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rustfs/crates/utils/src/http/metadata_compat.rs
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2026-07-20 10:32:02 +00:00

480 lines
22 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.
//! System metadata compatibility: write both x-rustfs-internal-* and x-minio-internal-*
//! for MinIO interoperability. Read prefers RustFS, fallback to MinIO.
use std::collections::HashMap;
pub const RUSTFS_INTERNAL_PREFIX: &str = "x-rustfs-internal-";
pub const MINIO_INTERNAL_PREFIX: &str = "x-minio-internal-";
// Key suffixes (lowercase, no prefix)
pub const SUFFIX_INLINE_DATA: &str = "inline-data";
pub const SUFFIX_DATA_MOVED: &str = "data-moved";
/// Transient flag for data movement
pub const SUFFIX_DATA_MOV: &str = "data-mov";
/// Transient flag for healing
pub const SUFFIX_HEALING: &str = "healing";
pub const SUFFIX_COMPRESSION: &str = "compression";
pub const SUFFIX_COMPRESSION_SIZE: &str = "compression-size";
pub const SUFFIX_ACTUAL_SIZE: &str = "actual-size";
pub const SUFFIX_ACTUAL_OBJECT_SIZE: &str = "actual-object-size";
/// Used by replication; key stored with capital A
pub const SUFFIX_ACTUAL_OBJECT_SIZE_CAP: &str = "Actual-Object-Size";
pub const SUFFIX_CRC: &str = "crc";
pub const SUFFIX_TRANSITION_STATUS: &str = "transition-status";
pub const SUFFIX_TRANSITIONED_OBJECTNAME: &str = "transitioned-object";
pub const SUFFIX_TRANSITIONED_VERSION_ID: &str = "transitioned-versionID";
pub const SUFFIX_TRANSITION_TIER: &str = "transition-tier";
pub const SUFFIX_TRANSITION_TIER_DESTINATION_ID: &str = "transition-tier-destination-id";
pub const SUFFIX_RESTORE_OPERATION_ID: &str = "restore-operation-id";
pub const SUFFIX_FREE_VERSION: &str = "free-version";
pub const SUFFIX_PURGESTATUS: &str = "purgestatus";
pub const SUFFIX_REPLICA_STATUS: &str = "replica-status";
pub const SUFFIX_REPLICA_TIMESTAMP: &str = "replica-timestamp";
pub const SUFFIX_REPLICATION_STATUS: &str = "replication-status";
pub const SUFFIX_REPLICATION_TIMESTAMP: &str = "replication-timestamp";
pub const SUFFIX_TAGGING_TIMESTAMP: &str = "tagging-timestamp";
pub const SUFFIX_OBJECTLOCK_RETENTION_TIMESTAMP: &str = "objectlock-retention-timestamp";
pub const SUFFIX_OBJECTLOCK_LEGALHOLD_TIMESTAMP: &str = "objectlock-legalhold-timestamp";
pub const SUFFIX_REPLICATION_RESET: &str = "replication-reset";
/// Prefix for replication-reset-{arn} keys; use with internal_key_strip_suffix_prefix to extract arn.
pub const SUFFIX_REPLICATION_RESET_ARN_PREFIX: &str = "replication-reset-";
pub const SUFFIX_TIER_FV_ID: &str = "tier-free-versionID";
pub const SUFFIX_TIER_FV_MARKER: &str = "tier-free-marker";
pub const SUFFIX_TIER_SKIP_FV_ID: &str = "tier-skip-fvid";
/// Case-insensitive (ASCII) check that `s` begins with `prefix`. Equivalent to
/// `s.to_lowercase().starts_with(prefix)` when `prefix` is ASCII (as both internal prefixes are),
/// but without allocating.
fn starts_with_ignore_ascii_case(s: &str, prefix: &str) -> bool {
s.len() >= prefix.len() && s.as_bytes()[..prefix.len()].eq_ignore_ascii_case(prefix.as_bytes())
}
/// Allocation-free equivalent of `key.to_lowercase() == format!("{prefix}{suffix}")`.
