root / NBody / NBody.py @ 116
Historique | Voir | Annoter | Télécharger (6,97 ko)
1 |
#!/usr/bin/env python
|
---|---|
2 |
# -*- coding: utf-8 -*-
|
3 |
"""
|
4 |
Demonstrateur OpenCL d'interaction NCorps
|
5 |
|
6 |
Emmanuel QUEMENER <emmanuel.quemener@ens-lyon.fr> CeCILLv2
|
7 |
"""
|
8 |
import getopt |
9 |
import sys |
10 |
import time |
11 |
import numpy as np |
12 |
import pyopencl as cl |
13 |
import pyopencl.array as cl_array |
14 |
from numpy.random import randint as nprnd |
15 |
|
16 |
|
17 |
BlobOpenCL= """
|
18 |
#define znew ((z=36969*(z&65535)+(z>>16))<<16)
|
19 |
#define wnew ((w=18000*(w&65535)+(w>>16))&65535)
|
20 |
#define MWC (znew+wnew)
|
21 |
#define SHR3 (jsr=(jsr=(jsr=jsr^(jsr<<17))^(jsr>>13))^(jsr<<5))
|
22 |
#define CONG (jcong=69069*jcong+1234567)
|
23 |
#define KISS ((MWC^CONG)+SHR3)
|
24 |
|
25 |
#define MWCfp MWC * 2.328306435454494e-10f
|
26 |
#define KISSfp KISS * 2.328306435454494e-10f
|
27 |
#define SHR3fp SHR3 * 2.328306435454494e-10f
|
28 |
#define CONGfp CONG * 2.328306435454494e-10f
|
29 |
|
30 |
#define LENGTH 1.
|
31 |
|
32 |
#define PI 3.14159265359
|
33 |
|
34 |
#define SMALL_NUM 0.000000001
|
35 |
|
36 |
float Gravity(float4 m,float4 n)
|
37 |
{
|
38 |
return((float)(1./pow(distance(m,n),2)));
|
39 |
}
|
40 |
|
41 |
float8 RungeKutta(__global float8* clDataIn,int gid,float h)
|
42 |
{
|
43 |
float4 c[4],d[4],ct,dt;
|
44 |
|
45 |
c[0]=h*clDataIn[gid].hi;
|
46 |
c[1]=h*(clDataIn[gid].hi+c[0]/(float)2.);
|
47 |
c[2]=h*(clDataIn[gid].hi+c[1]/(float)2.);
|
48 |
c[3]=h*(clDataIn[gid].hi+c[2]);
|
49 |
|
50 |
d[0]=(0.,0.,0.,0.);
|
51 |
for (int i=0;i<get_global_size(0);i++)
|
52 |
{
|
53 |
if (gid != i)
|
54 |
d[0]+=Gravity(clDataIn[gid].lo,clDataIn[i].lo);
|
55 |
}
|
56 |
d[0]*=h;
|
57 |
d[1]=(0.,0.,0.,0.);
|
58 |
for (int i=0;i<get_global_size(0);i++)
|
59 |
{
|
60 |
if (gid != i)
|
61 |
d[1]+=Gravity(clDataIn[gid].lo+d[0]/(float)2.,clDataIn[i].lo);
|
62 |
}
|
63 |
d[1]*=h;
|
64 |
d[2]=(0.,0.,0.,0.);
|
65 |
for (int i=0;i<get_global_size(0);i++)
|
66 |
{
|
67 |
if (gid != i)
|
68 |
d[2]+=Gravity(clDataIn[gid].lo+d[1]/(float)2.,clDataIn[i].lo);
