], Q[3], PQ[3], W[3];
51 double small_T = 1E-15; /*--- Use only one term in Taylor expansion of Fj(T) if T < small_T ---*/
52
53 int p1 = quartet_info_.p1;
54 int p2 = quartet_info_.p2;
55 int p3 = quartet_info_.p3;
56 int p4 = quartet_info_.p4;
57
58 double a1 = int_shell1_->exponent(quartet_info_.p1);
59 double a2 = int_shell2_->exponent(quartet_info_.p2);
60 double a3 = int_shell3_->exponent(quartet_info_.p3);
61 double a4 = int_shell4_->exponent(quartet_info_.p4);
62
63 prim_pair_t* pair12;
64 prim_pair_t* pair34;
65 if (!quartet_info_.p13p24) {
66 pair12 = quartet_info_.shell_pair12->prim_pair(*quartet_info_.op1,*quartet_info_.op2);
67 pair34 = quartet_info_.shell_pair34->prim_pair(*quartet_info_.op3,*quartet_info_.op4);
68 }
69 else {
70 pair12 = quartet_info_.shell_pair34->prim_pair(*quartet_info_.op3,*quartet_info_.op4);
71 pair34 = quartet_info_.shell_pair12->prim_pair(*quartet_info_.op1,*quartet_info_.op2);
72 }
73
74 //
75 // Prefactors for [T_i,g12] integrals
76 //
77#if LIBINT2_DEFINED(g12,zeta_A)
78 Data->zeta_A[0] = a1;
79#endif
80#if LIBINT2_DEFINED(g12,zeta_B)
81 Data->zeta_B[0] = a2;
82#endif
83#if LIBINT2_DEFINED(g12,zeta_C)
84 Data->zeta_C[0] = a3;
85#endif
86#if LIBINT2_DEFINED(g12,zeta_D)
87 Data->zeta_D[0] = a4;
88#endif
89#if LIBINT2_DEFINED(g12,zeta_A_2)
90 Data->zeta_A_2[0] = a1*a1;
91#endif
92#if LIBINT2_DEFINED(g12,zeta_B_2)
93 Data->zeta_B_2[0] = a2*a2;
94#endif
95#if LIBINT2_DEFINED(g12,zeta_C_2)
96 Data->zeta_C_2[0] = a3*a3;
97#endif
98#if LIBINT2_DEFINED(g12,zeta_D_2)
99 Data->zeta_D_2[0] = a4*a4;
100#endif
101#if LIBINT2_DEFINED(g12,gamma)
102 Data->gamma[0] = gamma;
103#endif
104#if LIBINT2_DEFINED(g12,R12_2_G12_scale_to_G12T1G12)
105 Data->R12_2_G12_scale_to_G12T1G12[0] = g2_4;
106#endif
107
108 //
109 // prefactors for (ab|-1|cd) are same as for OSRR, only (00|-1|00)^m are different
110 //
111 double zeta = pair12->gamma;
112 double eta = pair34->gamma;
113 double ooz = 1.0/zeta;
114 double ooe = 1.0/eta;
115 double ooze = 1.0/(zeta+eta);
116 Data->roz[0] = eta*ooze;
117 double rho = zeta*Data->roz[0];
118 double rhog = rho + gamma;
119 double oorhog = 1.0/rhog;
120 double rho2 = rho*rho;
121
122 P[0] = pair12->P[0];
123 P[1] = pair12->P[1];
124 P[2] = pair12->P[2];
125 Q[0] = pair34->P[0];
126 Q[1] = pair34->P[1];
127 Q[2] = pair34->P[2];
128
129 Data->oo2ze[0] = 0.5*ooze;
130 Data->roe[0] = zeta*ooze;
131 Data->oo2z[0] = 0.5 * ooz;
132 Data->oo2e[0] = 0.5 * ooe;
133 W[0] = (zeta*P[0] + eta*Q[0])*ooze;
134 W[1] = (zeta*P[1] + eta*Q[1])*ooze;
135 W[2] = (zeta*P[2] + eta*Q[2])*ooze;
136
137 /* PA */
138 Data->PA_x[0] = P[0] - quartet_info_.A[0];
