layer.py 33.2 KB
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# SPDX-License-Identifier: Apache-2.0
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# SPDX-FileCopyrightText: Copyright contributors to the vLLM project
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"""Attention layer."""
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from typing import cast
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import torch
import torch.nn as nn

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import vllm.envs as envs
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from vllm.attention.utils.kv_sharing_utils import validate_kv_sharing_target
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from vllm.attention.utils.kv_transfer_utils import maybe_transfer_kv_layer
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from vllm.config import CacheConfig, get_current_vllm_config
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from vllm.config.vllm import VllmConfig
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from vllm.forward_context import ForwardContext, get_forward_context
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from vllm.logger import init_logger
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from vllm.model_executor.layers.attention_layer_base import AttentionLayerBase
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from vllm.model_executor.layers.batch_invariant import vllm_is_batch_invariant
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from vllm.model_executor.layers.linear import (
    ColumnParallelLinear,
    UnquantizedLinearMethod,
)
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from vllm.model_executor.layers.quantization import QuantizationConfig
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from vllm.model_executor.layers.quantization.base_config import QuantizeMethodBase
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from vllm.model_executor.layers.quantization.input_quant_fp8 import QuantFP8
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from vllm.model_executor.layers.quantization.kv_cache import BaseKVCacheMethod
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from vllm.model_executor.layers.quantization.utils.quant_utils import GroupShape
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from vllm.platforms import current_platform
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from vllm.utils.torch_utils import (
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    direct_register_custom_op,
    kv_cache_dtype_str_to_dtype,
)
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from vllm.v1.attention.backend import (
    AttentionBackend,
    AttentionType,
    MLAAttentionImpl,
)
from vllm.v1.attention.backends.registry import AttentionBackendEnum
from vllm.v1.attention.selector import get_attn_backend
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from vllm.v1.kv_cache_interface import (
    FullAttentionSpec,
    KVCacheSpec,
    MLAAttentionSpec,
    SlidingWindowSpec,
)
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logger = init_logger(__name__)


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def should_load_quant_weights(quant_method: QuantizeMethodBase | None) -> bool:
    """Returns whether the quantization method should load quantized weights."""
    return quant_method is not None and not isinstance(
        quant_method, UnquantizedLinearMethod
    )


def set_default_quant_scales(layer: nn.Module, register_buffer: bool = False) -> None:
    """Sets default quantization scales for the layer."""
    if register_buffer:
        layer.register_buffer("_k_scale", torch.tensor(1.0, dtype=torch.float32))
        layer.register_buffer("_v_scale", torch.tensor(1.0, dtype=torch.float32))
        layer.register_buffer("_q_scale", torch.tensor(1.0, dtype=torch.float32))
        layer.register_buffer("_prob_scale", torch.tensor(1.0, dtype=torch.float32))
    else:
        layer._k_scale.fill_(1.0)
        layer._v_scale.fill_(1.0)
        layer._q_scale.fill_(1.0)
        layer._prob_scale.fill_(1.0)

    # We also keep q/k/v_scale on host (cpu) memory for attention
    # backends that require the scales to be on host instead of on device.
    # e.g. Flashinfer
    layer._q_scale_float = 1.0
    layer._k_scale_float = 1.0
    layer._v_scale_float = 1.0
    layer._prob_scale_float = 1.0


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def _init_kv_cache_quant(
    layer: nn.Module,
    quant_config: QuantizationConfig | None,
    prefix: str,
    kv_cache_dtype: str,
    calculate_kv_scales: bool,
) -> None:
    """Initializes KV cache scaling factors and quantization method.

    This helper function sets up the KV cache quantization attributes that are
    shared between Attention and MLAAttention layers. It initializes scale
    tensors for query, key, value, and probability, and configures the
    quantization method if applicable.