/// The common ASCII path matches the prefix case-insensitively and ASCII-lowercases the suffix
/// region byte-for-byte. Non-ASCII keys fall back to full Unicode lowercasing so the result is
/// identical to the original for every input (e.g. U+212A KELVIN SIGN lowercases to ASCII `k`).
fn internal_key_eq(key: &str, prefix: &str, suffix: &str) -> bool {
if !key.is_ascii() {
return key.to_lowercase() == format!("{prefix}{suffix}");
}
let key = key.as_bytes();
if key.len() != prefix.len() + suffix.len() {
return false;
}
let (key_prefix, key_suffix) = key.split_at(prefix.len());
key_prefix.eq_ignore_ascii_case(prefix.as_bytes())
&& key_suffix
.iter()
.zip(suffix.as_bytes())
.all(|(k, s)| k.to_ascii_lowercase() == *s)
}
/// Returns true if the key is an internal metadata key (x-rustfs-internal-* or x-minio-internal-*)
/// for xl.meta compatibility. Case-insensitive.
pub fn is_internal_key(key: &str) -> bool {
starts_with_ignore_ascii_case(key, RUSTFS_INTERNAL_PREFIX) || starts_with_ignore_ascii_case(key, MINIO_INTERNAL_PREFIX)
}
/// Returns true if the key matches the given suffix for either x-rustfs-internal-* or x-minio-internal-*.
pub fn has_internal_suffix(key: &str, suffix: &str) -> bool {
internal_key_eq(key, RUSTFS_INTERNAL_PREFIX, suffix) || internal_key_eq(key, MINIO_INTERNAL_PREFIX, suffix)
}
/// Strips x-rustfs-internal- or x-minio-internal- prefix from key. Returns the suffix part.
/// Case-insensitive. Returns None if key is not an internal key.
pub fn strip_internal_prefix(key: &str) -> Option<String> {
let rest = if starts_with_ignore_ascii_case(key, RUSTFS_INTERNAL_PREFIX) {
&key[RUSTFS_INTERNAL_PREFIX.len()..]
} else if starts_with_ignore_ascii_case(key, MINIO_INTERNAL_PREFIX) {
&key[MINIO_INTERNAL_PREFIX.len()..]
} else {
return None;
};
Some(rest.to_lowercase())
}
/// Returns true if key is internal and its suffix part starts with the given suffix_prefix.
/// E.g. internal_key_starts_with("x-rustfs-internal-replication-reset-arn1", "replication-reset") == true.
pub fn internal_key_starts_with(key: &str, suffix_prefix: &str) -> bool {
strip_internal_prefix(key).is_some_and(|s| s.starts_with(suffix_prefix))
}
/// For keys like x-rustfs-internal-replication-reset-{arn}, strips the internal prefix and suffix_prefix,
/// returning the remainder (e.g. "arn1"). Returns None if key does not match.
pub fn internal_key_strip_suffix_prefix(key: &str, suffix_prefix: &str) -> Option<String> {
let rest = strip_internal_prefix(key)?;
rest.strip_prefix(suffix_prefix).map(|s| s.to_string())
}
fn both_keys(suffix: &str) -> (String, String) {
(format!("{RUSTFS_INTERNAL_PREFIX}{suffix}"), format!("{MINIO_INTERNAL_PREFIX}{suffix}"))
}
/// Longest known suffix ("objectlock-retention-timestamp", 30 bytes) plus the 18-byte prefix fits
/// well under this; the cap leaves ample headroom so lookups never touch the heap in practice.
const INTERNAL_KEY_STACK_CAP: usize = 96;
/// Builds the internal key `{prefix}{suffix}` in a stack buffer and invokes `f` with it, avoiding
/// the per-lookup heap allocation that `format!` incurs. Falls back to an owned `String` only for
/// unusually long suffixes that do not fit the stack buffer.
fn with_internal_key<R>(prefix: &str, suffix: &str, f: impl FnOnce(&str) -> R) -> R {
let total = prefix.len() + suffix.len();
if total <= INTERNAL_KEY_STACK_CAP {
let mut buf = [0u8; INTERNAL_KEY_STACK_CAP];
buf[..prefix.len()].copy_from_slice(prefix.as_bytes());
buf[prefix.len()..total].copy_from_slice(suffix.as_bytes());
// `prefix` and `suffix` are both `&str`, so their concatenation is valid UTF-8.
