perf(#28): parallelize verify_integrity() with buffer_unordered(16)
Replace sequential blob-by-blob SHA-256 verification with futures::stream::buffer_unordered(16) to hash up to 16 blobs concurrently. Each hash_file() already runs on spawn_blocking, so 16 concurrent verifications saturate both disk I/O queue and CPU cores. Before: 10K blobs × 13ms = ~130s (NVMe) — 1 core, 1 I/O in flight After: 10K blobs / 16 concurrency = ~8s — 16 cores, 16 I/O in flight
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@@ -24,6 +24,7 @@
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use async_trait::async_trait;
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use bytes::Bytes;
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use futures::stream::{self, StreamExt};
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use futures::Stream;
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use sha2::{Digest, Sha256};
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use sqlx::PgPool;
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@@ -640,8 +641,13 @@ impl DedupService {
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// ── Maintenance ──────────────────────────────────────────────
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/// Verify integrity of all blobs (PG index vs filesystem).
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///
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/// Hashes up to `VERIFY_CONCURRENCY` blobs in parallel using
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/// `buffer_unordered`, saturating both disk I/O and CPU cores.
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pub async fn verify_integrity(&self) -> Result<Vec<String>, DomainError> {
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let mut corrupted = Vec::new();
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/// Max blobs verified concurrently. Each spawns a blocking
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/// thread for SHA-256 so this also caps blocking-pool pressure.
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const VERIFY_CONCURRENCY: usize = 16;
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let rows = sqlx::query_as::<_, (String, i64)>(
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"SELECT hash, size FROM storage.blobs ORDER BY hash",
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@@ -652,43 +658,62 @@ impl DedupService {
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DomainError::internal_error("Dedup", format!("Failed to list blobs: {}", e))
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})?;
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for (hash, expected_size) in &rows {
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let blob_path = self.blob_path(hash);
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let total = rows.len();
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let blob_root = self.blob_root.clone();
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// Check file exists
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if !blob_path.exists() {
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corrupted.push(format!("{}: file missing on disk", hash));
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continue;
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}
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let corrupted: Vec<String> = stream::iter(rows)
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.map(move |(hash, expected_size)| {
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let blob_root = blob_root.clone();
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async move {
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let prefix = &hash[0..2];
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let blob_path =
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blob_root.join(prefix).join(format!("{}.blob", hash));
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// Verify hash
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match Self::hash_file(&blob_path).await {
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Ok(actual_hash) => {
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if actual_hash != *hash {
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corrupted
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.push(format!("{}: hash mismatch (actual: {})", hash, actual_hash));
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let mut issues = Vec::new();
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// Check file exists
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if !blob_path.exists() {
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issues.push(format!("{}: file missing on disk", hash));
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return issues;
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}
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}
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Err(e) => {
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corrupted.push(format!("{}: read error ({})", hash, e));
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}
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}
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// Check size
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if let Ok(file_meta) = fs::metadata(&blob_path).await
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&& file_meta.len() != *expected_size as u64
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{
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corrupted.push(format!(
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"{}: size mismatch (expected: {}, actual: {})",
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hash,
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expected_size,
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file_meta.len()
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));
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}
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}
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// Verify hash
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match Self::hash_file(&blob_path).await {
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Ok(actual_hash) => {
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if actual_hash != hash {
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issues.push(format!(
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"{}: hash mismatch (actual: {})",
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hash, actual_hash,
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));
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}
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}
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Err(e) => {
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issues.push(format!("{}: read error ({})", hash, e));
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}
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}
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// Check size
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if let Ok(file_meta) = fs::metadata(&blob_path).await
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&& file_meta.len() != expected_size as u64
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{
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issues.push(format!(
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"{}: size mismatch (expected: {}, actual: {})",
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hash,
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expected_size,
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file_meta.len(),
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));
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}
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issues
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}
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})
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.buffer_unordered(VERIFY_CONCURRENCY)
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.flat_map(stream::iter)
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.collect()
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.await;
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if corrupted.is_empty() {
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tracing::info!("Integrity check passed for {} blobs", rows.len());
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tracing::info!("Integrity check passed for {} blobs", total);
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} else {
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tracing::warn!("Integrity check found {} issues", corrupted.len());
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}
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