use crate::store::VecqIndex;
pub(crate) const MAGIC: u32 = u32::from_le_bytes(*b"VECQ");
const V1: u16 = 1;
const V1_1: u16 = 257;
pub const V1_2: u16 = 258;
pub(crate) const V1_3: u16 = 259;
pub(crate) const V1_4: u16 = 260;
pub(crate) const V1_5: u16 = 261;
#[derive(Debug)]
pub enum Error {
NotAStableFile,
UnsupportedVersion(u16),
Truncated,
DimMismatch { expected: usize, got: usize },
InvalidWorkingDim { dim: usize, working_dim: usize },
InvalidKeyTable,
InvalidWidth { width: u8 },
}
impl std::fmt::Display for Error {
fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
match self {
Error::NotAStableFile => write!(f, "not a vecq file"),
Error::UnsupportedVersion(v) => write!(f, "unsupported version {v}"),
Error::Truncated => write!(f, "file truncated"),
Error::DimMismatch { expected, got } => {
write!(f, "dim mismatch: expected {expected}, got {got}")
}
Error::InvalidWorkingDim { dim, working_dim } => {
write!(f, "invalid working_dim {working_dim} for dim {dim}")
}
Error::InvalidKeyTable => write!(f, "invalid keyed-slot table"),
Error::InvalidWidth { width } => {
write!(f, "invalid code width {width} (supported: 4, 5, 6)")
}
}
}
}
impl std::error::Error for Error {}
fn f32_to_f16_bits(x: f32) -> u16 {
let bits = x.to_bits();
let sign = ((bits >> 16) & 0x8000) as u16;
let exp = ((bits >> 23) & 0xFF) as i32;
let mant = bits & 0x7F_FFFF;
if exp == 0xFF {
return sign | 0x7C00 | if mant != 0 { 0x0200 } else { 0 };
}
let unbiased = exp - 127;
if unbiased > 15 {
return sign | 0x7C00; }
if unbiased >= -14 {
let half_exp = (unbiased + 15) as u32;
let half_mant = mant >> 13;
let mut out = sign | ((half_exp << 10) as u16) | half_mant as u16;
let round = mant & 0x1FFF;
if round > 0x1000 || (round == 0x1000 && (half_mant & 1 == 1)) {
out = out.wrapping_add(1);
}
out
} else {
let m = mant | 0x80_0000; let shift = (-unbiased - 14 + 13) as u32;
if shift >= 32 {
return sign;
}
let half_mant = m >> shift;
let mut out = sign | half_mant as u16;
let round_bits = m & ((1u32 << shift) - 1);
let halfway = 1u32 << (shift - 1);
if round_bits > halfway || (round_bits == halfway && (half_mant & 1 == 1)) {
out = out.wrapping_add(1);
}
out
}
}
pub(crate) fn f16_bits_to_f32(h: u16) -> f32 {
let sign = ((h & 0x8000) as u32) << 16;
let exp = ((h >> 10) & 0x1F) as u32;
let mant = (h & 0x03FF) as u32;
let bits = if exp == 0 {
if mant == 0 {
sign
} else {
let mut e = -1i32;
let mut m = mant;
while m & 0x0400 == 0 {
m <<= 1;
e -= 1;
}
m &= 0x03FF;
sign | (((113 + e) as u32) << 23) | (m << 13)
}
} else if exp == 0x1F {
sign | 0x7F80_0000 | (mant << 13)
} else {
sign | ((exp + 112) << 23) | (mant << 13)
};
f32::from_bits(bits)
}
impl VecqIndex {
pub fn to_bytes(&self) -> Vec<u8> {
let bits = self.bits();
let bpv = self.bytes_per_vector();
let reserved: u16 = if self.working_dim() == self.dim() {
0
} else {
self.working_dim() as u16
};
let wide = !self.is_residual() && bits != 4;
let version = if self.is_residual() {
V1_4
} else if wide {
V1_5
} else {
V1_3
};
let extra = if self.is_residual() {
self.live_slots() * (2 + bpv)
} else {
0
};
let width_byte = usize::from(wide);
let mut out = Vec::with_capacity(
24 + width_byte + self.live_slots() * bpv + self.live_slots() * 2 + extra,
);
out.extend_from_slice(&MAGIC.to_le_bytes());
out.extend_from_slice(&version.to_le_bytes());
out.extend_from_slice(&reserved.to_le_bytes());