    Args:
        layer: The attention layer instance to initialize.
        quant_config: Optional quantization configuration.
        prefix: Layer name prefix for quantization method lookup.
        kv_cache_dtype: The KV cache data type string.
        calculate_kv_scales: Whether to calculate KV scales dynamically.
    """
    # The default k/v_scale is set to 1.0. This is ignored
    # when kv-cache is not fp8, and should be used with
    # kv-cache in fp8_e5m2. For kv-cache in fp8_e4m3, we
    # expect the pre-quantized k/v_scale to be loaded along
    # with the model weights.
    layer.kv_cache_dtype = kv_cache_dtype
    layer.calculate_kv_scales = calculate_kv_scales

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    # Note [Register q/k/v/prob scales in state dict]
    # When calling model.to(device), only parameters/buffers in state dict are
    # moved. If not registering q/k/v/prob scales in state dict, there would
    # be an IMA error when a cuda kernel (e.g., quant_fp8) accesses the tensor
    # on cpu.
    # Registering in state dict means it interacts with weight loading. One edge
    # case is when quant_method is None, or quant_method is UnquantizedLinearMethod
    # (i.e., should_load_quant_weights(quant_method) == False).
    # In this case, the checkpoint does not have the scales. We need to
    # initialize the scales to 1.0 and update the scales after weight loading.
    # This is espectially important when we load dummy weights first (providing
    # wrong scales) and then load real weights (which misses scales and keeps the
    # wrong scales from dummy load).
    set_default_quant_scales(layer, register_buffer=True)
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    # The output scale on host memory. This should be the input scale of
    # the quant op after this attention layer.
    layer._o_scale_float = None

    quant_method = (
        quant_config.get_quant_method(layer, prefix=prefix) if quant_config else None
    )
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    # See [Note: Register q/k/v/prob scales in state dict]
    if should_load_quant_weights(quant_method):
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        assert isinstance(quant_method, BaseKVCacheMethod)
        # TODO (mgoin): kv cache dtype should be specified in the FP8
        # checkpoint config and become the "auto" behavior
        if kv_cache_dtype == "fp8_e5m2":
            raise ValueError("fp8_e5m2 kv-cache is not supported with fp8 checkpoints.")
        # If quantization is enabled, we make "k_scale" and "v_scale"
        # parameters so that it can be loaded from the model checkpoint.
        # The k/v_scale will then be converted back to native float32
        # values after weight loading.
        layer.quant_method = quant_method
        layer.quant_method.create_weights(layer)
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class Attention(nn.Module, AttentionLayerBase):
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    """Attention layer.

    This class takes query, key, and value tensors as input. The input tensors
    can either contain prompt tokens or generation tokens.
    The class does the following:

    1. Store the input key and value tensors in the KV cache.
    2. Perform (multi-head/multi-query/grouped-query) attention.
    3. Return the output tensor.
    """

    def __init__(
        self,
        num_heads: int,
        head_size: int,
        scale: float,
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        num_kv_heads: int | None = None,
        alibi_slopes: list[float] | None = None,
        cache_config: CacheConfig | None = None,
        quant_config: QuantizationConfig | None = None,
        logits_soft_cap: float | None = None,
        per_layer_sliding_window: int | None = None,
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        prefix: str = "",
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        attn_type: str = AttentionType.DECODER,
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        kv_sharing_target_layer_name: str | None = None,
        attn_backend: type[AttentionBackend] | None = None,
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        head_size_v: int | None = None,
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        **extra_impl_args,
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    ) -> None:
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        """
        The KV cache is stored inside this class and is accessed via
        `self.kv_cache`.
        """
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        super().__init__()
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        if per_layer_sliding_window is not None:
            # per-layer sliding window
            sliding_window = per_layer_sliding_window
        elif cache_config is not None:
            # model-level sliding window
            sliding_window = cache_config.sliding_window
        else:
            sliding_window = None

