linear.py 26.4 KB
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from abc import ABC, abstractmethod
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from typing import Any, Dict, List, Optional
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import torch
import torch.nn.functional as F
from torch.nn.parameter import Parameter

from vllm.model_executor.parallel_utils.parallel_state import (
    get_tensor_model_parallel_rank, get_tensor_model_parallel_world_size)
from vllm.model_executor.parallel_utils.communication_op import (
    tensor_model_parallel_all_reduce, tensor_model_parallel_all_gather)
from vllm.model_executor.parallel_utils.utils import (
    divide, split_tensor_along_last_dim)
from vllm.model_executor.utils import set_weight_attrs
from vllm.logger import init_logger
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import os
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logger = init_logger(__name__)


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def adjust_marlin_shard(param, shard_size, shard_offset):
    marlin_tile_size = getattr(param, "marlin_tile_size", None)
    if marlin_tile_size is None:
        return shard_size, shard_offset

    return shard_size * marlin_tile_size, shard_offset * marlin_tile_size


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class LinearMethodBase(ABC):
    """Base class for different (maybe quantized) linear methods."""

    @abstractmethod
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    def create_weights(self, input_size_per_partition: int,
                       output_size_per_partition: int, input_size: int,
                       output_size: int,
                       params_dtype: torch.dtype) -> Dict[str, Any]:
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        """Create weights for a linear layer."""
        raise NotImplementedError

    @abstractmethod
    def apply_weights(self,
                      weights: Dict[str, torch.Tensor],
                      x: torch.Tensor,
                      bias: Optional[torch.Tensor] = None) -> torch.Tensor:
        """Apply the weights to the input tensor."""
        raise NotImplementedError


class UnquantizedLinearMethod(LinearMethodBase):
    """Linear method without quantization.

    Args:
        separate_bias_add: If true, add bias separately after matrix
                           multiplication.
    """

    def __init__(self, separate_bias_add: bool = False):
        self.separate_bias_add = separate_bias_add
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        self.use_llama_nn = os.environ.get('LLAMA_NN') == '1'
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    def create_weights(self, input_size_per_partition: int,
                       output_size_per_partition: int, input_size: int,
                       output_size: int,
                       params_dtype: torch.dtype) -> Dict[str, Any]:
        weight = Parameter(torch.empty(output_size_per_partition,
                                       input_size_per_partition,
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                                       dtype=params_dtype),
                           requires_grad=False)
        set_weight_attrs(weight, {"input_dim": 1, "output_dim": 0})
        return {"weight": weight}

    def apply_weights(self,
                      weights: Dict[str, torch.Tensor],
                      x: torch.Tensor,
                      bias: Optional[torch.Tensor] = None) -> torch.Tensor:
        weight = weights["weight"]
        if self.separate_bias_add:
            if bias:
                return F.linear(x, weight) + bias
            return F.linear(x, weight)
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        if self.use_llama_nn:
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            weight = weight.reshape(weight.shape[1], -1) 
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            if bias is not None:
                return torch.matmul(x, weight) + bias
            else:
                return torch.matmul(x, weight) 
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        else:
            return F.linear(x, weight, bias)
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class ReplicatedLinear(torch.nn.Module):
    """Replicated linear layer.

    Args:
        input_size: input dimension of the linear layer.
        output_size: output dimension of the linear layer.
        bias: If true, add bias.
        skip_bias_add: If true, skip adding bias but instead return it.
        params_dtype: Data type for the parameters.
        linear_method: (Maybe quantized) linear method.
    """

    def __init__(
        self,
        input_size: int,
        output_size: int,
        bias: bool = True,
        skip_bias_add: bool = False,
        params_dtype: Optional[torch.dtype] = None,
        linear_method: Optional[LinearMethodBase] = None,
    ):
        super().__init__()