match std::str::from_utf8(&buf[..total]) {
Ok(key) => f(key),
Err(_) => f(&format!("{prefix}{suffix}")),
}
} else {
f(&format!("{prefix}{suffix}"))
}
}
/// Builds the RustFS internal key for the given suffix. Use when a single key is needed (e.g. for
/// backward compat). Prefer insert_str/get_str when both keys should be written/read.
pub fn internal_key_rustfs(suffix: &str) -> String {
format!("{RUSTFS_INTERNAL_PREFIX}{suffix}")
}
// === String type (FileInfo.metadata, user_defined) ===
pub fn insert_str(map: &mut HashMap<String, String>, suffix: &str, value: String) {
let (k1, k2) = both_keys(suffix);
map.insert(k1, value.clone());
map.insert(k2, value);
}
pub fn get_str(map: &HashMap<String, String>, suffix: &str) -> Option<String> {
if let Some(v) = with_internal_key(RUSTFS_INTERNAL_PREFIX, suffix, |k1| map.get(k1).cloned()) {
return Some(v);
}
if let Some(v) = with_internal_key(MINIO_INTERNAL_PREFIX, suffix, |k2| map.get(k2).cloned()) {
return Some(v);
}
// Rare fallback: case-insensitive scan for non-canonical key casing.
let (k1, k2) = both_keys(suffix);
map.iter()
.find(|(key, _)| key.eq_ignore_ascii_case(&k1) || key.eq_ignore_ascii_case(&k2))
.map(|(_, value)| value.clone())
}
fn get_consistent_value<'a, V: AsRef<[u8]>>(map: &'a HashMap<String, V>, suffix: &str) -> Option<&'a V> {
let (rustfs_key, minio_key) = both_keys(suffix);
let mut value = None;
for (key, candidate) in map {
if !key.eq_ignore_ascii_case(&rustfs_key) && !key.eq_ignore_ascii_case(&minio_key) {
continue;
}
if candidate.as_ref().is_empty() || value.is_some_and(|current: &V| current.as_ref() != candidate.as_ref()) {
return None;
}
value = Some(candidate);
}
value
}
/// Returns a non-empty value when every compatibility key present for `suffix` agrees.
/// A single RustFS or MinIO key is accepted for backward compatibility; conflicting or empty
/// values return `None` so callers at destructive boundaries can fail closed.
pub fn get_consistent_str<'a>(map: &'a HashMap<String, String>, suffix: &str) -> Option<&'a str> {
get_consistent_value(map, suffix).map(String::as_str)
}
pub fn contains_key_str(map: &HashMap<String, String>, suffix: &str) -> bool {
if with_internal_key(RUSTFS_INTERNAL_PREFIX, suffix, |k1| map.contains_key(k1)) {
return true;
}
if with_internal_key(MINIO_INTERNAL_PREFIX, suffix, |k2| map.contains_key(k2)) {
return true;
}
let (k1, k2) = both_keys(suffix);
map.keys()
.any(|key| key.eq_ignore_ascii_case(&k1) || key.eq_ignore_ascii_case(&k2))
}
pub fn remove_str(map: &mut HashMap<String, String>, suffix: &str) {
with_internal_key(RUSTFS_INTERNAL_PREFIX, suffix, |k1| map.remove(k1));
with_internal_key(MINIO_INTERNAL_PREFIX, suffix, |k2| map.remove(k2));
let (k1, k2) = both_keys(suffix);
map.retain(|key, _| !key.eq_ignore_ascii_case(&k1) && !key.eq_ignore_ascii_case(&k2));
}
// === Vec<u8> type (meta_sys) ===
pub fn insert_bytes(map: &mut HashMap<String, Vec<u8>>, suffix: &str, value: Vec<u8>) {
let (k1, k2) = both_keys(suffix);
let v = value.clone();
map.insert(k1, value);
map.insert(k2, v);
}
pub fn get_bytes(map: &HashMap<String, Vec<u8>>, suffix: &str) -> Option<Vec<u8>> {
with_internal_key(RUSTFS_INTERNAL_PREFIX, suffix, |k1| map.get(k1).cloned())
.or_else(|| with_internal_key(MINIO_INTERNAL_PREFIX, suffix, |k2| map.get(k2).cloned()))
}
/// Byte-valued counterpart of [`get_consistent_str`].
