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sgl-project--sglang/python/sglang/srt/mem_cache/base_prefix_cache.py
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chore: import upstream snapshot with attribution
2026-07-13 12:38:16 +08:00

374 lines
11 KiB
Python

from __future__ import annotations
import dataclasses
import time
from abc import ABC, abstractmethod
from typing import (
TYPE_CHECKING,
Any,
NamedTuple,
Optional,
Protocol,
Tuple,
runtime_checkable,
)
import torch
from sglang.srt.mem_cache.allocator import BaseTokenToKVPoolAllocator
from sglang.srt.mem_cache.memory_pool import ReqToTokenPool
from sglang.srt.observability.metrics_collector import (
STAT_LOGGER_ROLE_RADIX_CACHE,
RadixCacheMetricsCollector,
resolve_collector_class,
)
if TYPE_CHECKING:
from sglang.srt.managers.schedule_batch import Req
from sglang.srt.mem_cache.radix_cache import RadixKey
from sglang.srt.mem_cache.unified_cache_components.tree_component import (
ComponentType,
)
@runtime_checkable
class PrefixCacheTrait(Protocol):
req_to_token_pool: ReqToTokenPool
token_to_kv_pool_allocator: BaseTokenToKVPoolAllocator
page_size: int
disable: bool
@dataclasses.dataclass
class MatchPrefixParams:
"""Unified parameters for match_prefix across different cache types"""
key: RadixKey
# Mamba specific
cow_mamba: bool = False
req: Optional[Req] = None
@dataclasses.dataclass
class InsertParams:
"""Unified parameters for insert across different cache types"""
key: Optional[RadixKey] = None
value: Optional[torch.Tensor] = None
# Mamba specific
mamba_value: Optional[torch.Tensor] = None
# SWA specific
prev_prefix_len: int = 0
swa_evicted_seqlen: int = 0
# General
chunked: bool = False
priority: int = 0
@dataclasses.dataclass
class InsertResult:
"""Result of an insert operation"""
prefix_len: int
total_len: int = 0
last_device_node: Any = None
mamba_exist: bool = False
inserted_host_node: Any = None
@dataclasses.dataclass
class EvictParams:
"""Unified parameters for evict across different cache types"""
num_tokens: int = 0
swa_num_tokens: int = 0
mamba_num: int = 0
@dataclasses.dataclass
class EvictResult:
"""Result of an evict operation"""
num_tokens_evicted: int = 0
swa_num_tokens_evicted: int = 0
mamba_num_evicted: int = 0
@dataclasses.dataclass
class IncLockRefResult:
"""Result of an inc_lock_ref operation."""
delta: Optional[int] = None
swa_uuid_for_lock: Optional[int] = None
swa_uuid_for_host_lock: Optional[int] = None
# Component nodes that were tombstones at acquire time. Replaying this set
# at release prevents a short-lived lock from consuming a later load-back or
# request lock after that tombstone becomes a valid device value.
skip_lock_node_ids: dict[ComponentType, set[int]] = dataclasses.field(
default_factory=dict
)
def to_dec_params(self) -> DecLockRefParams:
"""Convert to the corresponding DecLockRefParams for dec_lock_ref."""
return DecLockRefParams(
swa_uuid_for_lock=self.swa_uuid_for_lock,
swa_uuid_for_host_lock=self.swa_uuid_for_host_lock,
skip_lock_node_ids={
component_type: set(node_ids)
for component_type, node_ids in self.skip_lock_node_ids.items()
},
)
@dataclasses.dataclass
class DecLockRefParams:
"""Parameters for dec_lock_ref operation."""
swa_uuid_for_lock: Optional[int] = None
swa_uuid_for_host_lock: Optional[int] = None
skip_lock_node_ids: dict[ComponentType, set[int]] = dataclasses.field(
default_factory=dict
)
@dataclasses.dataclass
class DecLockRefResult:
"""Result of an dec_lock_ref operation."""
delta: Optional[int] = None
@dataclasses.dataclass
class InitLoadBackParams:
"""Unified parameters for init_load_back across different cache types."""
best_match_node: Any
host_hit_length: int
mem_quota: Optional[int] = None
req: Optional[Req] = None
class MatchResult(NamedTuple):
"""Result of a prefix match operation.
Attributes:
device_indices : Indices of the KV cache on the device matched by common prefix.
last_device_node: The last TreeNode on the device that was matched.
last_host_node : The last TreeNode on the host that was matched.
Note that if HiCache is not enabled,
this **must** be the same as `last_device_node`.
Reserved for L3 storage prefetch anchoring; L2 load_back
uses `best_match_node` instead.
best_match_node : Deepest node accepted by all component validators
during match_prefix. Anchor for every L2 host->device
load_back walk (FULL / SWA / ...). For legacy caches
that don't run multi-component validation, set this
equal to `last_host_node`.
host_hit_length : Number of Full-KV tokens that hit on host (CPU) and need to be
loaded back to device. Pure-KV cache semantics;
swa_host_hit_length : Number of SWA tokens that hit on host (within the sliding
window) and will be load-back into the SWA device pool.
mamba_host_hit_length: Number of Mamba slots that hit on host and will be load-back
into the Mamba device pool. Typically 0 or 1.
mamba_branching_seqlen: The mamba radix cache branching point, which is the longest
page-aligned position that could've been cache hit if there
exists a mamba state.
