use crate::adapters::database::DbPool;
use crate::adapters::database::key_repo::KeyRepository;
use crate::config::MessagingConfig;
use crate::domain::crypto::PublicKey;
use crate::domain::keys::{OneTimePreKey, PreKeyBundle, PreKeyStatus, SignedPreKey};
use crate::error::{AppError, Result};
use crate::services::crypto_service::CryptoService;
use opentelemetry::{global, metrics::Counter};
use sqlx::PgConnection;
use uuid::Uuid;
#[derive(Clone, Debug)]
struct Metrics {
prekey_low_total: Counter<u64>,
}
impl Metrics {
fn new() -> Self {
let meter = global::meter("obscura-server");
Self {
prekey_low_total: meter
.u64_counter("obscura_prekey_threshold_reached_total")
.with_description("Events where users dipped below prekey threshold")
.build(),
}
}
}
#[derive(Clone, Debug)]
pub struct KeyService {
pool: DbPool,
repo: KeyRepository,
crypto_service: CryptoService,
config: MessagingConfig,
metrics: Metrics,
}
#[derive(Debug)]
pub struct KeyUploadParams {
pub user_id: Uuid,
pub identity_key: Option<PublicKey>,
pub registration_id: Option<i32>,
pub signed_pre_key: SignedPreKey,
pub one_time_pre_keys: Vec<OneTimePreKey>,
}
impl KeyService {
#[must_use]
pub fn new(pool: DbPool, repo: KeyRepository, crypto_service: CryptoService, config: MessagingConfig) -> Self {
Self { pool, repo, crypto_service, config, metrics: Metrics::new() }
}
#[tracing::instrument(err, skip(self), fields(user_id = %user_id))]
pub async fn get_pre_key_bundle(&self, user_id: Uuid) -> Result<Option<PreKeyBundle>> {
let mut conn = self.pool.acquire().await?;
self.repo.fetch_pre_key_bundle(&mut conn, user_id).await
}
#[tracing::instrument(err, skip(self), fields(user_id = %user_id))]
pub async fn fetch_identity_key(&self, user_id: Uuid) -> Result<Option<PublicKey>> {
let mut conn = self.pool.acquire().await?;
self.repo.fetch_identity_key(&mut conn, user_id).await
}
#[tracing::instrument(err, skip(self), fields(user_id = %user_id))]
pub async fn check_pre_key_status(&self, user_id: Uuid) -> Result<Option<PreKeyStatus>> {
let mut conn = self.pool.acquire().await?;
let count = self.repo.count_one_time_pre_keys(&mut conn, user_id).await?;
if count < i64::from(self.config.pre_key_refill_threshold) {
self.metrics.prekey_low_total.add(1, &[]);
Ok(Some(PreKeyStatus {
one_time_pre_key_count: i32::try_from(count).unwrap_or(i32::MAX),
min_threshold: self.config.pre_key_refill_threshold,
}))
} else {
Ok(None)
}
}
#[tracing::instrument(level = "debug", skip(self, conn, params), err(level = "debug"))]
pub(crate) async fn upsert_keys(&self, conn: &mut PgConnection, params: KeyUploadParams) -> Result<bool> {
let mut is_takeover = false;
let ik = if let Some(new_ik) = params.identity_key {
let existing_ik_opt = self.repo.fetch_identity_key_for_update(&mut *conn, params.user_id).await?;
if let Some(existing_ik) = existing_ik_opt {
if existing_ik != new_ik {
tracing::info!("Device takeover detected: identity key has changed");
is_takeover = true;
}
} else {
tracing::info!("Device takeover detected: new identity key for existing user");
is_takeover = true;
}
self.verify_keys(&new_ik, ¶ms.signed_pre_key)?;
new_ik
} else {
let ik = self
.repo
.fetch_identity_key_for_update(&mut *conn, params.user_id)
.await?