pub fn get_consistent_bytes<'a>(map: &'a HashMap<String, Vec<u8>>, suffix: &str) -> Option<&'a [u8]> {
get_consistent_value(map, suffix).map(Vec::as_slice)
}
pub fn contains_key_bytes(map: &HashMap<String, Vec<u8>>, suffix: &str) -> bool {
with_internal_key(RUSTFS_INTERNAL_PREFIX, suffix, |k1| map.contains_key(k1))
|| with_internal_key(MINIO_INTERNAL_PREFIX, suffix, |k2| map.contains_key(k2))
}
pub fn remove_bytes(map: &mut HashMap<String, Vec<u8>>, suffix: &str) {
with_internal_key(RUSTFS_INTERNAL_PREFIX, suffix, |k1| map.remove(k1));
with_internal_key(MINIO_INTERNAL_PREFIX, suffix, |k2| map.remove(k2));
}
#[cfg(test)]
mod tests {
use super::*;
#[test]
fn test_is_internal_key() {
assert!(is_internal_key("x-rustfs-internal-healing"));
assert!(is_internal_key("x-rustfs-internal-purgestatus"));
assert!(is_internal_key("X-RustFS-Internal-purgestatus"));
assert!(is_internal_key("x-minio-internal-compression"));
assert!(is_internal_key("x-minio-internal-replication-status"));
assert!(is_internal_key("X-Minio-Internal-Compression"));
assert!(!is_internal_key("x-amz-meta-custom"));
assert!(!is_internal_key("content-type"));
assert!(!is_internal_key("x-rustfs-meta-custom"));
}
#[test]
fn test_has_internal_suffix() {
assert!(has_internal_suffix("x-rustfs-internal-purgestatus", SUFFIX_PURGESTATUS));
assert!(has_internal_suffix("X-Minio-Internal-purgestatus", SUFFIX_PURGESTATUS));
assert!(has_internal_suffix("x-minio-internal-compression", SUFFIX_COMPRESSION));
assert!(has_internal_suffix("x-rustfs-internal-healing", SUFFIX_HEALING));
assert!(has_internal_suffix("x-minio-internal-data-mov", SUFFIX_DATA_MOV));
assert!(!has_internal_suffix("x-rustfs-internal-purgestatus", SUFFIX_HEALING));
assert!(!has_internal_suffix("x-amz-meta-custom", SUFFIX_PURGESTATUS));
}
#[test]
fn test_str_lookup_accepts_minio_metadata_case() {
let mut metadata = HashMap::from([
("X-Minio-Internal-compression".to_string(), "klauspost/compress/s2".to_string()),
("X-Minio-Internal-actual-size".to_string(), "268435456".to_string()),
]);
assert!(contains_key_str(&metadata, SUFFIX_COMPRESSION));
assert_eq!(get_str(&metadata, SUFFIX_COMPRESSION).as_deref(), Some("klauspost/compress/s2"));
assert_eq!(get_str(&metadata, SUFFIX_ACTUAL_SIZE).as_deref(), Some("268435456"));
remove_str(&mut metadata, SUFFIX_COMPRESSION);
assert!(!contains_key_str(&metadata, SUFFIX_COMPRESSION));
assert!(!metadata.contains_key("X-Minio-Internal-compression"));
assert!(contains_key_str(&metadata, SUFFIX_ACTUAL_SIZE));
}
#[test]
fn test_str_prefers_rustfs_key_over_minio() {
let metadata = HashMap::from([
(internal_key_rustfs(SUFFIX_TRANSITION_TIER), "rustfs-tier".to_string()),
(format!("{MINIO_INTERNAL_PREFIX}{SUFFIX_TRANSITION_TIER}"), "minio-tier".to_string()),