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        vllm_config = get_current_vllm_config()
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        if cache_config is not None:
            kv_cache_dtype = cache_config.cache_dtype
            block_size = cache_config.block_size
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            calculate_kv_scales = cache_config.calculate_kv_scales
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        else:
            kv_cache_dtype = "auto"
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            block_size = 64 if envs.VLLM_USE_FLASH_ATTN_PA and envs.VLLM_USE_FLASH_MLA else 16
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            calculate_kv_scales = False
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        self.kv_cache_torch_dtype = kv_cache_dtype_str_to_dtype(
            kv_cache_dtype, vllm_config.model_config
        )
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        if num_kv_heads is None:
            num_kv_heads = num_heads
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        assert num_heads % num_kv_heads == 0, (
            f"num_heads ({num_heads}) is not divisible by num_kv_heads ({num_kv_heads})"
        )
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        self.quant_config = quant_config
        self.layer_name = prefix
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        # Initialize KV cache quantization attributes
        _init_kv_cache_quant(
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            self,
            self.quant_config,
            self.layer_name,
            kv_cache_dtype,
            calculate_kv_scales,
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        )
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        self.num_heads = num_heads
        self.head_size = head_size
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        self.head_size_v = self.head_size if head_size_v is None else head_size_v
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        self.num_kv_heads = num_kv_heads
        self.sliding_window = sliding_window
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        self.has_sink = extra_impl_args.get("sinks") is not None
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        # NOTE: model_config may be None during certain tests
        model_config = vllm_config.model_config
        self.use_mm_prefix = model_config is not None and model_config.is_mm_prefix_lm

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        # During model initialization, the default dtype is set as the model
        # weight and activation dtype.
        dtype = torch.get_default_dtype()
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        if attn_backend is None:
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            self.attn_backend = get_attn_backend(
                head_size,
                dtype,
                kv_cache_dtype,
                block_size,
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                use_mla=False,
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                has_sink=self.has_sink,
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                use_mm_prefix=self.use_mm_prefix,
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                attn_type=attn_type,
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            )
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        else:
            self.attn_backend = attn_backend

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        # prefix caching + batch invariance is currently not supported for
        # FLASHINFER and TRITON_MLA.
        if (
            cache_config is not None
            and cache_config.enable_prefix_caching
            and vllm_is_batch_invariant()
            and (
                self.attn_backend.get_name() == "FLASHINFER"
                or self.attn_backend.get_name() == "TRITON_MLA"
            )
        ):
            logger.warning_once(
                "Disabling prefix caching for FLASHINFER/TRITON_MLA "
                "with batch invariance, as it is not yet supported.",
                scope="local",
            )
            cache_config.enable_prefix_caching = False

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        impl_cls = self.attn_backend.get_impl_cls()
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        self.impl = impl_cls(
            num_heads,
            head_size,
            scale,
            num_kv_heads,
            alibi_slopes,
            sliding_window,
            kv_cache_dtype,
            logits_soft_cap,
            attn_type,
            kv_sharing_target_layer_name,
            **extra_impl_args,
        )
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        self.backend = AttentionBackendEnum[self.attn_backend.get_name()]
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        self.dtype = dtype
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        # For cuda-alike (CUDA and ROCM) and cpu platforms, we control how
        # torch.compile works by registering the attention as one giant
        # opaque custom op. For other platforms, we directly call them
        # and let torch.compile handle them.
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        self.use_direct_call = not current_platform.opaque_attention_op()
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        self.use_output = self.attn_backend.accept_output_buffer
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        compilation_config = vllm_config.compilation_config
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        if prefix in compilation_config.static_forward_context:
            raise ValueError(f"Duplicate layer name: {prefix}")
        compilation_config.static_forward_context[prefix] = self
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        self.attn_type = attn_type
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        if kv_sharing_target_layer_name is not None:
            validate_kv_sharing_target(
                prefix,
                kv_sharing_target_layer_name,
                compilation_config.static_forward_context,
            )
        self.kv_sharing_target_layer_name = kv_sharing_target_layer_name

