xref: /petsc/src/benchmarks/streams/BasicVersion.c (revision 5a4671aecb2b1c6017089db16b143293c51b8cb0)
1 
2 #include <sys/time.h>
3 /* int gettimeofday(struct timeval *tp, struct timezone *tzp); */
4 
5 double second()
6 {
7 /* struct timeval { long	tv_sec;
8 	    long	tv_usec;	};
9 
10 struct timezone { int	tz_minuteswest;
11 	     int	tz_dsttime;	 };	*/
12 
13 	struct timeval tp;
14 	struct timezone tzp;
15 	int i;
16 
17 	i = gettimeofday(&tp,&tzp);
18 	return ( (double) tp.tv_sec + (double) tp.tv_usec * 1.e-6 );
19 }
20 # include <stdio.h>
21 # include <math.h>
22 # include <limits.h>
23 # include <float.h>
24 # include <sys/time.h>
25 
26 /*
27 * Program: Stream
28 * Programmer: Joe R. Zagar
29 * Revision: 4.0-BETA, October 24, 1995
30 * Original code developed by John D. McCalpin
31 *
32 * This program measures memory transfer rates in MB/s for simple
33 * computational kernels coded in C.  These numbers reveal the quality
34 * of code generation for simple uncacheable kernels as well as showing
35 * the cost of floating-point operations relative to memory accesses.
36 *
37 * INSTRUCTIONS:
38 *
39 *	1) Stream requires a good bit of memory to run.  Adjust the
40 *          value of 'N' (below) to give a 'timing calibration' of
41 *          at least 20 clock-ticks.  This will provide rate estimates
42 *          that should be good to about 5% precision.
43 */
44 
45 # define N	2000000
46 # define NTIMES	50
47 # define OFFSET	0
48 
49 /*
50 *	3) Compile the code with full optimization.  Many compilers
51 *	   generate unreasonably bad code before the optimizer tightens
52 *	   things up.  If the results are unreasonably good, on the
53 *	   other hand, the optimizer might be too smart for me!
54 *
55 *         Try compiling with:
56 *               cc -O stream_d.c second.c -o stream_d -lm
57 *
58 *         This is known to work on Cray, SGI, IBM, and Sun machines.
59 *
60 *
61 *	4) Mail the results to mccalpin@cs.virginia.edu
62 *	   Be sure to include:
63 *		a) computer hardware model number and software revision
64 *		b) the compiler flags
65 *		c) all of the output from the test case.
66 * Thanks!
67 *
68 */
69 
70 # define HLINE "-------------------------------------------------------------\n"
71 
72 # ifndef MIN
73 # define MIN(x,y) ((x)<(y)?(x):(y))
74 # endif
75 # ifndef MAX
76 # define MAX(x,y) ((x)>(y)?(x):(y))
77 # endif
78 
79 static double	a[N+OFFSET],
80 		b[N+OFFSET],
81 		c[N+OFFSET];
82 /*double *a,*b,*c;*/
83 
84 static double mintime[4] = {FLT_MAX,FLT_MAX,FLT_MAX,FLT_MAX};
85 
86 static const char     *label[4] = {"Copy:      ", "Scale:     ", "Add:       ", "Triad:     "};
87 
88 static double   bytes[4] = {
89    2 * sizeof(double) * N,
90    2 * sizeof(double) * N,
91    3 * sizeof(double) * N,
92    3 * sizeof(double) * N
93    };
94 
95 extern double second();
96 
97 #include <mpi.h>
98 
99 int main(int argc,char **args)
100    {
101    int          quantum, checktick();
102    register int j, k;
103    double       scalar, t, times[4][NTIMES],irate[4],rate[4];
104    int          rank,size;
105 
106    MPI_Init(&argc,&args);
107    MPI_Comm_rank(MPI_COMM_WORLD,&rank);
108    MPI_Comm_size(MPI_COMM_WORLD,&size);
109    if (!rank)   printf("Number of MPI processes %d\n",size);
110 
111    /* --- SETUP --- determine precision and check timing --- */
112 
113    if (!rank) {
114      /*printf(HLINE);
115      printf("Array size = %d, Offset = %d\n" , N, OFFSET);
116      printf("Total memory required = %.1f MB.\n", (3 * N * BytesPerWord) / 1048576.0);
117      printf("Each test is run %d times, but only\n", NTIMES);
118      printf("the *best* time for each is used.\n");