]);
assert_eq!(get_str(&metadata, SUFFIX_TRANSITION_TIER).as_deref(), Some("rustfs-tier"));
}
#[test]
fn test_consistent_str_accepts_single_or_matching_values_and_rejects_conflicts() {
let rustfs_key = internal_key_rustfs(SUFFIX_TRANSITION_TIER_DESTINATION_ID);
let minio_key = format!("{MINIO_INTERNAL_PREFIX}{SUFFIX_TRANSITION_TIER_DESTINATION_ID}");
let mut metadata = HashMap::from([(rustfs_key, "identity-a".to_string())]);
assert_eq!(get_consistent_str(&metadata, SUFFIX_TRANSITION_TIER_DESTINATION_ID), Some("identity-a"));
metadata.insert(minio_key, "identity-a".to_string());
assert_eq!(get_consistent_str(&metadata, SUFFIX_TRANSITION_TIER_DESTINATION_ID), Some("identity-a"));
metadata.insert(
format!("{MINIO_INTERNAL_PREFIX}{SUFFIX_TRANSITION_TIER_DESTINATION_ID}"),
"identity-b".to_string(),
);
assert_eq!(get_consistent_str(&metadata, SUFFIX_TRANSITION_TIER_DESTINATION_ID), None);
}
#[test]
fn test_consistent_bytes_accepts_single_or_matching_values_and_rejects_conflicts() {
let rustfs_key = internal_key_rustfs(SUFFIX_TRANSITION_TIER_DESTINATION_ID);
let minio_key = format!("{MINIO_INTERNAL_PREFIX}{SUFFIX_TRANSITION_TIER_DESTINATION_ID}");
let mut metadata = HashMap::from([(rustfs_key, b"identity-a".to_vec())]);
assert_eq!(
get_consistent_bytes(&metadata, SUFFIX_TRANSITION_TIER_DESTINATION_ID),
Some(b"identity-a".as_slice())
);
metadata.insert(minio_key.clone(), b"identity-a".to_vec());
assert_eq!(
get_consistent_bytes(&metadata, SUFFIX_TRANSITION_TIER_DESTINATION_ID),
Some(b"identity-a".as_slice())
);
metadata.insert(minio_key, b"identity-b".to_vec());
assert_eq!(get_consistent_bytes(&metadata, SUFFIX_TRANSITION_TIER_DESTINATION_ID), None);
}
#[test]
fn test_bytes_lookup_falls_back_to_minio_key() {
let mut meta_sys =
HashMap::from([(format!("{MINIO_INTERNAL_PREFIX}{SUFFIX_TRANSITIONED_VERSION_ID}"), b"version-1".to_vec())]);
assert!(contains_key_bytes(&meta_sys, SUFFIX_TRANSITIONED_VERSION_ID));
assert_eq!(get_bytes(&meta_sys, SUFFIX_TRANSITIONED_VERSION_ID), Some(b"version-1".to_vec()));
remove_bytes(&mut meta_sys, SUFFIX_TRANSITIONED_VERSION_ID);
assert!(!contains_key_bytes(&meta_sys, SUFFIX_TRANSITIONED_VERSION_ID));
}
#[test]
fn test_bytes_prefers_rustfs_key_over_minio() {
let meta_sys = HashMap::from([
(internal_key_rustfs(SUFFIX_TRANSITIONED_VERSION_ID), b"rustfs-version".to_vec()),
(
format!("{MINIO_INTERNAL_PREFIX}{SUFFIX_TRANSITIONED_VERSION_ID}"),
b"minio-version".to_vec(),
),
]);
assert_eq!(get_bytes(&meta_sys, SUFFIX_TRANSITIONED_VERSION_ID), Some(b"rustfs-version".to_vec()));
}
// Reference implementations mirroring the original allocation-heavy logic, used to prove the
// optimized helpers are behavior-preserving across a battery of inputs.
