Files
rustfs/crates/e2e_test/src/reliability_disk_fault_test.rs
T
Zhengchao An 493a2cc1ba test(heal): strengthen replacement e2e evidence (#5956)
* test(heal): strengthen replacement e2e evidence

* test(heal): fix replacement e2e barriers

Accept the real post-fault scanner failure-to-idle sequence as the live disk loss barrier, and preserve the first definitive completed status while only resampling the physical census for premature-completion confirmation.

Co-Authored-By: heihutu <heihutu@gmail.com>

---------

Co-authored-by: houseme <housemecn@gmail.com>
Co-authored-by: heihutu <heihutu@gmail.com>
2026-08-12 08:14:52 +00:00

472 lines
20 KiB
Rust

// Copyright 2024 RustFS Team
//
// Licensed under the Apache License, Version 2.0 (the "License");
// you may not use this file except in compliance with the License.
// You may obtain a copy of the License at
//
// http://www.apache.org/licenses/LICENSE-2.0
//
// Unless required by applicable law or agreed to in writing, software
// distributed under the License is distributed on an "AS IS" BASIS,
// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
// See the License for the specific language governing permissions and
// limitations under the License.
//! Reliability tests driven by in-process fault injection (see `chaos.rs`):
//! degraded reads/writes with an offline disk, bitrot read-through, and
//! fresh-disk replacement heal after a SIGKILL restart.
//!
//! All tests use a single-node 4-disk topology (default erasure coding for
//! 4 drives is 2 data + 2 parity) and verify object content via sha256
//! manifests recorded at write time.
#[cfg(test)]
mod tests {
use crate::chaos::{DiskFaultHarness, VersionShardCensus, signed_admin_post};
use crate::common::init_logging;
use aws_sdk_s3::Client;
use aws_sdk_s3::primitives::ByteStream;
use aws_sdk_s3::types::{BucketVersioningStatus, CompletedMultipartUpload, CompletedPart, VersioningConfiguration};
use serial_test::serial;
use sha2::{Digest, Sha256};
use std::collections::HashSet;
use std::error::Error;
use tokio::time::{Duration, Instant, interval, timeout};
use tracing::info;
const GET_TIMEOUT: Duration = Duration::from_secs(60);
const PUT_TIMEOUT: Duration = Duration::from_secs(60);
fn sha256_hex(data: &[u8]) -> String {
let digest = Sha256::digest(data);
digest.iter().map(|byte| format!("{byte:02x}")).collect()
}
/// Deterministic pseudo-random payload so tests stay reproducible.
fn payload(len: usize, seed: u8) -> Vec<u8> {
(0..len)
.map(|i| (i as u64).wrapping_mul(2654435761).wrapping_add(seed as u64) as u8)
.collect()
}
async fn put_and_record(
client: &Client,
bucket: &str,
key: &str,
body: Vec<u8>,
manifest: &mut Vec<(String, String)>,
) -> Result<(), Box<dyn std::error::Error + Send + Sync>> {
let digest = sha256_hex(&body);
timeout(
PUT_TIMEOUT,
client
.put_object()
.bucket(bucket)
.key(key)
.body(ByteStream::from(body))
.send(),
)
.await
.map_err(|_| format!("PUT {key} timed out"))??;
manifest.push((key.to_string(), digest));
Ok(())
}
async fn multipart_put_and_record(
client: &Client,
bucket: &str,
key: &str,
parts: Vec<Vec<u8>>,
manifest: &mut Vec<(String, String)>,
) -> Result<(), Box<dyn std::error::Error + Send + Sync>> {
let full_body: Vec<u8> = parts.iter().flatten().copied().collect();
let digest = sha256_hex(&full_body);
let create = client.create_multipart_upload().bucket(bucket).key(key).send().await?;
let upload_id = create.upload_id().ok_or("missing upload id")?.to_string();
let mut completed_parts = Vec::with_capacity(parts.len());
for (index, part_body) in parts.into_iter().enumerate() {
let part_number = (index + 1) as i32;
let uploaded = timeout(
PUT_TIMEOUT,
client
.upload_part()
.bucket(bucket)
.key(key)
.upload_id(&upload_id)
.part_number(part_number)
.body(ByteStream::from(part_body))
.send(),
)
.await
.map_err(|_| format!("upload_part {part_number} for {key} timed out"))??;
completed_parts.push(
CompletedPart::builder()
.part_number(part_number)
.e_tag(uploaded.e_tag().ok_or("missing part etag")?)
.build(),
);
}
client
.complete_multipart_upload()
.bucket(bucket)
.key(key)
.upload_id(&upload_id)
.multipart_upload(CompletedMultipartUpload::builder().set_parts(Some(completed_parts)).build())
.send()
.await?;
manifest.push((key.to_string(), digest));
