vllm.platforms.xpu ¶
XPUPlatform ¶
Bases: Platform
Source code in vllm/platforms/xpu.py
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device_control_env_var class-attribute
instance-attribute
¶
device_control_env_var: str = 'ZE_AFFINITY_MASK'
check_and_update_config classmethod
¶
check_and_update_config(vllm_config: VllmConfig) -> None
Source code in vllm/platforms/xpu.py
check_if_supports_dtype classmethod
¶
check_if_supports_dtype(torch_dtype: dtype)
Source code in vllm/platforms/xpu.py
get_attn_backend_cls classmethod
¶
get_attn_backend_cls(
selected_backend: _Backend,
head_size: int,
dtype: dtype,
kv_cache_dtype: Optional[str],
block_size: int,
use_v1: bool,
use_mla: bool,
has_sink: bool,
use_sparse,
) -> str
Source code in vllm/platforms/xpu.py
get_current_memory_usage classmethod
¶
get_device_capability classmethod
¶
get_device_capability(
device_id: int = 0,
) -> Optional[DeviceCapability]
get_device_name classmethod
¶
get_device_total_memory classmethod
¶
import_core_kernels classmethod
¶
inference_mode classmethod
¶
insert_blocks_to_device classmethod
¶
insert_blocks_to_device(
src_cache: Tensor,
dst_cache: Tensor,
src_block_indices: Tensor,
dst_block_indices: Tensor,
) -> None
Copy blocks from src_cache to dst_cache on XPU.
Source code in vllm/platforms/xpu.py
is_kv_cache_dtype_supported classmethod
¶
is_kv_cache_dtype_supported(
kv_cache_dtype: str, model_config: ModelConfig
) -> bool
Check if the kv_cache_dtype is supported. XPU only support fp8 kv cache with triton backend.
Source code in vllm/platforms/xpu.py
is_pin_memory_available classmethod
¶
swap_out_blocks_to_host classmethod
¶
swap_out_blocks_to_host(
src_cache: Tensor,
dst_cache: Tensor,
src_block_indices: Tensor,
dst_block_indices: Tensor,
) -> None
Copy blocks from XPU to host (CPU).