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OpenDAS
vllm_cscc
Commits
89d1dd57
Commit
89d1dd57
authored
Mar 25, 2025
by
zhuwenwen
Browse files
[Models]support blas and moe nn layout of deepseek-v3
parent
53076d70
Changes
52
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Showing
20 changed files
with
2153 additions
and
10 deletions
+2153
-10
CMakeLists.txt
CMakeLists.txt
+1
-0
csrc/ops.h
csrc/ops.h
+2
-0
csrc/opt/transpose_kernels.cu
csrc/opt/transpose_kernels.cu
+38
-0
csrc/torch_bindings.cpp
csrc/torch_bindings.cpp
+4
-0
vllm/_custom_ops.py
vllm/_custom_ops.py
+6
-0
vllm/attention/backends/mla/common.py
vllm/attention/backends/mla/common.py
+23
-9
vllm/envs.py
vllm/envs.py
+1
-1
vllm/model_executor/layers/fused_moe/configs/E=128,N=128,device_name=BW200.json
...yers/fused_moe/configs/E=128,N=128,device_name=BW200.json
+146
-0
vllm/model_executor/layers/fused_moe/configs/E=128,N=128,device_name=BW200_nn.json
...s/fused_moe/configs/E=128,N=128,device_name=BW200_nn.json
+164
-0
vllm/model_executor/layers/fused_moe/configs/E=16,N=1024,device_name=BW200_nn.json
...s/fused_moe/configs/E=16,N=1024,device_name=BW200_nn.json
+164
-0
vllm/model_executor/layers/fused_moe/configs/E=16,N=1024,device_name=DCU_K100_AI_nn.json
...d_moe/configs/E=16,N=1024,device_name=DCU_K100_AI_nn.json
+164
-0
vllm/model_executor/layers/fused_moe/configs/E=16,N=1024,device_name=K100_AI_nn.json
...fused_moe/configs/E=16,N=1024,device_name=K100_AI_nn.json
+164
-0
vllm/model_executor/layers/fused_moe/configs/E=256,N=256,device_name=BW200.json
...yers/fused_moe/configs/E=256,N=256,device_name=BW200.json
+146
-0
vllm/model_executor/layers/fused_moe/configs/E=256,N=64,device_name=BW200.json
...ayers/fused_moe/configs/E=256,N=64,device_name=BW200.json
+146
-0
vllm/model_executor/layers/fused_moe/configs/E=256,N=64,device_name=BW200_nn.json
...rs/fused_moe/configs/E=256,N=64,device_name=BW200_nn.json
+164
-0
vllm/model_executor/layers/fused_moe/configs/E=256,N=64,device_name=DCU_K100_AI_nn.json
...ed_moe/configs/E=256,N=64,device_name=DCU_K100_AI_nn.json
+164
-0
vllm/model_executor/layers/fused_moe/configs/E=256,N=64,device_name=K100_AI_nn.json
.../fused_moe/configs/E=256,N=64,device_name=K100_AI_nn.json
+164
-0
vllm/model_executor/layers/fused_moe/configs/E=32,N=512,device_name=BW200_nn.json
...rs/fused_moe/configs/E=32,N=512,device_name=BW200_nn.json
+164
-0
vllm/model_executor/layers/fused_moe/configs/E=32,N=512,device_name=DCU_K100_AI_nn.json
...ed_moe/configs/E=32,N=512,device_name=DCU_K100_AI_nn.json
+164
-0
vllm/model_executor/layers/fused_moe/configs/E=32,N=512,device_name=K100_AI_nn.json
.../fused_moe/configs/E=32,N=512,device_name=K100_AI_nn.json
+164
-0
No files found.
CMakeLists.txt
View file @
89d1dd57
...
@@ -233,6 +233,7 @@ set(VLLM_EXT_SRC
...