119       printf(HLINE); */
120    }
121 
122    /* Get initial value for system clock. */
123 
124    /*  a = malloc(N*sizeof(double));
125    b = malloc(N*sizeof(double));
126    c = malloc(N*sizeof(double));*/
127    for (j=0; j<N; j++) {
128         a[j] = 1.0;
129         b[j] = 2.0;
130         c[j] = 0.0;
131         }
132 
133    if (!rank) {
134      if  ( (quantum = checktick()) >= 1)
135        ;/* printf("Your clock granularity/precision appears to be %d microseconds.\n", quantum); */
136      else
137        ;/* printf("Your clock granularity appears to be less than one microsecond.\n");*/
138    }
139 
140    t = second();
141    for (j = 0; j < N; j++)
142         a[j] = 2.0E0 * a[j];
143    t = 1.0E6 * (second() - t);
144 
145    if (!rank) {
146      /*  printf("Each test below will take on the order of %d microseconds.\n", (int) t  );
147      printf("   (= %d clock ticks)\n", (int) (t/quantum) );
148      printf("Increase the size of the arrays if this shows that\n");
149       printf("you are not getting at least 20 clock ticks per test.\n");
150       printf(HLINE);*/
151    }
152 
153 
154    /*   --- MAIN LOOP --- repeat test cases NTIMES times --- */
155 
156    scalar = 3.0;
157    for (k=0; k<NTIMES; k++)
158         {
159    MPI_Barrier(MPI_COMM_WORLD);
160         times[0][k] = second();
161    /* should all these barriers be pulled outside of the time call? */
162    MPI_Barrier(MPI_COMM_WORLD);
163         for (j=0; j<N; j++)
164             c[j] = a[j];
165    MPI_Barrier(MPI_COMM_WORLD);
166         times[0][k] = second() - times[0][k];
167 
168         times[1][k] = second();
169    MPI_Barrier(MPI_COMM_WORLD);
170         for (j=0; j<N; j++)
171             b[j] = scalar*c[j];
172    MPI_Barrier(MPI_COMM_WORLD);
173         times[1][k] = second() - times[1][k];
174 
175         times[2][k] = second();
176    MPI_Barrier(MPI_COMM_WORLD);
177         for (j=0; j<N; j++)
178             c[j] = a[j]+b[j];
179    MPI_Barrier(MPI_COMM_WORLD);
180         times[2][k] = second() - times[2][k];
181 
182         times[3][k] = second();
183    MPI_Barrier(MPI_COMM_WORLD);
184         for (j=0; j<N; j++)
185             a[j] = b[j]+scalar*c[j];
186    MPI_Barrier(MPI_COMM_WORLD);
187         times[3][k] = second() - times[3][k];
188      }
189 
190    /*   --- SUMMARY --- */
191 
192    for (k=0; k<NTIMES; k++){
193         for (j=0; j<4; j++) {
194            mintime[j] = MIN(mintime[j], times[j][k]);
195         }
196       }
197 
198    for (j=0; j<4; j++) {
199      irate[j] = 1.0E-06 * bytes[j]/mintime[j];
200    }
201    MPI_Reduce(irate,rate,4,MPI_DOUBLE,MPI_SUM,0,MPI_COMM_WORLD);
202 
203    if (!rank) {
204      printf("Function      Rate (MB/s) \n");
205      for (j=0; j<4; j++) {
206         printf("%s%11.4f\n", label[j],rate[j]);
207      }
208    }
209    MPI_Finalize();
210    return 0;
211 }
212 
213 # define	M	20
214 
215 int
216 checktick()
217    {
218    int		i, minDelta, Delta;
219    double	t1, t2, timesfound[M];
220 
221 /*  Collect a sequence of M unique time values from the system. */
222 
223    for (i = 0; i < M; i++) {
224 	t1 = second();
225 	while( ((t2=second()) - t1) < 1.0E-6 )
226 	    ;
227 	timesfound[i] = t1 = t2;
228 	}
229 
230 /*
231 * Determine the minimum difference between these M values.
232 * This result will be our estimate (in microseconds) for the
233 * clock granularity.
234 */
235 
236    minDelta = 1000000;
237    for (i = 1; i < M; i++) {
238 	Delta = (int)( 1.0E6 * (timesfound[i]-timesfound[i-1]));
239 	minDelta = MIN(minDelta, MAX(Delta,0));
240 	}
241 
242    return(minDelta);
243    }
244 
245