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        # use a placeholder kv cache tensor during init, which will be replaced
        # by bind_kv_cache
        # this variable will not be accessed if use_direct_call is True
        self.kv_cache = [
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            torch.tensor([])
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            for _ in range(vllm_config.parallel_config.pipeline_parallel_size)
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        ]
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        # Initialize q/k/v range constants.
        self.q_range = torch.tensor(envs.Q_SCALE_CONSTANT, dtype=torch.float32)
        self.k_range = torch.tensor(envs.K_SCALE_CONSTANT, dtype=torch.float32)
        self.v_range = torch.tensor(envs.V_SCALE_CONSTANT, dtype=torch.float32)
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        # for attn backends supporting query quantization
        self.query_quant = None
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        # @TODO
        if envs.VLLM_USE_QUERY_QUANT:
            if (
                self.kv_cache_dtype.startswith("fp8")
                and self.impl.supports_quant_query_input
            ):
                self.query_quant = QuantFP8(static=True, group_shape=GroupShape.PER_TENSOR)
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    def forward(
        self,
        query: torch.Tensor,
        key: torch.Tensor,
        value: torch.Tensor,
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        # For some alternate attention backends like MLA the attention output
        # shape does not match the query shape, so we optionally let the model
        # definition specify the output tensor shape.
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        output_shape: torch.Size | None = None,
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    ) -> torch.Tensor:
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        """
        The KV cache is stored inside this class and is accessed via
        `self.kv_cache`.

        Attention metadata (`attn_metadata`) is set using a context manager in
        the model runner's `execute_model` method. It is accessed via forward
        context using
        `vllm.forward_context.get_forward_context().attn_metadata`.
        """
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        if self.calculate_kv_scales:
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            torch.ops.vllm.maybe_calc_kv_scales(query, key, value, self.layer_name)
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        output_dtype = query.dtype
        if self.query_quant is not None:
            # quantizing with a simple torch operation enables
            # torch.compile to fuse this into previous ops
            # which reduces overheads during decoding.
            # Otherwise queries are quantized using custom ops
            # which causes decoding overheads
            assert self.kv_cache_dtype in {"fp8", "fp8_e4m3"}
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            # check if query quantization is supported
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            if self.impl.supports_quant_query_input:
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                query, _ = self.query_quant(query, self._q_scale)
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        if self.use_output:
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            if output_shape is None:
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                # Handle both 2D [num_tokens, hidden] and
                # 3D [num_tokens, heads, head_dim] query
                num_tokens = query.shape[0]
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                output_shape = torch.Size(
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                    (num_tokens, self.num_heads * self.head_size_v)
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                )
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            output_shape = output_shape if output_shape is not None else query.shape
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            output = torch.empty(output_shape, dtype=output_dtype, device=query.device)
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            hidden_size = output_shape[-1]
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            # Reshape the query, key, and value tensors.
            # NOTE(woosuk): We do this outside the custom op to minimize the
            # CPU overheads from the non-CUDA-graph regions.
            query = query.view(-1, self.num_heads, self.head_size)
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            output = output.view(-1, self.num_heads, self.head_size_v)
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            if key is not None:
                key = key.view(-1, self.num_kv_heads, self.head_size)
            if value is not None:
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                value = value.view(-1, self.num_kv_heads, self.head_size_v)
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            if self.use_direct_call:
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                forward_context: ForwardContext = get_forward_context()
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                attn_metadata = forward_context.attn_metadata
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                if isinstance(attn_metadata, dict):
                    attn_metadata = attn_metadata[self.layer_name]
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                self_kv_cache = self.kv_cache[forward_context.virtual_engine]
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                self.impl.forward(
                    self, query, key, value, self_kv_cache, attn_metadata, output=output
                )
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            else:
                torch.ops.vllm.unified_attention_with_output(
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                    query, key, value, output, self.layer_name
                )
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            return output.view(-1, hidden_size)
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        else:
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            if self.use_direct_call:
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                forward_context = get_forward_context()
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                attn_metadata = forward_context.attn_metadata
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                if isinstance(attn_metadata, dict):
                    attn_metadata = attn_metadata[self.layer_name]
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                self_kv_cache = self.kv_cache[forward_context.virtual_engine]
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                return self.impl.forward(
                    self, query, key, value, self_kv_cache, attn_metadata
                )
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            else:
                return torch.ops.vllm.unified_attention(
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                    query, key, value, self.layer_name
                )
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    def calc_kv_scales(self, query, key, value):
        self._q_scale.copy_(torch.abs(query).max() / self.q_range)
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        self._k_scale.copy_(torch.abs(key).max() / self.k_range)
        self._v_scale.copy_(torch.abs(value).max() / self.v_range)
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        self._q_scale_float = self._q_scale.item()
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        self._k_scale_float = self._k_scale.item()
        self._v_scale_float = self._v_scale.item()
        # We only calculate the scales once
        self.calculate_kv_scales = False