fn is_internal_key_ref(key: &str) -> bool {
let lower = key.to_lowercase();
lower.starts_with(RUSTFS_INTERNAL_PREFIX) || lower.starts_with(MINIO_INTERNAL_PREFIX)
}
fn has_internal_suffix_ref(key: &str, suffix: &str) -> bool {
let lower = key.to_lowercase();
lower == format!("{RUSTFS_INTERNAL_PREFIX}{suffix}") || lower == format!("{MINIO_INTERNAL_PREFIX}{suffix}")
}
fn strip_internal_prefix_ref(key: &str) -> Option<String> {
let lower = key.to_lowercase();
lower
.strip_prefix(RUSTFS_INTERNAL_PREFIX)
.or_else(|| lower.strip_prefix(MINIO_INTERNAL_PREFIX))
.map(|s| s.to_string())
}
#[test]
fn test_classifiers_match_reference_impl() {
let keys = [
"x-rustfs-internal-inline-data",
"X-RustFS-Internal-Inline-Data",
"x-minio-internal-compression",
"X-MINIO-INTERNAL-actual-size",
"x-rustfs-internal-",
"x-rustfs-internal-replication-reset-arn:aws:s3:::bucket",
"x-rustfs-internal-Actual-Object-Size",
"x-amz-meta-custom",
"content-type",
"not-internal",
"",
"X",
"x-rustfs-interna", // one char short of the prefix
"x-rustfs-internal-tier-free-mar\u{212A}er", // U+212A KELVIN SIGN lowercases to ASCII 'k'
];
let suffixes = [
SUFFIX_INLINE_DATA,
SUFFIX_COMPRESSION,
SUFFIX_ACTUAL_SIZE,
SUFFIX_ACTUAL_OBJECT_SIZE_CAP,
SUFFIX_PURGESTATUS,
SUFFIX_TIER_FV_MARKER,
"inline-data",
"nonexistent",
"",
];
for key in keys {
assert_eq!(is_internal_key(key), is_internal_key_ref(key), "is_internal_key mismatch for {key:?}");
assert_eq!(
strip_internal_prefix(key),
strip_internal_prefix_ref(key),
"strip_internal_prefix mismatch for {key:?}"
);
for suffix in suffixes {
assert_eq!(
has_internal_suffix(key, suffix),
has_internal_suffix_ref(key, suffix),
"has_internal_suffix mismatch for key {key:?} suffix {suffix:?}"
);
}
}
}
#[test]
fn test_has_internal_suffix_kelvin_sign_equivalence() {
// U+212A KELVIN SIGN Unicode-lowercases to ASCII 'k'. The optimized ASCII fast path must
// fall back to full Unicode lowercasing for non-ASCII keys so it stays byte-for-byte
// equivalent to the original `key.to_lowercase()` implementation.
let key = "x-rustfs-internal-tier-free-mar\u{212A}er";
assert!(has_internal_suffix(key, SUFFIX_TIER_FV_MARKER));
assert_eq!(
has_internal_suffix(key, SUFFIX_TIER_FV_MARKER),
has_internal_suffix_ref(key, SUFFIX_TIER_FV_MARKER)
);
// A plain ASCII 'k' key still matches, and a non-matching suffix still fails.
assert!(has_internal_suffix("x-rustfs-internal-tier-free-marker", SUFFIX_TIER_FV_MARKER));
assert!(!has_internal_suffix(key, SUFFIX_COMPRESSION));
}
#[test]
fn test_get_str_case_insensitive_fallback() {
// Non-canonical mixed-case key must still be found via the case-insensitive scan.
let metadata = HashMap::from([("X-RustFS-Internal-Compression".to_string(), "s2".to_string())]);
assert_eq!(get_str(&metadata, SUFFIX_COMPRESSION).as_deref(), Some("s2"));
assert!(contains_key_str(&metadata, SUFFIX_COMPRESSION));
}
#[test]
fn test_get_bytes_no_case_insensitive_fallback() {
// get_bytes only checks the two canonical keys (matching the original behavior): a
// mixed-case key is not matched.
let meta_sys = HashMap::from([("X-RustFS-Internal-Crc".to_string(), b"z".to_vec())]);
assert_eq!(get_bytes(&meta_sys, SUFFIX_CRC), None);
let meta_sys = HashMap::from([(internal_key_rustfs(SUFFIX_CRC), b"z".to_vec())]);
assert_eq!(get_bytes(&meta_sys, SUFFIX_CRC), Some(b"z".to_vec()));
}
#[test]
fn test_long_suffix_falls_back_to_heap_key() {
// A suffix longer than the stack buffer must still round-trip via the heap fallback.
let long_suffix = "x".repeat(INTERNAL_KEY_STACK_CAP);
let mut meta_sys = HashMap::new();
insert_bytes(&mut meta_sys, &long_suffix, b"payload".to_vec());
assert!(contains_key_bytes(&meta_sys, &long_suffix));
assert_eq!(get_bytes(&meta_sys, &long_suffix), Some(b"payload".to_vec()));
remove_bytes(&mut meta_sys, &long_suffix);
assert!(!contains_key_bytes(&meta_sys, &long_suffix));
}
}