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feagi_brain_development/connectivity/core_morphologies/
bitmask.rs

1// Copyright 2025 Neuraville Inc.
2// SPDX-License-Identifier: Apache-2.0
3
4/*!
5Bitmask encoder/decoder morphology implementation.
6
7Supports function-type morphologies:
8- bitmask_encoder_x / bitmask_encoder_y / bitmask_encoder_z
9- bitmask_decoder_x / bitmask_decoder_y / bitmask_decoder_z
10*/
11
12use crate::types::BduResult;
13use feagi_npu_neural::types::{NeuronId, SynapticPsp, SynapticWeight};
14use feagi_npu_neural::SynapseType;
15
16#[derive(Debug, Clone, Copy, PartialEq, Eq)]
17pub enum BitmaskAxis {
18    X,
19    Y,
20    Z,
21}
22
23#[derive(Debug, Clone, Copy, PartialEq, Eq)]
24pub enum BitmaskMode {
25    Encoder,
26    Decoder,
27}
28
29#[allow(clippy::too_many_arguments)]
30pub fn apply_bitmask_morphology_with_dimensions(
31    npu: &mut feagi_npu_burst_engine::DynamicNPU,
32    src_area_id: u32,
33    dst_area_id: u32,
34    src_dimensions: (usize, usize, usize),
35    dst_dimensions: (usize, usize, usize),
36    axis: BitmaskAxis,
37    mode: BitmaskMode,
38    weight: u8,
39    psp: u8,
40    synapse_attractivity: u8,
41    synapse_type: SynapseType,
42) -> BduResult<u32> {
43    use crate::rng::get_rng;
44    use rand::Rng;
45
46    let mut rng = get_rng();
47
48    let src_neurons = npu.get_neurons_in_cortical_area(src_area_id);
49    if src_neurons.is_empty() {
50        return Ok(0);
51    }
52
53    if dst_dimensions.0 == 0 || dst_dimensions.1 == 0 || dst_dimensions.2 == 0 {
54        return Ok(0);
55    }
56
57    let mut dst_pos_map = std::collections::HashMap::new();
58    for dst_nid in npu.get_neurons_in_cortical_area(dst_area_id) {
59        if let Some(coords) = npu.get_neuron_coordinates(dst_nid) {
60            dst_pos_map.insert(coords, dst_nid);
61        }
62    }
63
64    let mut synapse_count = 0u32;
65
66    for src_nid in src_neurons {
67        let Some(src_pos) = npu.get_neuron_coordinates(src_nid) else {
68            continue;
69        };
70
71        let dst_positions =
72            map_positions_for_bitmask(src_pos, src_dimensions, dst_dimensions, axis, mode);
73
74        for dst_pos in dst_positions {
75            // Note: Keep nested conditionals to maintain Rust 2021 compatibility.
76            #[allow(clippy::collapsible_if)]
77            if let Some(&dst_nid) = dst_pos_map.get(&dst_pos) {
78                if rng.gen_range(0..100) < synapse_attractivity
79                    && npu
80                        .add_synapse(
81                            NeuronId(src_nid),
82                            NeuronId(dst_nid),
83                            SynapticWeight(weight),
84                            SynapticPsp(psp),
85                            synapse_type,
86                        )
87                        .is_ok()
88                {
89                    synapse_count += 1;
90                }
91            }
92        }
93    }
94
95    Ok(synapse_count)
96}
97
98fn map_positions_for_bitmask(
99    src_pos: (u32, u32, u32),
100    src_dimensions: (usize, usize, usize),
101    dst_dimensions: (usize, usize, usize),
102    axis: BitmaskAxis,
103    mode: BitmaskMode,
104) -> Vec<(u32, u32, u32)> {
105    let src_axis_len = axis_len(src_dimensions, axis);
106    let dst_axis_len = axis_len(dst_dimensions, axis);
107    if src_axis_len == 0 || dst_axis_len == 0 {
108        return Vec::new();
109    }
110
111    let clamped = (
112        clamp_to_dim(src_pos.0, dst_dimensions.0),
113        clamp_to_dim(src_pos.1, dst_dimensions.1),
