split out edge cases from unit tests into common files
[ieee754fpu.git] / src / add / unit_test_single.py
1 from random import randint
2 from random import seed
3
4 import sys
5 from sfpy import Float32
6
7 def get_mantissa(x):
8 return 0x7fffff & x
9
10 def get_exponent(x):
11 return ((x & 0x7f800000) >> 23) - 127
12
13 def get_sign(x):
14 return ((x & 0x80000000) >> 31)
15
16 def is_nan(x):
17 return get_exponent(x) == 128 and get_mantissa(x) != 0
18
19 def is_inf(x):
20 return get_exponent(x) == 128 and get_mantissa(x) == 0
21
22 def is_pos_inf(x):
23 return is_inf(x) and not get_sign(x)
24
25 def is_neg_inf(x):
26 return is_inf(x) and get_sign(x)
27
28 def match(x, y):
29 return (
30 (is_pos_inf(x) and is_pos_inf(y)) or
31 (is_neg_inf(x) and is_neg_inf(y)) or
32 (is_nan(x) and is_nan(y)) or
33 (x == y)
34 )
35
36 def get_case(dut, a, b):
37 yield dut.in_a.v.eq(a)
38 yield dut.in_a.stb.eq(1)
39 yield
40 yield
41 a_ack = (yield dut.in_a.ack)
42 assert a_ack == 0
43 yield dut.in_b.v.eq(b)
44 yield dut.in_b.stb.eq(1)
45 b_ack = (yield dut.in_b.ack)
46 assert b_ack == 0
47
48 while True:
49 yield
50 out_z_stb = (yield dut.out_z.stb)
51 if not out_z_stb:
52 continue
53 yield dut.in_a.stb.eq(0)
54 yield dut.in_b.stb.eq(0)
55 yield dut.out_z.ack.eq(1)
56 yield
57 yield dut.out_z.ack.eq(0)
58 yield
59 yield
60 break
61
62 out_z = yield dut.out_z.v
63 return out_z
64
65 def check_case(dut, a, b, z):
66 out_z = yield from get_case(dut, a, b)
67 assert out_z == z, "Output z 0x%x not equal to expected 0x%x" % (out_z, z)
68
69
70 def run_test(dut, stimulus_a, stimulus_b, op):
71
72 expected_responses = []
73 actual_responses = []
74 for a, b in zip(stimulus_a, stimulus_b):
75 af = Float32.from_bits(a)
76 bf = Float32.from_bits(b)
77 z = op(af, bf)
78 expected_responses.append(z.get_bits())
79 #print (af, bf, z)
80 actual = yield from get_case(dut, a, b)
81 actual_responses.append(actual)
82
83 if len(actual_responses) < len(expected_responses):
84 print ("Fail ... not enough results")
85 exit(0)
86
87 for expected, actual, a, b in zip(expected_responses, actual_responses,
88 stimulus_a, stimulus_b):
89 passed = match(expected, actual)
90
91 if not passed:
92
93 print ("Fail ... expected:", hex(expected), "actual:", hex(actual))
94
95 print (hex(a))
96 print ("a mantissa:", a & 0x7fffff)
97 print ("a exponent:", ((a & 0x7f800000) >> 23) - 127)
98 print ("a sign:", ((a & 0x80000000) >> 31))
99
100 print (hex(b))
101 print ("b mantissa:", b & 0x7fffff)
102 print ("b exponent:", ((b & 0x7f800000) >> 23) - 127)
103 print ("b sign:", ((b & 0x80000000) >> 31))
104
105 print (hex(expected))
106 print ("expected mantissa:", expected & 0x7fffff)
107 print ("expected exponent:", ((expected & 0x7f800000) >> 23) - 127)
108 print ("expected sign:", ((expected & 0x80000000) >> 31))
109
110 print (hex(actual))
111 print ("actual mantissa:", actual & 0x7fffff)
112 print ("actual exponent:", ((actual & 0x7f800000) >> 23) - 127)
113 print ("actual sign:", ((actual & 0x80000000) >> 31))
114
115 sys.exit(0)
116
117 def run_edge_cases(dut, count, op):
118 #edge cases
119 stimulus_a = [0x80000000 for i in range(1000)]