        # Keep input parameters
        self.input_size = input_size
        self.output_size = output_size
        self.skip_bias_add = skip_bias_add
        if params_dtype is None:
            params_dtype = torch.get_default_dtype()
        self.params_dtype = params_dtype
        if linear_method is None:
            linear_method = UnquantizedLinearMethod()
        self.linear_method = linear_method
        self.linear_weights = self.linear_method.create_weights(
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            self.input_size, self.output_size, self.input_size,
            self.output_size, self.params_dtype)
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        for name, weight in self.linear_weights.items():
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            if isinstance(weight, torch.Tensor):
                self.register_parameter(name, weight)
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        if bias:
            self.bias = Parameter(
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                torch.empty(self.output_size, dtype=self.params_dtype))
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            set_weight_attrs(self.bias, {"output_dim": 0})
        else:
            self.register_parameter("bias", None)

    def forward(self, x: torch.Tensor) -> torch.Tensor:
        bias = self.bias if not self.skip_bias_add else None
        output = self.linear_method.apply_weights(self.linear_weights, x, bias)
        output_bias = self.bias if self.skip_bias_add else None
        return output, output_bias


class ColumnParallelLinear(torch.nn.Module):
    """Linear layer with column parallelism.

    The linear layer is defined as Y = XA + b. A is parallelized along
    its second dimension as A = [A_1, ..., A_p].

    Args:
        input_size: first dimension of matrix A.
        output_size: second dimension of matrix A.
        bias: If true, add bias.
        gather_output: If true, call all-gather on output and make Y available
                       to all GPUs, otherwise, every GPU will have its output
                       which is Y_i = XA_i
        skip_bias_add: This was added to enable performance optimizations where
                       bias can be fused with other element-wise operations. we
                       skip adding bias but instead return it.
        params_dtype: Data type for the parameters.
        linear_method: (Maybe quantized) linear method.
    """

    def __init__(
        self,
        input_size: int,
        output_size: int,
        bias: bool = True,
        gather_output: bool = False,
        skip_bias_add: bool = False,
        params_dtype: Optional[torch.dtype] = None,
        linear_method: Optional[LinearMethodBase] = None,
    ):
        super().__init__()

        # Keep input parameters
        self.input_size = input_size
        self.output_size = output_size
        self.gather_output = gather_output
        # Divide the weight matrix along the last dimension.
        tp_size = get_tensor_model_parallel_world_size()
        self.output_size_per_partition = divide(output_size, tp_size)
        self.skip_bias_add = skip_bias_add
        if params_dtype is None:
            params_dtype = torch.get_default_dtype()
        self.params_dtype = params_dtype
        if linear_method is None:
            linear_method = UnquantizedLinearMethod()
        self.linear_method = linear_method
        self.linear_weights = self.linear_method.create_weights(
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            self.input_size, self.output_size_per_partition, self.input_size,
            self.output_size, self.params_dtype)
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        for name, weight in self.linear_weights.items():
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            if isinstance(weight, torch.Tensor):
                self.register_parameter(name, weight)
                set_weight_attrs(weight, {"weight_loader": self.weight_loader})
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        if bias:
            self.bias = Parameter(
                torch.empty(self.output_size_per_partition,
                            dtype=params_dtype))
            set_weight_attrs(self.bias, {
                "output_dim": 0,
                "weight_loader": self.weight_loader,
            })
        else:
            self.register_parameter("bias", None)
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        self.use_llama_nn = os.environ.get('LLAMA_NN') == '1'
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    def weight_loader(self, param: Parameter, loaded_weight: torch.Tensor):
        tp_rank = get_tensor_model_parallel_rank()
        output_dim = getattr(param, "output_dim", None)
        param_data = param.data
        if output_dim is not None:
            shard_size = param_data.shape[output_dim]
            start_idx = tp_rank * shard_size
            loaded_weight = loaded_weight.narrow(output_dim, start_idx,
                                                 shard_size)
        assert param_data.shape == loaded_weight.shape
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        if self.use_llama_nn:
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            loaded_weight = loaded_weight.transpose(0, 1)
            loaded_weight = loaded_weight.reshape(param_data.shape[0],-1)
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        param_data.copy_(loaded_weight)

    def forward(self, input_):
        bias = self.bias if not self.skip_bias_add else None