out.extend_from_slice(&(self.dim() as u32).to_le_bytes());
out.extend_from_slice(&self.seed().to_le_bytes());
out.extend_from_slice(&(self.len() as u32).to_le_bytes());
if wide {
out.push(bits);
}
for slot in 0..self.slots() {
if !self.slot_alive(slot) {
continue;
}
out.extend_from_slice(&f32_to_f16_bits(self.slot_scale(slot)).to_le_bytes());
}
for slot in 0..self.slots() {
if !self.slot_alive(slot) {
continue;
}
out.extend_from_slice(self.slot_codes(slot, bpv));
}
if self.is_residual() {
for slot in 0..self.slots() {
if !self.slot_alive(slot) {
continue;
}
out.extend_from_slice(&f32_to_f16_bits(self.slot_scale2(slot)).to_le_bytes());
}
for slot in 0..self.slots() {
if !self.slot_alive(slot) {
continue;
}
out.extend_from_slice(self.slot_codes2(slot, bpv));
}
}
let keyed: Vec<(u32, u64)> = (0..self.slots())
.filter(|&s| self.slot_alive(s))
.enumerate()
.filter_map(|(dense, s)| self.key_of(s).map(|k| (dense as u32, k)))
.collect();
out.extend_from_slice(&(keyed.len() as u32).to_le_bytes());
for (slot, key) in keyed {
out.extend_from_slice(&slot.to_le_bytes());
out.extend_from_slice(&key.to_le_bytes());
}
out
}
pub fn from_bytes(bytes: &[u8]) -> Result<Self, Error> {
let rd_u32 = |b: &[u8]| u32::from_le_bytes([b[0], b[1], b[2], b[3]]);
let rd_u16 = |b: &[u8]| u16::from_le_bytes([b[0], b[1]]);
if bytes.len() < 24 {
return Err(Error::Truncated);
}
if rd_u32(&bytes[0..4]) != MAGIC {
return Err(Error::NotAStableFile);
}
let version = rd_u16(&bytes[4..6]);
if version != V1
&& version != V1_1
&& version != V1_2
&& version != V1_3
&& version != V1_4
&& version != V1_5
{
return Err(Error::UnsupportedVersion(version));
}
let dim = rd_u32(&bytes[8..12]) as usize;
let seed = u64::from_le_bytes(bytes[12..20].try_into().unwrap());
let count = rd_u32(&bytes[20..24]) as usize;
let working_dim = match version {
V1_2 | V1_3 | V1_4 | V1_5 => match rd_u16(&bytes[6..8]) as usize {
0 => dim,
w if w <= dim => w,
w => {
return Err(Error::InvalidWorkingDim {
dim,
working_dim: w,
})
}
},
_ => dim,
};
let padded = crate::rhdh::padded_dim(working_dim);
let (index_bits, mut off) = if version == V1_5 {
if bytes.len() < 25 {
return Err(Error::Truncated);
}
let w = bytes[24];
if !matches!(w, 4..=6) {
return Err(Error::InvalidWidth { width: w });
}
(w, 25usize)
} else {
(4u8, 24usize)
};
let codes_bytes = (padded * index_bits as usize).div_ceil(8);
let scale_bytes = if version == V1 { 4 } else { 2 };
let expected = off + count * (scale_bytes + codes_bytes);
if bytes.len() < expected {
return Err(Error::Truncated);
}
let mut scales = Vec::with_capacity(count);
for _ in 0..count {
let s = if version == V1 {
f32::from_le_bytes(bytes[off..off + 4].try_into().unwrap())
} else {
f16_bits_to_f32(rd_u16(&bytes[off..off + 2]))
};
scales.push(s);
off += scale_bytes;
}
let code_end = off + count * codes_bytes;
let mut index = VecqIndex::with_working_dim(dim, working_dim, seed);
index.codes = bytes[off..code_end].to_vec();
index.scales = scales;
index.n = count;
index.init_dense(count);
index.bits = index_bits;
if version == V1_4 {
index.residual = true;
if bytes.len() < code_end + count * (2 + codes_bytes) {
return Err(Error::Truncated);
}
let mut off2 = code_end;
for _ in 0..count {
index
.scales2
.push(f16_bits_to_f32(rd_u16(&bytes[off2..off2 + 2])));
off2 += 2;
}
index.codes2 = bytes[off2..off2 + count * codes_bytes].to_vec();