|
69 |
}
|
70 |
d[2]*=h;
|
71 |
d[3]=(0.,0.,0.,0.);
|
72 |
for (int i=0;i<get_global_size(0);i++)
|
73 |
{
|
74 |
if (gid != i)
|
75 |
d[3]+=Gravity(clDataIn[gid].lo+d[2],clDataIn[i].lo);
|
76 |
}
|
77 |
d[3]*=h;
|
78 |
|
79 |
// ct=clDataIn[gid].lo+(c[0]+(float)2.*c[1]+(float)2.*c[2]+c[3])/(float)6.;
|
80 |
// dt=clDataIn[gid].hi+(d[0]+(float)2.*d[1]+(float)2.*d[2]+d[3])/(float)6.;
|
81 |
if (gid != 0)
|
82 |
ct=(float4)distance(clDataIn[gid],clDataIn[0]);
|
83 |
else
|
84 |
ct=(float4)3.14159;
|
85 |
dt=(float4)0;
|
86 |
|
87 |
return((float8)(ct.s0,ct.s1,ct.s2,ct.s3,dt.s0,dt.s1,dt.s2,dt.s3));
|
88 |
}
|
89 |
|
90 |
__kernel void SplutterPoints(__global float8* clData, float box, float velocity,
|
91 |
uint seed_z,uint seed_w)
|
92 |
{
|
93 |
int gid = get_global_id(0);
|
94 |
uint z=seed_z+(uint)gid;
|
95 |
uint w=seed_w-(uint)gid;
|
96 |
float theta=MWCfp*PI;
|
97 |
float phi=MWCfp*PI*2.;
|
98 |
float sinTheta=sin(theta);
|
99 |
clData[gid].s01234567 = (float8) (box*MWCfp,box*MWCfp,box*MWCfp,0.,0.,0.,0.,0.);
|
100 |
clData[gid].s4=velocity*sinTheta*cos(phi);
|
101 |
clData[gid].s5=velocity*sinTheta*sin(phi);
|
102 |
clData[gid].s6=velocity*cos(theta);
|
103 |
}
|
104 |
|
105 |
__kernel void Evolution(__global float8* clDataOut,__global float8* clDataIn, float h)
|
106 |
{
|
107 |
int gid = get_global_id(0);
|
108 |
|
109 |
clDataOut[gid]=RungeKutta(clDataIn,gid,h);
|
110 |
barrier(CLK_GLOBAL_MEM_FENCE);
|
111 |
}
|
112 |
|
113 |
__kernel void Commit(__global float8* clDataOut,__global float8* clDataIn)
|
114 |
{
|
115 |
int gid = get_global_id(0);
|
116 |
|
117 |
clDataIn[gid]=clDataOut[gid];
|
118 |
barrier(CLK_GLOBAL_MEM_FENCE);
|
119 |
}
|
120 |
|
121 |
"""
|
122 |
|
123 |
if __name__=='__main__': |
124 |
|
125 |
# Set defaults values
|
126 |
|
127 |
# Id of Device : 1 is for first find !
|
128 |
Device=2
|
129 |
# Iterations is integer
|
130 |
Number=2
|
131 |
# Size of box
|
132 |
SizeOfBox=1000.
|
133 |
# Initial velocity of particules
|
134 |
Velocity=10.
|
135 |
# Redo the last process
|
136 |
Redo=1
|
137 |
# Step
|
138 |
Step=1.