        # Matrix multiply.
        output_parallel = self.linear_method.apply_weights(
            self.linear_weights, input_, bias)
        if self.gather_output:
            # All-gather across the partitions.
            output = tensor_model_parallel_all_gather(output_parallel)
        else:
            output = output_parallel
        output_bias = self.bias if self.skip_bias_add else None
        return output, output_bias


class MergedColumnParallelLinear(ColumnParallelLinear):
    """Packed linear layers with column parallelism.

    Similar to ColumnParallelLinear, but the weight matrix is concatenated
    along the output dimension. When the weight matrix is loaded, the
    different partitions are sharded separately.

    Args:
        input_size: input dimension of the linear layer.
        output_sizes: list of output dimensions of the linear layer.
        bias: If true, add bias.
        gather_output: If true, call all-gather on output and make the output
                       available to all GPUs, otherwise, every GPU will have
                       its own output.
        skip_bias_add: This was added to enable performance optimizations where
                       bias can be fused with other element-wise operations. we
                       skip adding bias but instead return it.
        params_dtype: Data type for the parameters.
        linear_method: (Maybe quantized) linear method.
    """

    def __init__(
        self,
        input_size: int,
        output_sizes: List[int],
        bias: bool = True,
        gather_output: bool = False,
        skip_bias_add: bool = False,
        params_dtype: Optional[torch.dtype] = None,
        linear_method: Optional[LinearMethodBase] = None,
    ):
        self.output_sizes = output_sizes
        tp_size = get_tensor_model_parallel_world_size()
        assert all(output_size % tp_size == 0 for output_size in output_sizes)
        super().__init__(input_size, sum(output_sizes), bias, gather_output,
                         skip_bias_add, params_dtype, linear_method)
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        self.use_llama_nn = os.environ.get('LLAMA_NN') == '1'
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    def weight_loader(self,
                      param: Parameter,
                      loaded_weight: torch.Tensor,
                      loaded_shard_id: Optional[int] = None):
        param_data = param.data
        output_dim = getattr(param, "output_dim", None)
        if loaded_shard_id is None:
            # Loaded weight is already packed.
            if output_dim is None:
                assert param_data.shape == loaded_weight.shape
                param_data.copy_(loaded_weight)
                return
            current_shard_offset = 0
            shard_offsets = []
            for i, output_size in enumerate(self.output_sizes):
                shard_offsets.append((i, current_shard_offset, output_size))
                current_shard_offset += output_size
            packed_dim = getattr(param, "packed_dim", None)
            for shard_id, shard_offset, shard_size in shard_offsets:
                # If quantized, we need to adjust the offset and size to account
                # for the packing.
                if packed_dim == output_dim:
                    shard_size = shard_size // param.pack_factor
                    shard_offset = shard_offset // param.pack_factor
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                    # If marlin, we need to adjust the offset and size to account for the tiling.
                    shard_size, shard_offset = adjust_marlin_shard(
                        param, shard_size, shard_offset)

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                loaded_weight_shard = loaded_weight.narrow(
                    output_dim, shard_offset, shard_size)
                self.weight_loader(param, loaded_weight_shard, shard_id)
            return

        assert loaded_shard_id < len(self.output_sizes)
        tp_rank = get_tensor_model_parallel_rank()
        tp_size = get_tensor_model_parallel_world_size()
        if output_dim is not None:
            shard_offset = sum(self.output_sizes[:loaded_shard_id]) // tp_size
            shard_size = self.output_sizes[loaded_shard_id] // tp_size
            # If quantized, we need to adjust the offset and size to account
            # for the packing.
            packed_dim = getattr(param, "packed_dim", None)
            if packed_dim == output_dim:
                shard_size = shard_size // param.pack_factor
                shard_offset = shard_offset // param.pack_factor
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                # If marlin, we need to adjust the offset and size to account for the tiling.
                shard_size, shard_offset = adjust_marlin_shard(
                    param, shard_size, shard_offset)