Ok(())
}
async fn verify_manifest(
client: &Client,
bucket: &str,
manifest: &[(String, String)],
phase: &str,
) -> Result<(), Box<dyn std::error::Error + Send + Sync>> {
for (key, expected_sha256) in manifest {
let response = timeout(GET_TIMEOUT, client.get_object().bucket(bucket).key(key).send())
.await
.map_err(|_| format!("GET {key} timed out during {phase}"))?
.map_err(|err| format!("GET {key} failed during {phase}: {err}"))?;
let body = response
.body
.collect()
.await
.map_err(|err| format!("GET {key} body collect failed during {phase}: {err}"))?
.into_bytes();
let actual_sha256 = sha256_hex(&body);
if actual_sha256 != *expected_sha256 {
return Err(format!(
"sha256 mismatch for {key} during {phase}: expected {expected_sha256}, got {actual_sha256} ({} bytes)",
body.len()
)
.into());
}
}
info!("Verified {} objects during {}", manifest.len(), phase);
Ok(())
}
/// One disk goes offline at runtime: all previously written objects (from
/// inline-small to multipart-sized) must stay readable with intact
/// content, degraded writes must succeed, and everything must still
/// verify after the disk returns.
#[tokio::test]
#[serial]
async fn test_degraded_read_write_with_one_disk_offline() -> Result<(), Box<dyn std::error::Error + Send + Sync>> {
init_logging();
info!("Reliability: degraded read/write with one of four disks offline");
let mut harness = DiskFaultHarness::new(4).await?;
harness.start_server().await?;
let client = harness.env.create_s3_client();
let bucket = "reliability-degraded-rw";
client.create_bucket().bucket(bucket).send().await?;
let mut manifest: Vec<(String, String)> = Vec::new();
put_and_record(&client, bucket, "degraded/small.bin", payload(4 * 1024, 1), &mut manifest).await?;
put_and_record(&client, bucket, "degraded/medium.bin", payload(1024 * 1024, 2), &mut manifest).await?;
put_and_record(&client, bucket, "degraded/big.bin", payload(3 * 1024 * 1024, 3), &mut manifest).await?;
multipart_put_and_record(
&client,
bucket,
"degraded/multipart.bin",
vec![payload(5 * 1024 * 1024, 4), payload(1024 * 1024, 5)],
&mut manifest,
)
.await?;
verify_manifest(&client, bucket, &manifest, "baseline with all disks online").await?;
harness.take_disk_offline(0)?;
verify_manifest(&client, bucket, &manifest, "degraded read with disk0 offline").await?;
// Degraded writes: 3 of 4 disks still satisfy the write quorum for
// an EC 2+2 set.
put_and_record(
&client,
bucket,
"degraded/written-while-offline.bin",
payload(1024 * 1024, 9),
&mut manifest,
)
.await?;
verify_manifest(&client, bucket, &manifest, "read-back of degraded write").await?;
harness.bring_disk_online(0)?;
verify_manifest(&client, bucket, &manifest, "after disk0 came back online").await?;
Ok(())
}
/// Silent bitrot in a single erasure shard must never surface corrupted
/// bytes to a reader: per-shard bitrot checksums reject the bad shard and
/// the object is reconstructed from the remaining shards.
#[tokio::test]
#[serial]
async fn test_bitrot_corrupted_shard_read_returns_correct_data() -> Result<(), Box<dyn std::error::Error + Send + Sync>> {
init_logging();
info!("Reliability: GET must read through a bitrot-corrupted shard");
let mut harness = DiskFaultHarness::new(4).await?;
harness.start_server().await?;
let client = harness.env.create_s3_client();
let bucket = "reliability-bitrot";
client.create_bucket().bucket(bucket).send().await?;
let key_a = "bitrot/object-a.bin";
let key_b = "bitrot/object-b.bin";
let mut manifest: Vec<(String, String)> = Vec::new();
// 2 MiB objects are far above the 128 KiB inline threshold, so every
// disk holds a real part.1 shard file to corrupt.
put_and_record(&client, bucket, key_a, payload(2 * 1024 * 1024, 21), &mut manifest).await?;
put_and_record(&client, bucket, key_b, payload(2 * 1024 * 1024, 22), &mut manifest).await?;
verify_manifest(&client, bucket, &manifest, "baseline before corruption").await?;
// Corrupt two shards per object (the maximum an EC 2+2 set can lose)
// on different disk pairs. Which disks hold data vs parity depends on
// the per-object distribution, so corrupting a pair makes it very
// likely that at least one data shard is hit; either way the read
// must return intact content reconstructed from the clean shards.
