reifydb_core/value/encoded/
f32.rs1use std::ptr;
5
6use reifydb_type::Type;
7
8use crate::value::encoded::{EncodedValues, EncodedValuesLayout};
9
10impl EncodedValuesLayout {
11 pub fn set_f32(&self, row: &mut EncodedValues, index: usize, value: impl Into<f32>) {
12 let field = &self.fields[index];
13 debug_assert!(row.len() >= self.total_static_size());
14 debug_assert_eq!(field.r#type, Type::Float4);
15 row.set_valid(index, true);
16 unsafe { ptr::write_unaligned(row.make_mut().as_mut_ptr().add(field.offset) as *mut f32, value.into()) }
17 }
18
19 pub fn get_f32(&self, row: &EncodedValues, index: usize) -> f32 {
20 let field = &self.fields[index];
21 debug_assert!(row.len() >= self.total_static_size());
22 debug_assert_eq!(field.r#type, Type::Float4);
23 unsafe { (row.as_ptr().add(field.offset) as *const f32).read_unaligned() }
24 }
25
26 pub fn try_get_f32(&self, row: &EncodedValues, index: usize) -> Option<f32> {
27 if row.is_defined(index) && self.fields[index].r#type == Type::Float4 {
28 Some(self.get_f32(row, index))
29 } else {
30 None
31 }
32 }
33}
34
35#[cfg(test)]
36#[allow(clippy::approx_constant)]
37mod tests {
38 use reifydb_type::Type;
39
40 use crate::value::encoded::EncodedValuesLayout;
41
42 #[test]
43 fn test_set_get_f32() {
44 let layout = EncodedValuesLayout::new(&[Type::Float4]);
45 let mut row = layout.allocate();
46 layout.set_f32(&mut row, 0, 1.25f32);
47 assert_eq!(layout.get_f32(&row, 0), 1.25f32);
48 }
49
50 #[test]
51 fn test_try_get_f32() {
52 let layout = EncodedValuesLayout::new(&[Type::Float4]);
53 let mut row = layout.allocate();
54
55 assert_eq!(layout.try_get_f32(&row, 0), None);
56
57 layout.set_f32(&mut row, 0, 1.25f32);
58 assert_eq!(layout.try_get_f32(&row, 0), Some(1.25f32));
59 }
60
61 #[test]
62 fn test_special_values() {
63 let layout = EncodedValuesLayout::new(&[Type::Float4]);
64 let mut row = layout.allocate();
65
66 layout.set_f32(&mut row, 0, 0.0f32);
68 assert_eq!(layout.get_f32(&row, 0), 0.0f32);
69
70 let mut row2 = layout.allocate();
72 layout.set_f32(&mut row2, 0, -0.0f32);
73 assert_eq!(layout.get_f32(&row2, 0), -0.0f32);
74
75 let mut row3 = layout.allocate();
77 layout.set_f32(&mut row3, 0, f32::INFINITY);
78 assert_eq!(layout.get_f32(&row3, 0), f32::INFINITY);
79
80 let mut row4 = layout.allocate();
82 layout.set_f32(&mut row4, 0, f32::NEG_INFINITY);
83 assert_eq!(layout.get_f32(&row4, 0), f32::NEG_INFINITY);
84
85 let mut row5 = layout.allocate();
87 layout.set_f32(&mut row5, 0, f32::NAN);
88 assert!(layout.get_f32(&row5, 0).is_nan());
89 }
90
91 #[test]
92 fn test_extreme_values() {
93 let layout = EncodedValuesLayout::new(&[Type::Float4]);
94 let mut row = layout.allocate();
95
96 layout.set_f32(&mut row, 0, f32::MAX);
97 assert_eq!(layout.get_f32(&row, 0), f32::MAX);
98
99 let mut row2 = layout.allocate();
100 layout.set_f32(&mut row2, 0, f32::MIN);
101 assert_eq!(layout.get_f32(&row2, 0), f32::MIN);
102
103 let mut row3 = layout.allocate();
104 layout.set_f32(&mut row3, 0, f32::MIN_POSITIVE);
105 assert_eq!(layout.get_f32(&row3, 0), f32::MIN_POSITIVE);
106 }
107
108 #[test]
109 fn test_mixed_with_other_types() {
110 let layout = EncodedValuesLayout::new(&[Type::Float4, Type::Int4, Type::Float4]);
111 let mut row = layout.allocate();
112
113 layout.set_f32(&mut row, 0, 3.14f32);
114 layout.set_i32(&mut row, 1, 42);
115 layout.set_f32(&mut row, 2, -2.718f32);
116
117 assert_eq!(layout.get_f32(&row, 0), 3.14f32);
118 assert_eq!(layout.get_i32(&row, 1), 42);
119 assert_eq!(layout.get_f32(&row, 2), -2.718f32);
120 }
121
122 #[test]
123 fn test_undefined_handling() {