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            if self.use_llama_nn:
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                param_data_ = param_data.narrow(output_dim, shard_offset,
                                            shard_size)
            else:
                param_data = param_data.narrow(output_dim, shard_offset,
                                            shard_size)
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            start_idx = tp_rank * shard_size
            loaded_weight = loaded_weight.narrow(output_dim, start_idx,
                                                 shard_size)
        else:
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            ignore_warning = getattr(param, "ignore_warning", False)
            if not ignore_warning:
                logger.warning(
                    "Loading a weight without `output_dim` attribute in "
                    "MergedColumnParallelLinear, assume the weight is "
                    "the same for all partitions.")
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        if self.use_llama_nn:
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            assert param_data_.shape == loaded_weight.shape
            param_data_.copy_(loaded_weight)
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            if loaded_shard_id == 1 and len(param_data.shape) == 2:
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                param_data = param_data.transpose(0, 1)
                param.data = param_data.reshape(param_data.shape[1], -1)
        else:
            assert param_data.shape == loaded_weight.shape
            param_data.copy_(loaded_weight)
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class QKVParallelLinear(ColumnParallelLinear):
    """Linear layers for the attention's QKV transformation.

    Linear layers for the linear transformation of the query, key, and value
    vectors in the attention layer. The weight matrix is concatenated along
    the output dimension. The layer is parallelized along the head dimension.
    When the number of key/value heads is smaller than the number of query
    heads (e.g., multi-query/grouped-query attention), the key/value head may
    be replicated while the query heads are partitioned.

    Args:
        hidden_size: input hidden state size of the transformer.
        head_size: size of each attention head.
        total_num_heads: total number of attention query heads.
        total_num_kv_heads: total number of attention key/value heads. If
                            None, assume total_num_kv_heads = total_num_heads.
        bias: If true, add bias.
        skip_bias_add: This was added to enable performance optimizations where
                       bias can be fused with other element-wise operations. we
                       skip adding bias but instead return it.
        params_dtype: Data type for the parameters.
        linear_method: (Maybe quantized) linear method.
    """

    def __init__(
        self,
        hidden_size: int,
        head_size: int,
        total_num_heads: int,
        total_num_kv_heads: Optional[int] = None,
        bias: bool = True,
        skip_bias_add: bool = False,
        params_dtype: Optional[torch.dtype] = None,
        linear_method: Optional[LinearMethodBase] = None,
    ):
        self.hidden_size = hidden_size
        self.head_size = head_size
        self.total_num_heads = total_num_heads
        if total_num_kv_heads is None:
            total_num_kv_heads = total_num_heads
        self.total_num_kv_heads = total_num_kv_heads
        # Divide the weight matrix along the last dimension.
        tp_size = get_tensor_model_parallel_world_size()
        self.num_heads = divide(self.total_num_heads, tp_size)
        if tp_size >= self.total_num_kv_heads:
            self.num_kv_heads = 1
            self.num_kv_head_replicas = divide(tp_size,
                                               self.total_num_kv_heads)
        else:
            self.num_kv_heads = divide(self.total_num_kv_heads, tp_size)
            self.num_kv_head_replicas = 1
        input_size = self.hidden_size
        output_size = (self.num_heads +
                       2 * self.num_kv_heads) * tp_size * self.head_size
        super().__init__(input_size, output_size, bias, False, skip_bias_add,
                         params_dtype, linear_method)
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        self.use_llama_nn = os.environ.get('LLAMA_NN') == '1'
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    def weight_loader(self,
                      param: Parameter,
                      loaded_weight: torch.Tensor,
                      loaded_shard_id: Optional[str] = None):
        param_data = param.data
        output_dim = getattr(param, "output_dim", None)
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        if loaded_shard_id is None:
            # Loaded weight is already packed.
            if output_dim is None:
                assert param_data.shape == loaded_weight.shape
                param_data.copy_(loaded_weight)
                return
            shard_offsets = [
                # (shard_id, shard_offset, shard_size)
                ("q", 0, self.total_num_heads * self.head_size),
                ("k", self.total_num_heads * self.head_size,
                 self.total_num_kv_heads * self.head_size),
                ("v", (self.total_num_heads + self.total_num_kv_heads) *
                 self.head_size, self.total_num_kv_heads * self.head_size),
            ]
            packed_dim = getattr(param, "packed_dim", None)
            for shard_id, shard_offset, shard_size in shard_offsets:
                # If quantized, we need to adjust the offset and size to account
                # for the packing.
                if packed_dim == output_dim:
                    shard_size = shard_size // param.pack_factor
                    shard_offset = shard_offset // param.pack_factor
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                    # If marlin, we need to adjust the offset and size to account for the tiling.
                    shard_size, shard_offset = adjust_marlin_shard(
                        param, shard_size, shard_offset)