139 Data->PA_y[0] = P[1] - quartet_info_.A[1];
140 Data->PA_z[0] = P[2] - quartet_info_.A[2];
141 /* QC */
142 Data->QC_x[0] = Q[0] - quartet_info_.C[0];
143 Data->QC_y[0] = Q[1] - quartet_info_.C[1];
144 Data->QC_z[0] = Q[2] - quartet_info_.C[2];
145 /* WP */
146 Data->WP_x[0] = W[0] - P[0];
147 Data->WP_y[0] = W[1] - P[1];
148 Data->WP_z[0] = W[2] - P[2];
149 /* WQ */
150 Data->WQ_x[0] = W[0] - Q[0];
151 Data->WQ_y[0] = W[1] - Q[1];
152 Data->WQ_z[0] = W[2] - Q[2];
153
154 /* AC */
155#if LIBINT2_DEFINED(g12,AC_x)
156 Data->AC_x[0] = quartet_info_.A[0] - quartet_info_.C[0];
157#endif
158#if LIBINT2_DEFINED(g12,AC_y)
159 Data->AC_y[0] = quartet_info_.A[1] - quartet_info_.C[1];
160#endif
161#if LIBINT2_DEFINED(g12,AC_z)
162 Data->AC_z[0] = quartet_info_.A[2] - quartet_info_.C[2];
163#endif
164 /* BD */
165#if LIBINT2_DEFINED(g12,BD_x)
166 Data->BD_x[0] = quartet_info_.B[0] - quartet_info_.D[0];
167#endif
168#if LIBINT2_DEFINED(g12,BD_y)
169 Data->BD_y[0] = quartet_info_.B[1] - quartet_info_.D[1];
170#endif
171#if LIBINT2_DEFINED(g12,BD_z)
172 Data->BD_z[0] = quartet_info_.B[2] - quartet_info_.D[2];
173#endif
174
175 PQ[0] = P[0] - Q[0];
176 PQ[1] = P[1] - Q[1];
177 PQ[2] = P[2] - Q[2];
178 double PQ2 = PQ[0]*PQ[0];
179 PQ2 += PQ[1]*PQ[1];
180 PQ2 += PQ[2]*PQ[2];
181
182 const double pfac_norm = int_shell1_->coefficient_unnorm(quartet_info_.gc1,p1)*
183 int_shell2_->coefficient_unnorm(quartet_info_.gc2,p2)*
184 int_shell3_->coefficient_unnorm(quartet_info_.gc3,p3)*
185 int_shell4_->coefficient_unnorm(quartet_info_.gc4,p4);
186 const double pfac_normovlp = pfac_norm * pair12->ovlp * pair34->ovlp * scale;
187
188 if (eri_only) {
189 double T = rho*PQ2;
190 double pfac = 2.0*sqrt(rho*M_1_PI)*pfac_normovlp;
191 if(T < small_T){
192 assign_FjT(Data,quartet_info_.am,oo2np1,pfac);
193 }
194 else {
195 double *fjttable = Fm_Eval_->values(quartet_info_.am,T);
196 assign_FjT(Data,quartet_info_.am,fjttable,pfac);
197 }
198 return;
199 }
200
201 // else, if need other integrals
202 double T = rho2 * oorhog * PQ2;
203
204 //
205 // (00|0|00) and (00|2|00) need to start recursion for (ab|0|cd), (ab|2|cd), and [T_i,G12]
206 //
207 double rorg = rho * oorhog;
208 double sqrt_rorg = sqrt(rorg);
209 Data->LIBINT_T_SS_K0G12_SS_0[0] = rorg * sqrt_rorg * exp(-gamma*rorg*PQ2) * pfac_normovlp;
210 Data->LIBINT_T_SS_K2G12_SS_0[0] = (1.5 + T) * Data->LIBINT_T_SS_K0G12_SS_0[0] * oorhog;
211
212 //
213 // compute (00|-1|00)^m from Fj(x)
214 //
215 double pfac = 2.0 * sqrt(rhog*M_1_PI) * Data->LIBINT_T_SS_K0G12_SS_0[0];
216
217 const double *F;
218 if(T < small_T){
219 F = oo2np1;