124 let layout = EncodedValuesLayout::new(&[Type::Float4, Type::Float4]);
125 let mut row = layout.allocate();
126
127 layout.set_f32(&mut row, 0, 3.14f32);
128
129 assert_eq!(layout.try_get_f32(&row, 0), Some(3.14f32));
130 assert_eq!(layout.try_get_f32(&row, 1), None);
131
132 layout.set_undefined(&mut row, 0);
133 assert_eq!(layout.try_get_f32(&row, 0), None);
134 }
135
136 #[test]
137 fn test_try_get_f32_wrong_type() {
138 let layout = EncodedValuesLayout::new(&[Type::Boolean]);
139 let mut row = layout.allocate();
140
141 layout.set_bool(&mut row, 0, true);
142
143 assert_eq!(layout.try_get_f32(&row, 0), None);
144 }
145
146 #[test]
147 fn test_subnormal_values() {
148 let layout = EncodedValuesLayout::new(&[Type::Float4]);
149 let mut row = layout.allocate();
150
151 let min_subnormal = f32::from_bits(0x00000001);
153 layout.set_f32(&mut row, 0, min_subnormal);
154 assert_eq!(layout.get_f32(&row, 0).to_bits(), min_subnormal.to_bits());
155
156 let max_subnormal = f32::from_bits(0x007fffff);
158 layout.set_f32(&mut row, 0, max_subnormal);
159 assert_eq!(layout.get_f32(&row, 0).to_bits(), max_subnormal.to_bits());
160
161 let neg_subnormal = f32::from_bits(0x80000001);
163 layout.set_f32(&mut row, 0, neg_subnormal);
164 assert_eq!(layout.get_f32(&row, 0).to_bits(), neg_subnormal.to_bits());
165 }
166
167 #[test]
168 fn test_nan_payload_preservation() {
169 let layout = EncodedValuesLayout::new(&[Type::Float4]);
170 let mut row = layout.allocate();
171
172 let quiet_nan = f32::NAN;
174 layout.set_f32(&mut row, 0, quiet_nan);
175 assert!(layout.get_f32(&row, 0).is_nan());
176
177 let nan_with_payload = f32::from_bits(0x7fc00001);
179 layout.set_f32(&mut row, 0, nan_with_payload);
180 assert_eq!(layout.get_f32(&row, 0).to_bits(), nan_with_payload.to_bits());
181
182 let neg_nan = f32::from_bits(0xffc00000);
184 layout.set_f32(&mut row, 0, neg_nan);
185 assert_eq!(layout.get_f32(&row, 0).to_bits(), neg_nan.to_bits());
186 }
187
188 #[test]
189 fn test_repeated_operations() {
190 let layout = EncodedValuesLayout::new(&[Type::Float4]);
191 let mut row = layout.allocate();
192 let initial_len = row.len();
193
194 for i in 0..1000 {
196 let value = (i as f32) * 0.1;
197 layout.set_f32(&mut row, 0, value);
198 assert_eq!(layout.get_f32(&row, 0), value);
199 }
200
201 assert_eq!(row.len(), initial_len);
203 }
204
205 #[test]
206 fn test_unaligned_access() {
207 let layout = create_unaligned_layout(Type::Float4);
208 let mut row = layout.allocate();
209
210 layout.set_f32(&mut row, 1, std::f32::consts::PI);
212 assert_eq!(layout.get_f32(&row, 1), std::f32::consts::PI);
213
214 layout.set_f32(&mut row, 3, std::f32::consts::E);
216 assert_eq!(layout.get_f32(&row, 3), std::f32::consts::E);
217
218 assert_eq!(layout.get_f32(&row, 1), std::f32::consts::PI);
220 assert_eq!(layout.get_f32(&row, 3), std::f32::consts::E);
221 }
222
223 #[test]
224 fn test_denormalized_transitions() {
225 let layout = EncodedValuesLayout::new(&[Type::Float4]);
226 let mut row = layout.allocate();
227
228 let values = [
230 f32::MIN_POSITIVE, f32::MIN_POSITIVE / 2.0, f32::MIN_POSITIVE / 4.0, 0.0f32, ];
235
236 for value in values {
237 layout.set_f32(&mut row, 0, value);
238 let retrieved = layout.get_f32(&row, 0);
239 if value == 0.0 {
240 assert_eq!(retrieved, 0.0);
241 } else {
242 assert_eq!(retrieved.to_bits(), value.to_bits());
245 }
246 }
247 }
248
249 pub fn create_unaligned_layout(target_type: Type) -> EncodedValuesLayout {
251 EncodedValuesLayout::new(&[
253 Type::Int1, target_type, Type::Int1, target_type, ])
259 }
260}