"""
device_indices: torch.Tensor
last_device_node: Any
last_host_node: Any
best_match_node: Any
host_hit_length: int = 0
swa_host_hit_length: int = 0
mamba_host_hit_length: int = 0
mamba_branching_seqlen: Optional[int] = None
cache_protected_len: Optional[int] = None
def zero_match_result(tree_cache, match_result: MatchResult) -> MatchResult:
if tree_cache.is_chunk_cache():
# Chunk caches' match_prefix already returns a miss; no root_node to walk back to.
return match_result
root = tree_cache.root_node
return match_result._replace(
# [:0] keeps dtype and device of the original tensor (e.g. CUDA int64)
# without allocating a fresh empty tensor.
device_indices=match_result.device_indices[:0],
last_device_node=root,
last_host_node=root,
best_match_node=root,
host_hit_length=0,
swa_host_hit_length=0,
mamba_host_hit_length=0,
)
class BasePrefixCache(ABC, PrefixCacheTrait):
"""Cache can be indexed by either rid or key."""
metrics_collector: Optional[RadixCacheMetricsCollector] = (
None # metrics collector for the cache
)
def init_metrics_collector(self):
from sglang.srt.runtime_context import get_server_args
server_args = get_server_args()
labels = {"cache_type": self.__class__.__name__}
if server_args.extra_metric_labels:
labels.update(server_args.extra_metric_labels)
radix_cache_cls = resolve_collector_class(
server_args,
STAT_LOGGER_ROLE_RADIX_CACHE,
RadixCacheMetricsCollector,
)
self.metrics_collector = radix_cache_cls(labels=labels)
def update_eviction_metrics(self, num_evicted: int, start_time: float):
if self.metrics_collector is not None and num_evicted > 0:
self.metrics_collector.observe_eviction_duration(
time.perf_counter() - start_time
)
self.metrics_collector.increment_eviction_num_tokens(num_evicted)
@abstractmethod
def reset(self):
pass
@abstractmethod
def match_prefix(self, params: MatchPrefixParams) -> MatchResult:
pass
def supports_fast_match_prefix(self) -> bool:
return False
@abstractmethod
def cache_finished_req(self, req: Req, is_insert: bool = True, **kwargs):
pass
@abstractmethod
def cache_unfinished_req(self, req: Req, **kwargs):
pass
@abstractmethod
def evict(self, params: EvictParams) -> EvictResult:
pass
@abstractmethod
def inc_lock_ref(self, node: Any) -> IncLockRefResult:
pass
@abstractmethod
def dec_lock_ref(
self, node: Any, params: Optional[DecLockRefParams] = None
) -> DecLockRefResult:
pass
def evictable_size(self):
return 0
def full_evictable_size(self):
return 0
def swa_evictable_size(self):
return 0
def protected_size(self):
return 0
def full_protected_size(self):
return 0
def swa_protected_size(self):
return 0
def total_size(self):
raise NotImplementedError()
def pretty_print(self):
raise NotImplementedError()
def init_load_back(
self,
params: InitLoadBackParams,
) -> Tuple[torch.Tensor, Any]:
"""
Preparing KV cache loading from host to device.
"""
raise NotImplementedError()
def ready_to_load_host_cache(self) -> Any:
"""
Notify the cache controller to start the KV cache loading
"""
raise NotImplementedError()
def flush_write_through_acks(self) -> None:
"""Release lock_ref on radix-tree nodes whose write-through has completed.
Lightweight operation that only processes finished write acks.
No-op for caches without hierarchical write-through support.
"""
pass
def check_hicache_events(self) -> Any:
"""
Check HiCache related activities to update radix tree and synchronize across TP workers if needed
"""
raise NotImplementedError()
def take_events(self):
return []
def supports_swa(self) -> bool:
return False
def swa_reprefill_tail_tokens(self) -> int:
# Only the unified_kv compress-only HiCache layout needs to hold back a
# trailing sliding window for re-prefill; every other cache keeps SWA
# content-stable and overrides this where relevant.
return 0
def supports_mamba(self) -> bool:
return False
def supports_streaming_session(self) -> bool:
return False
def release_session(self, session_id: str) -> None:
pass
def release_radix_session(self, session_id: str) -> None:
pass
def session_held_tokens(self, active_pool_idxs: Optional[set] = None) -> int:
return 0
def session_held_full_tokens(self, active_pool_idxs: Optional[set] = None) -> int:
return 0
def session_held_swa_tokens(self, active_pool_idxs: Optional[set] = None) -> int:
return 0
def session_held_req_count(self, active_pool_idxs: Optional[set] = None) -> int:
return 0
def session_held_mamba_slots(self, active_pool_idxs: Optional[set] = None) -> int:
return 0
def is_chunk_cache(self) -> bool:
return False
def is_tree_cache(self) -> bool:
return not self.is_chunk_cache()
def available_and_evictable_str(self) -> str:
available_size = self.token_to_kv_pool_allocator.available_size()
evictable_size = self.evictable_size()
return f"Available tokens: {available_size + evictable_size} ({available_size=} + {evictable_size=})\n"