harness.corrupt_object_shard(0, bucket, key_a)?;
harness.corrupt_object_shard(1, bucket, key_a)?;
harness.corrupt_object_shard(2, bucket, key_b)?;
harness.corrupt_object_shard(3, bucket, key_b)?;
verify_manifest(&client, bucket, &manifest, "first read after shard corruption").await?;
// A second pass ensures repeated reads stay correct as well.
verify_manifest(&client, bucket, &manifest, "second read after shard corruption").await?;
Ok(())
}
/// Fresh-disk replacement: SIGKILL the server, swap one disk for an empty
/// directory, restart with the same volumes/port, trigger an admin deep
/// heal, and require the replaced disk to be rebuilt and all content to
/// verify against the sha256 manifest.
#[tokio::test]
#[serial]
async fn test_fresh_disk_replacement_heals_after_sigkill_restart() -> Result<(), Box<dyn std::error::Error + Send + Sync>> {
init_logging();
info!("Reliability: fresh-disk replacement heals after SIGKILL restart");
let mut harness = DiskFaultHarness::new(4).await?;
harness.start_server().await?;
let client = harness.env.create_s3_client();
let bucket = "reliability-fresh-disk";
client.create_bucket().bucket(bucket).send().await?;
let mut manifest: Vec<(String, String)> = Vec::new();
put_and_record(&client, bucket, "heal/tiny.bin", payload(4 * 1024, 31), &mut manifest).await?;
put_and_record(&client, bucket, "heal/small.bin", payload(256 * 1024, 32), &mut manifest).await?;
put_and_record(&client, bucket, "heal/medium.bin", payload(1024 * 1024, 33), &mut manifest).await?;
put_and_record(&client, bucket, "heal/nested/large.bin", payload(2 * 1024 * 1024, 34), &mut manifest).await?;
verify_manifest(&client, bucket, &manifest, "baseline before disk replacement").await?;
let manifest_keys = manifest.iter().map(|(key, _)| key.clone()).collect::<Vec<_>>();
let target_manifest: Vec<(String, VersionShardCensus)> = manifest_keys
.iter()
.map(|key| {
let census = harness.census_object_version(0, bucket, key, None)?;
if !census.is_complete() {
return Err(format!("disk 0 has incomplete physical census for {key}: {census:?}").into());
}
Ok((key.clone(), census))
})
.collect::<Result<_, Box<dyn Error + Send + Sync>>>()?;
harness.kill_server();
harness.replace_disk_with_empty(0)?;
harness.restart_server().await?;
let heal_body = r#"{"recursive":true,"dryRun":false,"remove":false,"recreate":true,"scanMode":2,"updateParity":false,"nolock":false}"#;
let heal_url = format!("{}/rustfs/admin/v3/heal/{}?forceStart=true", harness.env.url, bucket);
signed_admin_post(&heal_url, Some(heal_body), &harness.env.access_key, &harness.env.secret_key).await?;
let client = harness.env.create_s3_client();
let mut remaining: HashSet<String> = manifest_keys.iter().cloned().collect();
let heal_timeout_secs = std::env::var("RUSTFS_RELIABILITY_HEAL_TIMEOUT_SECS")
.ok()
.and_then(|value| value.parse::<u64>().ok())
.unwrap_or(120);
let deadline = Instant::now() + Duration::from_secs(heal_timeout_secs);
let mut retry = interval(Duration::from_secs(1));
loop {
remaining.retain(|key| {
let expected = target_manifest
.iter()
.find(|(manifest_key, _)| manifest_key == key)
.map(|(_, manifest)| manifest)
.expect("every key has a physical manifest");
harness
.census_object_version(0, bucket, key, None)
.map(|census| !census.matches_manifest(expected))
.unwrap_or(true)
});
if remaining.is_empty() {
verify_manifest(&client, bucket, &manifest, "after fresh-disk heal completed").await?;
return Ok(());
}
if Instant::now() >= deadline {
break;
}
retry.tick().await;
}
Err(format!("fresh-disk heal did not rebuild {remaining:?} on the replaced disk within {heal_timeout_secs}s").into())
}
#[tokio::test]
#[serial]
async fn test_versioned_shard_census_selects_each_version_data_dir() -> Result<(), Box<dyn Error + Send + Sync>> {
init_logging();
info!("Reliability: physical shard census selects the requested object version");
let mut harness = DiskFaultHarness::new(4).await?;
harness.start_server().await?;
let client = harness.env.create_s3_client();
let bucket = "reliability-versioned-census";
let key = "versions/large.bin";
client.create_bucket().bucket(bucket).send().await?;
client
.put_bucket_versioning()
.bucket(bucket)
.versioning_configuration(
VersioningConfiguration::builder()
.status(BucketVersioningStatus::Enabled)
.build(),
)
.send()