}
if version == V1_3 || version == V1_4 || version == V1_5 {
if bytes.len() < code_end + 4 {
return Err(Error::Truncated);
}
let key_base = if version == V1_4 {
code_end + count * (2 + codes_bytes)
} else {
code_end
};
let entries = rd_u32(&bytes[key_base..key_base + 4]) as usize;
let table_end = key_base + 4 + entries * 12;
if bytes.len() < table_end {
return Err(Error::Truncated);
}
let mut key_table: Vec<Option<u64>> = vec![None; count];
let mut e = key_base + 4;
for _ in 0..entries {
let slot = rd_u32(&bytes[e..e + 4]) as usize;
let key = u64::from_le_bytes(bytes[e + 4..e + 12].try_into().unwrap());
e += 12;
if slot >= count || key_table[slot].is_some() {
return Err(Error::InvalidKeyTable);
}
key_table[slot] = Some(key);
}
index.restore_keys(key_table);
}
Ok(index)
}
}
#[cfg(test)]
mod tests {
use super::*;
fn unit(dim: usize, salt: u64) -> Vec<f32> {
let mut x = salt | 1;
let mut v = Vec::with_capacity(dim);
for _ in 0..dim {
x ^= x << 13;
x ^= x >> 7;
x ^= x << 17;
v.push((x as f32 / u32::MAX as f32 - 0.5) * 2.0);
}
let norm: f32 = v.iter().map(|a| a * a).sum::<f32>().sqrt();
v.into_iter().map(|a| a / norm).collect()
}
#[test]
fn round_trip_is_identical() {
let mut idx = VecqIndex::new(384, 99);
for i in 0..50 {
idx.add(&unit(384, i * 7 + 1));
}
let bytes = idx.to_bytes();
let back = VecqIndex::from_bytes(&bytes).expect("parse");
assert_eq!(back.len(), 50);
assert_eq!(back.dim(), 384);
assert_eq!(back.seed(), 99);
let q = unit(384, 4242);
let r1 = back.search(&q, 10);
let bytes2 = back.to_bytes();
assert_eq!(bytes, bytes2, "re-serialize must be byte-identical");
let back2 = VecqIndex::from_bytes(&bytes2).unwrap();
assert_eq!(r1, back2.search(&q, 10));
let r0 = idx.search(&q, 10);
assert_eq!(r0[0].0, r1[0].0);
let overlap = r0
.iter()
.filter(|(i, _)| r1.iter().any(|(j, _)| i == j))
.count();
assert!(overlap >= 9, "top-10 overlap {overlap}");
}
#[test]
fn v11_file_smaller_and_v1_readable() {
let mut idx = VecqIndex::new(384, 7);
idx.set_bits(4); for i in 0..30 {
idx.add(&unit(384, i + 3));
}
let v11 = idx.to_bytes();
let mut v1 = Vec::new();
v1.extend_from_slice(&MAGIC.to_le_bytes());
v1.extend_from_slice(&V1.to_le_bytes());
v1.extend_from_slice(&0u16.to_le_bytes());
v1.extend_from_slice(&(384u32).to_le_bytes());
v1.extend_from_slice(&7u64.to_le_bytes());
v1.extend_from_slice(&(30u32).to_le_bytes());
for s in &idx.scales {
v1.extend_from_slice(&s.to_le_bytes());
}
let codes = &v11[24 + 30 * 2..];
v1.extend_from_slice(codes);
let from_v1 = VecqIndex::from_bytes(&v1).expect("v1 readable");
assert_eq!(from_v1.len(), 30);
let q = unit(384, 55);
assert_eq!(idx.search(&q, 5), from_v1.search(&q, 5));
assert_eq!(v1.len() - v11.len(), 30 * 2);
}
#[test]
fn deterministic_across_instances() {
let mut a = VecqIndex::new(64, 5);
let mut b = VecqIndex::new(64, 5);
for i in 0..10 {
let v = unit(64, i + 100);
a.add(&v);
b.add(&v);
}
assert_eq!(a.to_bytes(), b.to_bytes());
}
#[test]
fn rejects_garbage() {
assert!(matches!(
VecqIndex::from_bytes(b"nonsense-not-a-file-at-all"),
Err(Error::NotAStableFile)
));
assert!(matches!(VecqIndex::from_bytes(&[]), Err(Error::Truncated)));
}
#[test]
fn f16_round_trip_accuracy() {
for &x in &[0.001f32, 0.03, 0.5, 1.0, 3.7, 100.0] {
let back = f16_bits_to_f32(f32_to_f16_bits(x));
assert!((back - x).abs() / x < 0.001, "{x} -> {back}");
}
}
}