.ok_or_else(|| AppError::BadRequest("Identity key missing".into()))?;
self.verify_keys(&ik, ¶ms.signed_pre_key)?;
ik
};
if !is_takeover {
let max_id = self.repo.find_max_signed_pre_key_id(&mut *conn, params.user_id).await?;
if let Some(current_max) = max_id
&& params.signed_pre_key.key_id <= current_max
{
return Err(AppError::BadRequest(format!(
"Signed Pre-Key ID {} must be greater than current ID {}",
params.signed_pre_key.key_id, current_max
)));
}
}
let current_count =
if is_takeover { 0 } else { self.repo.count_one_time_pre_keys(&mut *conn, params.user_id).await? };
let new_keys_count = i64::try_from(params.one_time_pre_keys.len()).unwrap_or(i64::MAX);
if new_keys_count > self.config.max_pre_keys {
return Err(AppError::BadRequest(format!("Batch too large. Limit is {}", self.config.max_pre_keys)));
}
if is_takeover {
let reg_id =
params.registration_id.expect("registration_id must be present for takeover (validated at boundary)");
self.repo.delete_all_signed_pre_keys(&mut *conn, params.user_id).await?;
self.repo.delete_all_one_time_pre_keys(&mut *conn, params.user_id).await?;
self.repo.upsert_identity_key(&mut *conn, params.user_id, &ik, reg_id).await?;
} else {
if current_count + new_keys_count > self.config.max_pre_keys {
let to_delete = (current_count + new_keys_count) - self.config.max_pre_keys;
self.repo.delete_oldest_one_time_pre_keys(&mut *conn, params.user_id, to_delete).await?;
}
}
self.repo
.upsert_signed_pre_key(
&mut *conn,
params.user_id,
params.signed_pre_key.key_id,
¶ms.signed_pre_key.public_key,
¶ms.signed_pre_key.signature,
)
.await?;
if !is_takeover {
self.repo
.delete_signed_pre_keys_older_than(&mut *conn, params.user_id, params.signed_pre_key.key_id)
.await?;
}
self.repo.insert_one_time_pre_keys(&mut *conn, params.user_id, ¶ms.one_time_pre_keys).await?;
Ok(is_takeover)
}
fn verify_keys(&self, ik: &PublicKey, signed_pre_key: &SignedPreKey) -> Result<()> {
let raw_32 = signed_pre_key.public_key.as_crypto_bytes();
let wire_33 = signed_pre_key.public_key.as_bytes();
if self.crypto_service.verify_signature(ik, wire_33, &signed_pre_key.signature).is_ok() {
return Ok(());
}
self.crypto_service.verify_signature(ik, raw_32, &signed_pre_key.signature)
}
}
#[cfg(test)]
mod tests {
use super::*;
use crate::domain::crypto::{DJB_KEY_PREFIX, PublicKey, Signature};
use curve25519_dalek::edwards::CompressedEdwardsY;
use rand::RngCore;
use rand::rngs::OsRng;
use xeddsa::xed25519::PrivateKey;
use xeddsa::{CalculateKeyPair, Sign};
fn setup_service() -> KeyService {
let config = MessagingConfig::default();
let pool = sqlx::PgPool::connect_lazy("postgres://localhost").expect("Valid test pool");
KeyService::new(pool, KeyRepository::new(), CryptoService::new(), config)
}
fn generate_keys() -> (PrivateKey, PublicKey, PrivateKey, PublicKey, Signature) {
let mut ik_bytes = [0u8; 32];
OsRng.fill_bytes(&mut ik_bytes);
let ik = PrivateKey(ik_bytes);
let (_, ik_pub_ed) = ik.calculate_key_pair(0);
let ik_pub_mont =
CompressedEdwardsY(ik_pub_ed).decompress().expect("Failed to decompress").to_montgomery().to_bytes();
let mut ik_pub_wire = [0u8; 33];
ik_pub_wire[0] = DJB_KEY_PREFIX;
ik_pub_wire[1..].copy_from_slice(&ik_pub_mont);
let ik_pub = PublicKey::new(ik_pub_wire);
let mut spk_bytes = [0u8; 32];
OsRng.fill_bytes(&mut spk_bytes);
let spk = PrivateKey(spk_bytes);
let (_, spk_pub_ed) = spk.calculate_key_pair(0);
let spk_pub_mont =
CompressedEdwardsY(spk_pub_ed).decompress().expect("Failed to decompress").to_montgomery().to_bytes();
let mut spk_pub_wire = [0u8; 33];
spk_pub_wire[0] = DJB_KEY_PREFIX;
spk_pub_wire[1..].copy_from_slice(&spk_pub_mont);
let spk_pub = PublicKey::new(spk_pub_wire);
let signature_bytes: [u8; 64] = ik.sign(spk_pub_wire.as_slice(), OsRng);
let signature = Signature::new(signature_bytes);
(ik, ik_pub, spk, spk_pub, signature)
}
#[tokio::test]
async fn test_verify_keys_client_format() {
let service = setup_service();
let (_, ik_pub, _, spk_pub, signature) = generate_keys();
let spk = SignedPreKey { key_id: 1, public_key: spk_pub, signature };
assert!(service.verify_keys(&ik_pub, &spk).is_ok());
}
}