.await?;
let first_inline = client
.put_object()
.bucket(bucket)
.key("versions/inline.bin")
.body(ByteStream::from(payload(8 * 1024, 40)))
.send()
.await?;
let first_inline_version = first_inline
.version_id()
.ok_or("first inline PUT did not return a version ID")?;
let second_inline = client
.put_object()
.bucket(bucket)
.key("versions/inline.bin")
.body(ByteStream::from(payload(8 * 1024, 41)))
.send()
.await?;
let second_inline_version = second_inline
.version_id()
.ok_or("second inline PUT did not return a version ID")?;
let first = client
.put_object()
.bucket(bucket)
.key(key)
.body(ByteStream::from(payload(128 * 1024, 41)))
.send()
.await?;
let first_version = first.version_id().ok_or("first PUT did not return a version ID")?;
let second = client
.put_object()
.bucket(bucket)
.key(key)
.body(ByteStream::from(payload(3 * 1024 * 1024, 42)))
.send()
.await?;
let second_version = second.version_id().ok_or("second PUT did not return a version ID")?;
let delete = client.delete_object().bucket(bucket).key(key).send().await?;
let delete_version = delete.version_id().ok_or("delete marker did not return a version ID")?;
let first_inline_census = harness.census_object_version(0, bucket, "versions/inline.bin", Some(first_inline_version))?;
let second_inline_census =
harness.census_object_version(0, bucket, "versions/inline.bin", Some(second_inline_version))?;
let first_census = harness.census_object_version(0, bucket, key, Some(first_version))?;
let first_other_disk_census = harness.census_object_version(1, bucket, key, Some(first_version))?;
let second_census = harness.census_object_version(0, bucket, key, Some(second_version))?;
let delete_census = harness.census_object_version(0, bucket, key, Some(delete_version))?;
assert!(
first_inline_census.is_complete() && second_inline_census.is_complete(),
"inline version physical census is incomplete: first={first_inline_census:?} second={second_inline_census:?}"
);
assert!(
first_inline_census.present_part_fingerprints.is_empty() && second_inline_census.present_part_fingerprints.is_empty(),
"inline versions must not select external shard files: first={first_inline_census:?} second={second_inline_census:?}"
);
assert!(
first_inline_census.inline_data_fingerprint.is_some() && second_inline_census.inline_data_fingerprint.is_some(),
"inline versions must fingerprint payload bytes stored in xl.meta"
);
assert_ne!(
first_inline_census.inline_data_fingerprint, second_inline_census.inline_data_fingerprint,
"same-size inline versions with different payloads must retain distinct xl.meta fingerprints"
);
assert!(
first_census.is_complete(),
"first version physical census is incomplete: {first_census:?}"
);
assert!(
second_census.is_complete(),
"second version physical census is incomplete: {second_census:?}"
);
assert!(
first_other_disk_census.is_complete(),
"first version physical census on the second disk is incomplete: {first_other_disk_census:?}"
);
assert_ne!(
first_census.erasure_index, first_other_disk_census.erasure_index,
"physical census must preserve each disk's erasure index"
);
assert_ne!(
first_census.data_dir, second_census.data_dir,
"distinct object versions must select distinct physical data directories"
);
assert_eq!(
first_census.expected_part_numbers, second_census.expected_part_numbers,
"same single-part shape should expose the same part numbers"
);
let first_part = first_census
.present_part_fingerprints
.values()
.next()
.ok_or("first version did not expose a physical part fingerprint")?;
let second_part = second_census
.present_part_fingerprints
.values()
.next()
.ok_or("second version did not expose a physical part fingerprint")?;
assert_ne!(
first_part.size, second_part.size,
"different shard lengths must retain their physical sizes"
);
assert_ne!(
first_part.sha256, second_part.sha256,
"different shard contents must retain their physical hashes"
);
assert!(
delete_census.is_complete(),
"delete marker physical census is incomplete: {delete_census:?}"
);
assert!(
delete_census.expected_part_numbers.is_empty(),
"delete marker must not declare object shards: {delete_census:?}"
);
assert!(
delete_census.present_part_fingerprints.is_empty(),
"delete marker must not select stale object shards: {delete_census:?}"
);
Ok(())
}
}