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    def extra_repr(self) -> str:
        s = f"head_size={self.impl.head_size}"  # type: ignore
        s += f", num_heads={self.impl.num_heads}"  # type: ignore
        s += f", num_kv_heads={self.impl.num_kv_heads}"  # type: ignore
        s += f", scale={self.impl.scale}"  # type: ignore
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        s += f", backend={self.impl.__class__.__name__}"
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        return s
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    def process_weights_after_loading(self, act_dtype: torch.dtype):
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        self.impl.process_weights_after_loading(act_dtype)
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        # If we should not load quant weights, we initialize the scales to 1.0
        # as the default value. See [Note: Register q/k/v/prob scales in state dict]
        # for more details.
        quant_method = (
            self.quant_config.get_quant_method(self, prefix=self.layer_name)
            if self.quant_config
            else None
        )
        if not should_load_quant_weights(quant_method):
            set_default_quant_scales(self, register_buffer=False)

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    def get_attn_backend(self) -> type[AttentionBackend]:
        return self.attn_backend

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    def get_kv_cache_spec(self, vllm_config: VllmConfig) -> KVCacheSpec:
        # Block size may get updated after model loading, refresh it
        block_size = vllm_config.cache_config.block_size
        # Should not be called for enc-dec or encoder-only attention.
        assert self.attn_type == AttentionType.DECODER
        if self.sliding_window is not None:
            assert not vllm_config.model_config.use_mla, (
                "MLA is not supported for slidingwindow"
            )
            return SlidingWindowSpec(
                block_size=block_size,
                num_kv_heads=self.num_kv_heads,
                head_size=self.head_size,
                dtype=self.kv_cache_torch_dtype,
                sliding_window=self.sliding_window,
            )
        else:
            return FullAttentionSpec(
                block_size=block_size,
                num_kv_heads=self.num_kv_heads,
                head_size=self.head_size,
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                head_size_v=self.head_size_v,
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                dtype=self.kv_cache_torch_dtype,
            )

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class MLAAttention(nn.Module, AttentionLayerBase):
    """Multi-Head Latent Attention layer.

    This class takes query, and compressed key/value tensors as input.
    The class does the following:

    1. Store the input key and value tensors in the KV cache.
    2. Perform (multi-head/multi-query/grouped-query) attention.
    3. Return the output tensor.
    """

    def __init__(
        self,
        num_heads: int,
        scale: float,
        qk_nope_head_dim: int,
        qk_rope_head_dim: int,
        v_head_dim: int,
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        q_lora_rank: int | None,
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        kv_lora_rank: int,
        kv_b_proj: ColumnParallelLinear,
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        cache_config: CacheConfig | None = None,
        quant_config: QuantizationConfig | None = None,
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        prefix: str = "",
        use_sparse: bool = False,
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        indexer: object | None = None,
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        **extra_impl_args,
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    ):
        super().__init__()
        self.num_heads = num_heads
        self.scale = scale
        self.qk_nope_head_dim = qk_nope_head_dim
        self.qk_rope_head_dim = qk_rope_head_dim
        self.v_head_dim = v_head_dim
        self.q_lora_rank = q_lora_rank
        self.kv_lora_rank = kv_lora_rank
        self.head_size = kv_lora_rank + qk_rope_head_dim
        self.layer_name = prefix

        if cache_config is not None:
            kv_cache_dtype = cache_config.cache_dtype
            block_size = cache_config.block_size
            calculate_kv_scales = cache_config.calculate_kv_scales
        else:
            kv_cache_dtype = "auto"
            block_size = 16
            calculate_kv_scales = False
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        self.quant_config = quant_config
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        # Initialize KV cache quantization attributes
        _init_kv_cache_quant(
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            self,
            self.quant_config,
            self.layer_name,
            kv_cache_dtype,
            calculate_kv_scales,
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        )
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        dtype = torch.get_default_dtype()
        self.attn_backend = get_attn_backend(
            self.head_size,
            dtype,
            kv_cache_dtype,
            block_size,
            use_mla=True,
            use_sparse=use_sparse,
        )
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        if (
            cache_config is not None
            and cache_config.enable_prefix_caching
            and vllm_is_batch_invariant()
            and (
                self.attn_backend.get_name() == "TRITON_MLA"
                or self.attn_backend.get_name() == "FLASHINFER"
            )
        ):
            logger.warning_once(
                "Disabling prefix caching for TRITON_MLA / FLASHINFER "
                "with batch invariance, as it is not yet supported.",
                scope="local",
            )
            cache_config.enable_prefix_caching = False