220 }
221 else {
222 F = Fm_Eval_->values(quartet_info_.am,T);
223 }
224
225 double ss_m1_ss[4*LIBINT2_MAX_AM_R12kG12+1];
226 double g_i[4*LIBINT2_MAX_AM_R12kG12+1];
227 double r_i[4*LIBINT2_MAX_AM_R12kG12+1];
228 double oorhog_i[4*LIBINT2_MAX_AM_R12kG12+1];
229 g_i[0] = 1.0;
230 r_i[0] = 1.0;
231 oorhog_i[0] = 1.0;
232 for(int i=1; i<=quartet_info_.am; i++) {
233 g_i[i] = g_i[i-1] * gamma;
234 r_i[i] = r_i[i-1] * rho;
235 oorhog_i[i] = oorhog_i[i-1] * oorhog;
236 }
237 for(int m=0; m<=quartet_info_.am; m++) {
238 double ssss = 0.0;
239 for(int k=0; k<=m; k++) {
240 ssss += ExpMath_.bc[m][k] * r_i[k] * g_i[m-k] * F[k];
241 }
242 ss_m1_ss[m] = ssss * oorhog_i[m];
243 }
244
245 assign_ss_r12m1g12_ss(Data,quartet_info_.am,ss_m1_ss,pfac);
246
247
248 //
249 // prefactors for (a0|k|c0) (k!=-1) VRR
250 //
251 {
252 double u0 = 0.5/(zeta*eta + gamma*(zeta+eta));
253
254 {
255 double t00 = a2*(eta + gamma);
256 double t01 = gamma*a4;
257 double t02 = gamma*eta;
258 double T[3];
259 for(int w=0;w<3; w++) {
260 T[w] = -2.0 * u0 * (t00*(quartet_info_.A[w]-quartet_info_.B[w]) +
261 t01*(quartet_info_.C[w]-quartet_info_.D[w]) +
262 t02*(quartet_info_.A[w]-quartet_info_.C[w]));
263 }
264 Data->R12kG12_pfac0_0_x[0] = T[0];
265 Data->R12kG12_pfac0_0_y[0] = T[1];
266 Data->R12kG12_pfac0_0_z[0] = T[2];
267 }
268 {
269 double t00 = a4*(zeta + gamma);
270 double t01 = gamma*a2;
271 double t02 = gamma*zeta;
272 double T[3];
273 for(int w=0;w<3; w++) {
274 T[w] = -2.0 * u0 * (t00*(quartet_info_.C[w]-quartet_info_.D[w]) +
275 t01*(quartet_info_.A[w]-quartet_info_.B[w]) +
276 t02*(quartet_info_.C[w]-quartet_info_.A[w]));
277 }
278 Data->R12kG12_pfac0_1_x[0] = T[0];
279 Data->R12kG12_pfac0_1_y[0] = T[1];
280 Data->R12kG12_pfac0_1_z[0] = T[2];
281 }
282 {
283 Data->R12kG12_pfac1_0[0] = u0 * (eta + gamma);
284 Data->R12kG12_pfac1_1[0] = u0 * (zeta + gamma);
285 }
286 {
287 Data->R12kG12_pfac2[0] = u0 * gamma;
288 }
289 {
290 Data->R12kG12_pfac3_0[0] = eta*u0;
291 Data->R12kG12_pfac3_1[0] = zeta*u0;
292 }
293 {
294 double T[3];
295 for(int w=0;w<3; w++) {
296 T[w] = quartet_info_.A[w]-quartet_info_.C[w];
297 }
298 Data->R12kG12_pfac4_0_x[0] = T[0];
299 Data->R12kG12_pfac4_0_y[0] = T[1];
300 Data->R12kG12_pfac4_0_z[0] = T[2];
301 Data->R12kG12_pfac4_1_x[0] = -T[0];
302 Data->R12kG12_pfac4_1_y[0] = -T[1];
303 Data->R12kG12_pfac4_1_z[0] = -T[2];
304 }
305 }
306
307 return;
308}
309
310}
311
312#endif
313
314// Local Variables:
315// mode: c++
316// c-file-style: "CLJ"
317// End:
Contains all MPQC code up to version 3.
Definition mpqcin.h:14

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