|
139 |
|
140 |
HowToUse='%s -d <DeviceId> -n <NumberOfSegments> -z <SizeOfBox> -v <Velocity> -s <Step>'
|
141 |
|
142 |
try:
|
143 |
opts, args = getopt.getopt(sys.argv[1:],"hd:n:z:v:r:",["device=","number=","size=","velocity=","redo=","step=1"]) |
144 |
except getopt.GetoptError:
|
145 |
print HowToUse % sys.argv[0] |
146 |
sys.exit(2)
|
147 |
|
148 |
for opt, arg in opts: |
149 |
if opt == '-h': |
150 |
print HowToUse % sys.argv[0] |
151 |
|
152 |
print "\nInformations about devices detected under OpenCL:" |
153 |
try:
|
154 |
Id=1
|
155 |
for platform in cl.get_platforms(): |
156 |
for device in platform.get_devices(): |
157 |
deviceType=cl.device_type.to_string(device.type) |
158 |
print "Device #%i from %s of type %s : %s" % (Id,platform.vendor.lstrip(),deviceType,device.name.lstrip()) |
159 |
Id=Id+1
|
160 |
sys.exit() |
161 |
except ImportError: |
162 |
print "Your platform does not seem to support OpenCL" |
163 |
sys.exit() |
164 |
|
165 |
elif opt in ("-d", "--device"): |
166 |
Device=int(arg)
|
167 |
elif opt in ("-n", "--number"): |
168 |
Number=int(arg)
|
169 |
elif opt in ("-z", "--size"): |
170 |
SizeOfBox=np.float32(arg) |
171 |
elif opt in ("-v", "--velocity"): |
172 |
Velocity=np.float32(arg) |
173 |
elif opt in ("-s", "--step"): |
174 |
Step=np.float32(arg) |
175 |
elif opt in ("-r", "--redo"): |
176 |
Redo=int(arg)
|
177 |
|
178 |
print "Device choosed : %s" % Device |
179 |
print "Number of segments : %s" % Number |
180 |
print "Size of Box : %s" % SizeOfBox |
181 |
print "Initial velocity % s" % Velocity |
182 |
print "Redo the last process % s" % Redo |
183 |
print "Step of iteration % s" % Step |
184 |
|
185 |
MyData = np.zeros(Number, dtype=cl_array.vec.float8) |
186 |
|
187 |
Id=1
|
188 |
HasXPU=False
|
189 |
for platform in cl.get_platforms(): |
190 |
for device in platform.get_devices(): |
191 |
if Id==Device:
|
192 |
PlatForm=platform |
193 |
XPU=device |
194 |
print "CPU/GPU selected: ",device.name.lstrip() |
195 |
HasXPU=True
|
196 |
Id+=1
|
197 |
|
198 |
if HasXPU==False: |
199 |
print "No XPU #%i found in all of %i devices, sorry..." % (Device,Id-1) |
200 |
sys.exit() |
201 |
|
202 |
# Je cree le contexte et la queue pour son execution
|
203 |
try:
|
204 |
ctx = cl.Context([XPU]) |
205 |
queue = cl.CommandQueue(ctx,properties=cl.command_queue_properties.PROFILING_ENABLE) |
206 |
except:
|
207 |
print "Crash during context creation" |
208 |
|
209 |
|
210 |
MyRoutines = cl.Program(ctx, BlobOpenCL).build() |
211 |
MyData[1][0]=1. |
212 |
|
213 |
mf = cl.mem_flags |
214 |
# clDataIn = cl.Buffer(ctx, mf.READ_WRITE, MyData.nbytes)
|
215 |
clDataIn = cl.Buffer(ctx, mf.WRITE_ONLY|mf.COPY_HOST_PTR,hostbuf=MyData) |
216 |
clDataOut = cl.Buffer(ctx, mf.READ_WRITE, MyData.nbytes) |
217 |
|
218 |
print 'Tous au meme endroit',MyData |
219 |
|
220 |
# MyRoutines.SplutterPoints(queue,(Number,1),None,clDataIn,np.float32(SizeOfBox),np.float32(Velocity),np.uint32(nprnd(2**32)),np.uint32(nprnd(2**32)))
|
221 |
|
222 |
print 'Tous distribues',MyData |
223 |
|
224 |
CLLaunch=MyRoutines.Evolution(queue,(Number,1),None,clDataOut,clDataIn,np.float32(Step)) |
225 |
CLLaunch.wait() |
226 |
cl.enqueue_copy(queue, MyData, clDataOut) |
227 |
print 'Tous calcules',MyData |
228 |
CLLaunch=MyRoutines.Commit(queue,(Number,1),None,clDataOut,clDataIn) |
229 |
CLLaunch.wait() |
230 |
|
231 |
time_start=time.time() |
232 |
for i in xrange(Redo): |
233 |
#CLLaunch=MyRoutines.ShortestDistance(queue, (Number,Number), None, clData, clDistance)
|
234 |
sys.stdout.write('.')
|
235 |
#CLLaunch.wait()
|
236 |
print "\nDuration on %s for each %s" % (Device,(time.time()-time_start)/Redo) |
237 |
|
238 |
clDataIn.release() |
239 |
clDataOut.release() |