multithreading tests from 152 lab 5
[riscv-tests.git] / mt / af_matmul / bestattemptthusfar.c~
1 //**************************************************************************
2 // Multi-threaded Matrix Multiply benchmark
3 //--------------------------------------------------------------------------
4 // TA : Christopher Celio
5 // Student:
6 //
7 //
8 // This benchmark multiplies two 2-D arrays together and writes the results to
9 // a third vector. The input data (and reference data) should be generated
10 // using the matmul_gendata.pl perl script and dumped to a file named
11 // dataset.h.
12
13
14 // print out arrays, etc.
15 //#define DEBUG
16
17 //--------------------------------------------------------------------------
18 // Includes
19
20 #include <string.h>
21 #include <stdlib.h>
22 #include <stdio.h>
23
24
25 //--------------------------------------------------------------------------
26 // Input/Reference Data
27
28 typedef float data_t;
29 #include "dataset.h"
30
31
32 //--------------------------------------------------------------------------
33 // Basic Utilities and Multi-thread Support
34
35 __thread unsigned long coreid;
36 unsigned long ncores;
37
38 #include "util.h"
39
40 #define stringify_1(s) #s
41 #define stringify(s) stringify_1(s)
42 #define stats(code) do { \
43 unsigned long _c = -rdcycle(), _i = -rdinstret(); \
44 code; \
45 _c += rdcycle(), _i += rdinstret(); \
46 if (coreid == 0) \
47 printf("%s: %ld cycles, %ld.%ld cycles/iter, %ld.%ld CPI\n", \
48 stringify(code), _c, _c/DIM_SIZE/DIM_SIZE/DIM_SIZE, 10*_c/DIM_SIZE/DIM_SIZE/DIM_SIZE%10, _c/_i, 10*_c/_i%10); \
49 } while(0)
50
51
52 //--------------------------------------------------------------------------
53 // Helper functions
54
55 void printArray( char name[], int n, data_t arr[] )
56 {
57 int i;
58 if (coreid != 0)
59 return;
60
61 printf( " %10s :", name );
62 for ( i = 0; i < n; i++ )
63 printf( " %3ld ", (long) arr[i] );
64 printf( "\n" );
65 }
66
67 void __attribute__((noinline)) verify(size_t n, const data_t* test, const data_t* correct)
68 {
69 if (coreid != 0)
70 return;
71
72 size_t i;
73 for (i = 0; i < n; i++)
74 {
75 if (test[i] != correct[i])
76 {
77 printf("FAILED test[%d]= %3ld, correct[%d]= %3ld\n",
78 i, (long)test[i], i, (long)correct[i]);
79 exit(-1);
80 }
81 }
82
83 return;
84 }
85
86 //--------------------------------------------------------------------------
87 // matmul function
88
89 // single-thread, naive version
90 void __attribute__((noinline)) matmul_naive(const int lda, const data_t A[], const data_t B[], data_t C[] )
91 {
92 int i, j, k;
93
94 if (coreid > 0)
95 return;
96
97 for ( i = 0; i < lda; i++ )
98 for ( j = 0; j < lda; j++ )
99 {
100 for ( k = 0; k < lda; k++ )
101 {
102 C[i + j*lda] += A[j*lda + k] * B[k*lda + i];
103 }
104 }
105
106 }
107
108
109 void __attribute__((noinline)) matmul(const int lda, const data_t A[], const data_t B[], data_t C[] )
110 {
111 size_t i, j, k, l;
112 int row,row2, column, column2, column3, column4, column5, column6, column7, column8;
113 data_t element, element2, element3, element4, element5, element6, element7, element8;
114 data_t temp_mat[32]={0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0};
115 data_t temp_mat2[32]={0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0};
116 //for (i=coreid*max_dim/ncores; i<(max_dim/ncores+coreid*max_dim/ncores); i+=8){
117 for (l=coreid*32/ncores; l<32*(1+coreid)/ncores; l+=4){
118 row=l*lda;
119 row2=(l+1)*lda;
120 for (i=0; i<lda; i+=4){
121 element = A[row+i];
122 element2 = A[row+i+1];
123 element3 = A[row+i+2];
124 element4 = A[row+i+3];
125
126 element5 = A[row2+i];
127 element6 = A[row2+i+1];
128 element7 = A[row2+i+2];
129 element8 = A[row2+i+3];
130
131 column=i*lda;
132 column2=(i+1)*lda;
133 column3=(i+2)*lda;
134 column4=(i+3)*lda;
135
136 for (j=0; j<lda; j+=4){
137 temp_mat[j]+=element*B[column+j]+element2*B[column2+j]+element3*B[column3+j]+element4*B[column4+j];
138 temp_mat[j+1]+=element*B[column+j+1]+element2*B[column2+j+1]+element3*B[column3+j+1]+element4*B[column4+j+1];
139 temp_mat[j+2]+=element*B[column+j+2]+element2*B[column2+j+2]+element3*B[column3+j+2]+element4*B[column4+j+2];
140 temp_mat[j+3]+=element*B[column+j+3]+element2*B[column2+j+3]+element3*B[column3+j+3]+element4*B[column4+j+3];
141
142 temp_mat2[j]+=element5*B[column+j]+element6*B[column2+j]+element7*B[column3+j]+element8*B[column4+j];
143 temp_mat2[j+1]+=element5*B[column+j+1]+element6*B[column2+j+1]+element7*B[column3+j+1]+element8*B[column4+j+1];
144 temp_mat2[j+2]+=element5*B[column+j+2]+element6*B[column2+j+2]+element7*B[column3+j+2]+element8*B[column4+j+2];
145 temp_mat2[j+3]+=element5*B[column+j+3]+element6*B[column2+j+3]+element7*B[column3+j+3]+element8*B[column4+j+3];
146 }
147
148 }
149
150 for(k=0; k<32; k++){
151 C[row+k]=temp_mat[k];
152 temp_mat[k]=0;
153 C[row2+k]=temp_mat2[k];
154 temp_mat2[k]=0;
155
156
157 }
158 }
159
160 // ***************************** //
161 // **** ADD YOUR CODE HERE ***** //
162 // ***************************** //
163 //
164 // feel free to make a separate function for MI and MSI versions.
165
166 }
167 //--------------------------------------------------------------------------
168 // Main
169 //
170 // all threads start executing thread_entry(). Use their "coreid" to
171 // differentiate between threads (each thread is running on a separate core).
172
173 void thread_entry(int cid, int nc)
174 {
175 coreid = cid;
176 ncores = nc;
177
178 // static allocates data in the binary, which is visible to both threads
179 static data_t results_data[ARRAY_SIZE];
180
181
182 // Execute the provided, naive matmul
183 barrier();
184 stats(matmul_naive(DIM_SIZE, input1_data, input2_data, results_data); barrier());
185
186
187 // verify
188 verify(ARRAY_SIZE, results_data, verify_data);
189
190 // clear results from the first trial
191 size_t i;
192 if (coreid == 0)
193 for (i=0; i < ARRAY_SIZE; i++)
194 results_data[i] = 0;
195 barrier();
196
197
198 // Execute your faster matmul
199 barrier();
200 stats(matmul(DIM_SIZE, input1_data, input2_data, results_data); barrier());
201
202 #ifdef DEBUG
203 printArray("results:", ARRAY_SIZE, results_data);
204 printArray("verify :", ARRAY_SIZE, verify_data);
205 #endif
206
207 // verify
208 verify(ARRAY_SIZE, results_data, verify_data);
209 barrier();
210
211 exit(0);
212 }