114        clamp_to_dim(src_pos.2, dst_dimensions.2),
115    );
116
117    match mode {
118        BitmaskMode::Encoder => {
119            let src_bit_index = axis_value(src_pos, axis) as usize;
120            if src_bit_index >= src_axis_len {
121                return Vec::new();
122            }
123
124            let mut out = Vec::new();
125            for dst_axis_index in 0..dst_axis_len {
126                if bit_is_set_msb(dst_axis_index as u32, src_bit_index, src_axis_len) {
127                    out.push(compose_pos(axis, dst_axis_index as u32, clamped));
128                }
129            }
130            out
131        }
132        BitmaskMode::Decoder => {
133            let encoded_axis_value = axis_value(src_pos, axis);
134            let mut out = Vec::new();
135            for dst_bit_index in 0..dst_axis_len {
136                if bit_is_set_msb(encoded_axis_value, dst_bit_index, dst_axis_len) {
137                    out.push(compose_pos(axis, dst_bit_index as u32, clamped));
138                }
139            }
140            out
141        }
142    }
143}
144
145#[inline]
146fn axis_len(dim: (usize, usize, usize), axis: BitmaskAxis) -> usize {
147    match axis {
148        BitmaskAxis::X => dim.0,
149        BitmaskAxis::Y => dim.1,
150        BitmaskAxis::Z => dim.2,
151    }
152}
153
154#[inline]
155fn axis_value(pos: (u32, u32, u32), axis: BitmaskAxis) -> u32 {
156    match axis {
157        BitmaskAxis::X => pos.0,
158        BitmaskAxis::Y => pos.1,
159        BitmaskAxis::Z => pos.2,
160    }
161}
162
163#[inline]
164fn compose_pos(
165    axis: BitmaskAxis,
166    axis_value: u32,
167    clamped_src_pos: (u32, u32, u32),
168) -> (u32, u32, u32) {
169    match axis {
170        BitmaskAxis::X => (axis_value, clamped_src_pos.1, clamped_src_pos.2),
171        BitmaskAxis::Y => (clamped_src_pos.0, axis_value, clamped_src_pos.2),
172        BitmaskAxis::Z => (clamped_src_pos.0, clamped_src_pos.1, axis_value),
173    }
174}
175
176#[inline]
177fn clamp_to_dim(value: u32, dim_len: usize) -> u32 {
178    if dim_len == 0 {
179        return 0;
180    }
181    value.min((dim_len - 1) as u32)
182}
183
184#[inline]
185fn bit_is_set_msb(value: u32, bit_index_from_msb: usize, bit_width: usize) -> bool {
186    if bit_index_from_msb >= bit_width {
187        return false;
188    }
189    let lsb_index = bit_width - 1 - bit_index_from_msb;
190    if lsb_index >= u32::BITS as usize {
191        return false;
192    }
193    (value & (1u32 << lsb_index)) != 0
194}
195
196#[cfg(test)]
197mod tests {
198    use super::*;
199
200    #[test]
201    fn test_encoder_x_uses_msb_convention() {
202        // Source X index 1 with width 3 checks middle bit in 3-bit destination values.
203        let out = map_positions_for_bitmask(
204            (1, 2, 3),
205            (3, 10, 10),
206            (8, 10, 10),
207            BitmaskAxis::X,
208            BitmaskMode::Encoder,
209        );
210
211        assert_eq!(
212            out,
213            vec![(2, 2, 3), (3, 2, 3), (6, 2, 3), (7, 2, 3)],
214            "Expected X positions where middle bit is set for 3-bit values"
215        );
216    }
217
218    #[test]
219    fn test_decoder_x_uses_msb_convention() {
220        // Encoded value 5 is 0101 in width-4 bitspace => active dst bits at indices 1 and 3.
221        let out = map_positions_for_bitmask(
222            (5, 1, 1),
223            (16, 10, 10),
224            (4, 10, 10),
225            BitmaskAxis::X,
226            BitmaskMode::Decoder,
227        );
228
229        assert_eq!(out, vec![(1, 1, 1), (3, 1, 1)]);
230    }
231}