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        impl_cls = cast(type[MLAAttentionImpl], self.attn_backend.get_impl_cls())
        self.impl = impl_cls(
            num_heads=self.num_heads,
            head_size=self.head_size,
            scale=self.scale,
            num_kv_heads=1,
            alibi_slopes=None,
            sliding_window=None,
            kv_cache_dtype=self.kv_cache_dtype,
            logits_soft_cap=None,
            attn_type=AttentionType.DECODER,
            kv_sharing_target_layer_name=None,
            # MLA Args
            q_lora_rank=self.q_lora_rank,
            kv_lora_rank=self.kv_lora_rank,
            qk_nope_head_dim=self.qk_nope_head_dim,
            qk_rope_head_dim=self.qk_rope_head_dim,
            qk_head_dim=self.qk_nope_head_dim + self.qk_rope_head_dim,
            v_head_dim=self.v_head_dim,
            kv_b_proj=kv_b_proj,
            indexer=indexer,
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            **extra_impl_args,
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        )

        self.use_direct_call = not current_platform.opaque_attention_op()

        compilation_config = get_current_vllm_config().compilation_config
        if prefix in compilation_config.static_forward_context:
            raise ValueError(f"Duplicate layer name: {prefix}")
        compilation_config.static_forward_context[prefix] = self

        self.kv_cache = [
            torch.tensor([])
            for _ in range(
                get_current_vllm_config().parallel_config.pipeline_parallel_size
            )
        ]

        self.use_sparse = use_sparse
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        # Initialize q/k/v range constants.
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        self.q_range = torch.tensor(envs.Q_SCALE_CONSTANT, dtype=torch.float32)
        self.k_range = torch.tensor(envs.K_SCALE_CONSTANT, dtype=torch.float32)
        self.v_range = torch.tensor(envs.V_SCALE_CONSTANT, dtype=torch.float32)
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    def forward(
        self,
        q: torch.Tensor,
        kv_c_normed: torch.Tensor,
        k_pe: torch.Tensor,
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        output_shape: torch.Size | None = None,
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    ) -> torch.Tensor:
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        if self.calculate_kv_scales:
            torch.ops.vllm.maybe_calc_kv_scales(q, kv_c_normed, k_pe, self.layer_name)

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        if self.use_direct_call:
            forward_context: ForwardContext = get_forward_context()
            attn_metadata = forward_context.attn_metadata
            if isinstance(attn_metadata, dict):
                attn_metadata = attn_metadata[self.layer_name]
            self_kv_cache = self.kv_cache[forward_context.virtual_engine]

            if self.attn_backend.accept_output_buffer:
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                output = torch.empty(output_shape, dtype=q.dtype, device=q.device)
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                self.impl.forward(
                    self,
                    q,
                    kv_c_normed,
                    k_pe,
                    self_kv_cache,
                    attn_metadata,
                    output=output,
                )
                return output
            else:
                return self.impl.forward(
                    self, q, kv_c_normed, k_pe, self_kv_cache, attn_metadata
                )
        else:
            if self.attn_backend.accept_output_buffer:
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                output = torch.empty(output_shape, dtype=q.dtype, device=q.device)
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                torch.ops.vllm.unified_mla_attention_with_output(
                    q,
                    kv_c_normed,
                    k_pe,
                    output,
                    self.layer_name,
                )
                return output
            else:
                return torch.ops.vllm.unified_mla_attention(
                    q,
                    kv_c_normed,
                    k_pe,
                    self.layer_name,
                )

    def process_weights_after_loading(self, act_dtype: torch.dtype):
        if hasattr(self.impl, "process_weights_after_loading"):
            self.impl.process_weights_after_loading(act_dtype)