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                loaded_weight_shard = loaded_weight.narrow(
                    output_dim, shard_offset, shard_size)
                self.weight_loader(param, loaded_weight_shard, shard_id)
            return

        tp_rank = get_tensor_model_parallel_rank()
        assert loaded_shard_id in ["q", "k", "v"]
        if output_dim is not None:
            if loaded_shard_id == "q":
                shard_offset = 0
                shard_size = self.num_heads * self.head_size
            elif loaded_shard_id == "k":
                shard_offset = self.num_heads * self.head_size
                shard_size = self.num_kv_heads * self.head_size
            elif loaded_shard_id == "v":
                shard_offset = (self.num_heads +
                                self.num_kv_heads) * self.head_size
                shard_size = self.num_kv_heads * self.head_size
            # If quantized, we need to adjust the offset and size to account
            # for the packing.
            packed_dim = getattr(param, "packed_dim", None)
            if packed_dim == output_dim:
                shard_size = shard_size // param.pack_factor
                shard_offset = shard_offset // param.pack_factor
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                # If marlin, we need to adjust the offset and size to account for the tiling.
                shard_size, shard_offset = adjust_marlin_shard(
                    param, shard_size, shard_offset)

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            if self.use_llama_nn:
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                param_data_ = param_data.narrow(output_dim, shard_offset,
                                           shard_size)
            else:
                param_data = param_data.narrow(output_dim, shard_offset,
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                                           shard_size)
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            if loaded_shard_id == "q" and len(param_data.shape) == 2:
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                shard_id = tp_rank
            else:
                shard_id = tp_rank // self.num_kv_head_replicas
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            start_idx = shard_id * shard_size
            loaded_weight = loaded_weight.narrow(output_dim, start_idx,
                                                 shard_size)
        else:
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            ignore_warning = getattr(param, "ignore_warning", False)
            if not ignore_warning:
                logger.warning(
                    "Loading a weight without `output_dim` attribute in "
                    "QKVParallelLinear, assume the weight is the same "
                    "for all partitions.")
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        if self.use_llama_nn:
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            assert param_data_.shape == loaded_weight.shape
            param_data_.copy_(loaded_weight)
            if loaded_shard_id == "v":
                param_data = param_data.transpose(0, 1) 
                param.data = param_data.reshape(param_data.shape[1], -1) 
        else:
            assert param_data.shape == loaded_weight.shape
            param_data.copy_(loaded_weight)
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class RowParallelLinear(torch.nn.Module):
    """Linear layer with row parallelism.

