oxiphysics_gpu/kernels/md_force/
ewaldrealspacekernel_traits.rs1use crate::compute::ComputeKernel;
12
13use super::functions::erfc_approx;
14#[allow(unused_imports)]
15use super::functions::*;
16use super::types::EwaldRealSpaceKernel;
17
18impl ComputeKernel for EwaldRealSpaceKernel {
19 fn name(&self) -> &str {
20 "EwaldRealSpaceKernel"
21 }
22 #[allow(clippy::needless_range_loop)]
23 fn execute(&self, inputs: &[&[f64]], outputs: &mut [Vec<f64>], work_size: usize) {
24 if inputs.len() < 3 || outputs.len() < 2 {
25 return;
26 }
27 let pos = inputs[0];
28 let charges = inputs[1];
29 let alpha = inputs[2][0];
30 let r_cutoff = inputs[2][1];
31 let box_len = inputs[2][2];
32 let n = work_size;
33 let r_cut2 = r_cutoff * r_cutoff;
34 let half_box = box_len * 0.5;
35 let mut forces = vec![0.0f64; n * 3];
36 let mut energy = 0.0f64;
37 for i in 0..n {
38 let xi = [pos[i * 3], pos[i * 3 + 1], pos[i * 3 + 2]];
39 let qi = charges[i];
40 for j in (i + 1)..n {
41 let xj = [pos[j * 3], pos[j * 3 + 1], pos[j * 3 + 2]];
42 let qj = charges[j];
43 let mut dx = xi[0] - xj[0];
44 let mut dy = xi[1] - xj[1];
45 let mut dz = xi[2] - xj[2];
46 if dx > half_box {
47 dx -= box_len;
48 } else if dx < -half_box {
49 dx += box_len;
50 }
51 if dy > half_box {
52 dy -= box_len;
53 } else if dy < -half_box {
54 dy += box_len;
55 }
56 if dz > half_box {
57 dz -= box_len;
58 } else if dz < -half_box {
59 dz += box_len;
60 }
61 let r2 = dx * dx + dy * dy + dz * dz;
62 if r2 >= r_cut2 || r2 < 1e-30 {
63 continue;
64 }
65 let r = r2.sqrt();
66 let ar = alpha * r;
67 let erfc_ar = erfc_approx(ar);
68 energy += qi * qj * erfc_ar / r;
69 let two_alpha_over_sqrt_pi = 2.0 * alpha / std::f64::consts::PI.sqrt();
70 let deriv = -(erfc_ar / r + two_alpha_over_sqrt_pi * (-ar * ar).exp()) / r;
71 let f_mag = -qi * qj * deriv / r;
72 forces[i * 3] += f_mag * dx;
73 forces[i * 3 + 1] += f_mag * dy;
74 forces[i * 3 + 2] += f_mag * dz;
75 forces[j * 3] -= f_mag * dx;
76 forces[j * 3 + 1] -= f_mag * dy;
77 forces[j * 3 + 2] -= f_mag * dz;
78 }
79 }
80 outputs[0] = forces;
81 outputs[1] = vec![energy];
82 }
83}