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        # If we should not load quant weights, we initialize the scales to 1.0
        # as the default value. See [Note: Register q/k/v/prob scales in state dict]
        # for more details.
        quant_method = (
            self.quant_config.get_quant_method(self, prefix=self.layer_name)
            if self.quant_config
            else None
        )
        if not should_load_quant_weights(quant_method):
            set_default_quant_scales(self, register_buffer=False)

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    def calc_kv_scales(
        self, q: torch.Tensor, kv_c_normed: torch.Tensor, k_pe: torch.Tensor
    ) -> None:
        """Optional scale calculation for MLA inputs.

        Mirrors Attention.calc_kv_scales. Not all MLA backends require this
        """
        # Use safe defaults if ranges are not present
        q_range = getattr(self, "q_range", torch.tensor(1.0))
        k_range = getattr(self, "k_range", torch.tensor(1.0))
        v_range = getattr(self, "v_range", torch.tensor(1.0))

        self._q_scale.copy_(torch.abs(q).max() / q_range)
        # kv_c_normed is the compressed KV representation; use it for k/v
        kv_abs_max = torch.abs(kv_c_normed).max()
        self._k_scale.copy_(kv_abs_max / k_range)
        self._v_scale.copy_(kv_abs_max / v_range)
        self._q_scale_float = self._q_scale.item()
        self._k_scale_float = self._k_scale.item()
        self._v_scale_float = self._v_scale.item()
        self.calculate_kv_scales = False

    def get_attn_backend(self) -> type[AttentionBackend]:
        return self.attn_backend

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    def get_kv_cache_spec(self, vllm_config: VllmConfig) -> KVCacheSpec:
        kv_cache_dtype = kv_cache_dtype_str_to_dtype(
            self.kv_cache_dtype, vllm_config.model_config
        )
        return MLAAttentionSpec(
            block_size=vllm_config.cache_config.block_size,
            num_kv_heads=1,
            head_size=self.head_size,
            dtype=kv_cache_dtype,
            cache_dtype_str=vllm_config.cache_config.cache_dtype,
        )

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def maybe_calc_kv_scales(
    query: torch.Tensor,
    key: torch.Tensor,
    value: torch.Tensor,
    layer_name: str,
) -> None:
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    forward_context: ForwardContext = get_forward_context()
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    self = forward_context.no_compile_layers[layer_name]
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    # Only calculate if the layer's calculate_kv_scales flag is True
    # This flag gets set to False after the first forward pass
    if not self.calculate_kv_scales:
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        return

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    self.calc_kv_scales(query, key, value)
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def maybe_calc_kv_scales_fake(
    query: torch.Tensor,
    key: torch.Tensor,
    value: torch.Tensor,
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    layer_name: str,
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) -> None:
    return


direct_register_custom_op(
    op_name="maybe_calc_kv_scales",
    op_func=maybe_calc_kv_scales,
    mutates_args=["query", "key", "value"],
    fake_impl=maybe_calc_kv_scales_fake,
)


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def get_attention_context(
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    layer_name: str,
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) -> tuple[dict | object | None, Attention | MLAAttention, torch.Tensor]:
    """Extract attention context for a given layer.
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    This helper function extracts the attention metadata, attention layer
    instance, and KV cache tensor for a specific layer.
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    Args:
        layer_name: The name/identifier of the attention layer.
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    Returns:
        A tuple containing:
        - attn_metadata: Attention metadata for this specific layer, or None if
            no metadata available
        - attn_layer: The attention layer instance (Attention or MLAAttention)
        - kv_cache: The KV cache tensor for current virtual engine