120 stimulus_b = [randint(0, 1<<32) for i in range(1000)]
121 yield from run_test(dut, stimulus_a, stimulus_b, op)
122 count += len(stimulus_a)
123 print (count, "vectors passed")
124
125 stimulus_a = [0x00000000 for i in range(1000)]
126 stimulus_b = [randint(0, 1<<32) for i in range(1000)]
127 yield from run_test(dut, stimulus_a, stimulus_b, op)
128 count += len(stimulus_a)
129 print (count, "vectors passed")
130
131 stimulus_b = [0x80000000 for i in range(1000)]
132 stimulus_a = [randint(0, 1<<32) for i in range(1000)]
133 yield from run_test(dut, stimulus_a, stimulus_b, op)
134 count += len(stimulus_a)
135 print (count, "vectors passed")
136
137 stimulus_b = [0x00000000 for i in range(1000)]
138 stimulus_a = [randint(0, 1<<32) for i in range(1000)]
139 yield from run_test(dut, stimulus_a, stimulus_b, op)
140 count += len(stimulus_a)
141 print (count, "vectors passed")
142
143 stimulus_a = [0x7F800000 for i in range(1000)]
144 stimulus_b = [randint(0, 1<<32) for i in range(1000)]
145 yield from run_test(dut, stimulus_a, stimulus_b, op)
146 count += len(stimulus_a)
147 print (count, "vectors passed")
148
149 stimulus_a = [0xFF800000 for i in range(1000)]
150 stimulus_b = [randint(0, 1<<32) for i in range(1000)]
151 yield from run_test(dut, stimulus_a, stimulus_b, op)
152 count += len(stimulus_a)
153 print (count, "vectors passed")
154
155 stimulus_b = [0x7F800000 for i in range(1000)]
156 stimulus_a = [randint(0, 1<<32) for i in range(1000)]
157 yield from run_test(dut, stimulus_a, stimulus_b, op)
158 count += len(stimulus_a)
159 print (count, "vectors passed")
160
161 stimulus_b = [0xFF800000 for i in range(1000)]
162 stimulus_a = [randint(0, 1<<32) for i in range(1000)]
163 yield from run_test(dut, stimulus_a, stimulus_b, op)
164 count += len(stimulus_a)
165 print (count, "vectors passed")
166
167 stimulus_a = [0x7FC00000 for i in range(1000)]
168 stimulus_b = [randint(0, 1<<32) for i in range(1000)]
169 yield from run_test(dut, stimulus_a, stimulus_b, op)
170 count += len(stimulus_a)
171 print (count, "vectors passed")
172
173 stimulus_a = [0xFFC00000 for i in range(1000)]
174 stimulus_b = [randint(0, 1<<32) for i in range(1000)]
175 yield from run_test(dut, stimulus_a, stimulus_b, op)
176 count += len(stimulus_a)
177 print (count, "vectors passed")
178
179 stimulus_b = [0x7FC00000 for i in range(1000)]
180 stimulus_a = [randint(0, 1<<32) for i in range(1000)]
181 yield from run_test(dut, stimulus_a, stimulus_b, op)
182 count += len(stimulus_a)
183 print (count, "vectors passed")
184
185 stimulus_b = [0xFFC00000 for i in range(1000)]
186 stimulus_a = [randint(0, 1<<32) for i in range(1000)]
187 yield from run_test(dut, stimulus_a, stimulus_b, op)
188 count += len(stimulus_a)
189 print (count, "vectors passed")
190
191 #seed(0)
192 for i in range(100000):
193 stimulus_a = [randint(0, 1<<32) for i in range(1000)]
194 stimulus_b = [randint(0, 1<<32) for i in range(1000)]
195 yield from run_test(dut, stimulus_a, stimulus_b, op)
196 count += 1000
197 print (count, "random vectors passed")
198
199 if __name__ == '__main__':
200 dut = FPADD(width=32, single_cycle=True)
201 run_simulation(dut, testbench(dut), vcd_name="test_add.vcd")
202