    The linear layer is defined as Y = XA + b. A is parallelized along
    its first dimension and X along its second dimension as:
               -   -
              | A_1 |
              | .   |
          A = | .   |        X = [X_1, ..., X_p]
              | .   |
              | A_p |
               -   -
    Arguments:
        input_size: first dimension of matrix A.
        output_size: second dimension of matrix A.
        bias: If true, add bias. Note that bias is not parallelized.
        input_is_parallel: If true, we assume that the input is already
                           split across the GPUs and we do not split
                           again.
        skip_bias_add: This was added to enable performance optimization where
                       bias can be fused with other element-wise operations.
                       We skip adding bias but instead return it.
        params_dtype: Data type for the parameters.
        linear_method: (Maybe quantized) linear method.
    """

    def __init__(
        self,
        input_size: int,
        output_size: int,
        bias: bool = True,
        input_is_parallel: bool = True,
        skip_bias_add: bool = False,
        params_dtype: Optional[torch.dtype] = None,
        reduce_results: bool = True,
        linear_method: Optional[LinearMethodBase] = None,
    ):
        super().__init__()
        # Keep input parameters
        self.input_size = input_size
        self.output_size = output_size
        self.input_is_parallel = input_is_parallel
        self.reduce_results = reduce_results
        if params_dtype is None:
            params_dtype = torch.get_default_dtype()
        self.params_dtype = params_dtype

        # Divide the weight matrix along the last dimension.
        self.tp_size = get_tensor_model_parallel_world_size()
        self.input_size_per_partition = divide(input_size, self.tp_size)
        self.skip_bias_add = skip_bias_add
        if linear_method is None:
            linear_method = UnquantizedLinearMethod()
        self.linear_method = linear_method
        self.linear_weights = self.linear_method.create_weights(
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            self.input_size_per_partition, self.output_size, self.input_size,
            self.output_size, self.params_dtype)
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        for name, weight in self.linear_weights.items():
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            if isinstance(weight, torch.Tensor):
                self.register_parameter(name, weight)
                set_weight_attrs(weight, {"weight_loader": self.weight_loader})
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        if not reduce_results and (bias and not skip_bias_add):
            raise ValueError("When not reduce the results, adding bias to the "
                             "results can lead to incorrect results")

        if bias:
            self.bias = Parameter(
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                torch.empty(self.output_size, dtype=params_dtype))
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            set_weight_attrs(self.bias, {
                "output_dim": 0,
                "weight_loader": self.weight_loader,
            })
        else:
            self.register_parameter("bias", None)
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        self.use_llama_nn = os.environ.get('LLAMA_NN') == '1'
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    def weight_loader(self, param: Parameter, loaded_weight: torch.Tensor):
        tp_rank = get_tensor_model_parallel_rank()
        input_dim = getattr(param, "input_dim", None)
        param_data = param.data
        if input_dim is not None:
            shard_size = param_data.shape[input_dim]
            start_idx = tp_rank * shard_size
            loaded_weight = loaded_weight.narrow(input_dim, start_idx,
                                                 shard_size)
        assert param_data.shape == loaded_weight.shape
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        if self.use_llama_nn:
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            loaded_weight = loaded_weight.transpose(0, 1)
            loaded_weight=loaded_weight.reshape(param_data.shape[0],-1)
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        param_data.copy_(loaded_weight)

    def forward(self, input_):
        # Set up backprop all-reduce.
        if self.input_is_parallel:
            input_parallel = input_
        else:
            tp_rank = get_tensor_model_parallel_rank()
            splitted_input = split_tensor_along_last_dim(
                input_, num_partitions=self.tp_size)
            input_parallel = splitted_input[tp_rank].contiguous()

        # Matrix multiply.
        output_parallel = self.linear_method.apply_weights(
            self.linear_weights, input_parallel)
        if self.reduce_results and self.tp_size > 1:
            output_ = tensor_model_parallel_all_reduce(output_parallel)
        else:
            output_ = output_parallel

        if not self.skip_bias_add:
            output = output_ + self.bias if self.bias is not None else output_
            output_bias = None
        else:
            output = output_
            output_bias = self.bias
        return output, output_bias