        Note: attn_metadata may be None, but attn_layer and kv_cache are always
        extracted from the forward context.
    """
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    forward_context: ForwardContext = get_forward_context()
    attn_metadata = forward_context.attn_metadata
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    if isinstance(attn_metadata, dict):
        attn_metadata = attn_metadata[layer_name]
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    attn_layer: Attention | MLAAttention = forward_context.no_compile_layers[layer_name]
    kv_cache = attn_layer.kv_cache[forward_context.virtual_engine]
    return attn_metadata, attn_layer, kv_cache
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@maybe_transfer_kv_layer
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def unified_attention(
    query: torch.Tensor,
    key: torch.Tensor,
    value: torch.Tensor,
    layer_name: str,
) -> torch.Tensor:
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    attn_metadata, self, kv_cache = get_attention_context(layer_name)
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    output = self.impl.forward(self, query, key, value, kv_cache, attn_metadata)
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    return output
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def unified_attention_fake(
    query: torch.Tensor,
    key: torch.Tensor,
    value: torch.Tensor,
    layer_name: str,
) -> torch.Tensor:
    return torch.empty_like(query).contiguous()


direct_register_custom_op(
    op_name="unified_attention",
    op_func=unified_attention,
    fake_impl=unified_attention_fake,
)
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@maybe_transfer_kv_layer
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def unified_attention_with_output(
    query: torch.Tensor,
    key: torch.Tensor,
    value: torch.Tensor,
    output: torch.Tensor,
    layer_name: str,
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    output_scale: torch.Tensor | None = None,
    output_block_scale: torch.Tensor | None = None,
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) -> None:
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    attn_metadata, self, kv_cache = get_attention_context(layer_name)
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    self.impl.forward(
        self,
        query,
        key,
        value,
        kv_cache,
        attn_metadata,
        output=output,
        output_scale=output_scale,
        output_block_scale=output_block_scale,
    )
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def unified_attention_with_output_fake(
    query: torch.Tensor,
    key: torch.Tensor,
    value: torch.Tensor,
    output: torch.Tensor,
    layer_name: str,
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    output_scale: torch.Tensor | None = None,
    output_block_scale: torch.Tensor | None = None,
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) -> None:
    return


direct_register_custom_op(
    op_name="unified_attention_with_output",
    op_func=unified_attention_with_output,
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    mutates_args=["output", "output_block_scale"],
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    fake_impl=unified_attention_with_output_fake,
)
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@maybe_transfer_kv_layer
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def unified_mla_attention(
    q: torch.Tensor,
    kv_c_normed: torch.Tensor,
    k_pe: torch.Tensor,
    layer_name: str,
) -> torch.Tensor:
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    attn_metadata, self, kv_cache = get_attention_context(layer_name)
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    output = self.impl.forward(self, q, kv_c_normed, k_pe, kv_cache, attn_metadata)

    return output


def unified_mla_attention_fake(
    q: torch.Tensor,
    kv_c_normed: torch.Tensor,
    k_pe: torch.Tensor,
    layer_name: str,
) -> torch.Tensor:
    return torch.empty_like(q).contiguous()


direct_register_custom_op(
    op_name="unified_mla_attention",
    op_func=unified_mla_attention,
    mutates_args=[],
    fake_impl=unified_mla_attention_fake,
    dispatch_key=current_platform.dispatch_key,
)


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@maybe_transfer_kv_layer
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def unified_mla_attention_with_output(
    q: torch.Tensor,
    kv_c_normed: torch.Tensor,
    k_pe: torch.Tensor,
    output: torch.Tensor,
    layer_name: str,
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    output_scale: torch.Tensor | None = None,
    output_block_scale: torch.Tensor | None = None,
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) -> None:
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    attn_metadata, self, kv_cache = get_attention_context(layer_name)
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    self.impl.forward(
        self,
        q,
        kv_c_normed,
        k_pe,
        kv_cache,
        attn_metadata,
        output=output,
        output_scale=output_scale,
        output_block_scale=output_block_scale,
    )


def unified_mla_attention_with_output_fake(
    q: torch.Tensor,
    kv_c_normed: torch.Tensor,
    k_pe: torch.Tensor,
    output: torch.Tensor,
    layer_name: str,
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    output_scale: torch.Tensor | None = None,
    output_block_scale: torch.Tensor | None = None,
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) -> None:
    return


direct_register_custom_op(
    op_name="unified_mla_attention_with_output",
    op_func=unified_mla_attention_with_output,
    mutates_args=["output", "output_block_scale"],
    fake_impl=unified_mla_attention_with_output_fake,
    dispatch_key=current_platform.dispatch_key,
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)