@@ -233,6 +233,7 @@ set(VLLM_EXT_SRC
"csrc/pos_encoding_kernels.cu"
"csrc/pos_encoding_kernels.cu"
"csrc/activation_kernels.cu"
"csrc/activation_kernels.cu"
"csrc/layernorm_kernels.cu"
"csrc/layernorm_kernels.cu"
"csrc/opt/transpose_kernels.cu"
# "csrc/layernorm_quant_kernels.cu"
# "csrc/layernorm_quant_kernels.cu"
"csrc/quantization/gptq/q_gemm.cu"
"csrc/quantization/gptq/q_gemm.cu"
"csrc/quantization/compressed_tensors/int8_quant_kernels.cu"
"csrc/quantization/compressed_tensors/int8_quant_kernels.cu"
...
...
csrc/ops.h
View file @
89d1dd57
...
@@ -103,6 +103,8 @@ void gelu_fast(torch::Tensor& out, torch::Tensor& input);
...
@@ -103,6 +103,8 @@ void gelu_fast(torch::Tensor& out, torch::Tensor& input);
void
gelu_quick
(
torch
::
Tensor
&
out
,
torch
::
Tensor
&
input
);
void
gelu_quick
(
torch
::
Tensor
&
out
,
torch
::
Tensor
&
input
);
void
trans_w16_gemm
(
torch
::
Tensor
dst
,
torch
::
Tensor
src
,
int64_t
row
,
int64_t
col
);
void
advance_step_flashattn
(
int64_t
num_seqs
,
int64_t
num_queries
,
void
advance_step_flashattn
(
int64_t
num_seqs
,
int64_t
num_queries
,
int64_t
block_size
,
torch
::
Tensor
&
input_tokens
,
int64_t
block_size
,
torch
::
Tensor
&
input_tokens
,
torch
::
Tensor
&
sampled_token_ids
,
torch
::
Tensor
&
sampled_token_ids
,
...
...
csrc/opt/transpose_kernels.cu
0 → 100644
View file @
89d1dd57
#include <torch/all.h>
#include <c10/cuda/CUDAGuard.h>
#include <ATen/cuda/CUDAContext.h>
#include <cuda_runtime.h>
#include <cuda_fp16.h>
namespace
vllm
{
template
<
typename
T
>
__global__
void
trans_w16_gemm_cudakernel
(
int64_t
num_kernels
,
T
*
dst
,
const
T
*
src
,
int64_t
row
,
int64_t
col
)
{
int64_t
id
=
blockIdx
.
x
*
blockDim
.
x
+
threadIdx
.
x
;
if
(
id
>=
num_kernels
)
return
;
int64_t
j
=
id
%
row
;
int64_t
i
=
id
/
row
;
dst
[
i
*
row
+
j
]
=
src
[
j
*
col
+
i
];
}
void
trans_w16_gemm_cuda
(
half
*
dst
,
const
half
*
src
,
int64_t
row
,
int64_t
col
){
const
cudaStream_t
stream
=
at
::
cuda
::
getCurrentCUDAStream
();
int64_t
num_kernels
=
row
*
col
;
int
block_size
=
256
;
trans_w16_gemm_cudakernel
<<<
(
num_kernels
+
block_size
-
1
)
/
block_size
,
block_size
,
0
,
stream
>>>
(
num_kernels
,
dst
,
src
,
row
,
col
);
}
}
// namespace vllm
void
trans_w16_gemm
(
torch
::
Tensor
dst
,
torch
::
Tensor
src
,
int64_t
row
,
int64_t
col
){
const
at
::
cuda
::
OptionalCUDAGuard
device_guard
(
device_of
(
src
));
vllm
::
trans_w16_gemm_cuda
(
(
half
*
)
dst
.
data_ptr
(),
(
const
half
*
)
src
.
data_ptr
(),
row
,
col
);
}
\ No newline at end of file
csrc/torch_bindings.cpp
View file @
89d1dd57
...
@@ -167,6 +167,10 @@ TORCH_LIBRARY_EXPAND(TORCH_EXTENSION_NAME, ops) {
...
@@ -167,6 +167,10 @@ TORCH_LIBRARY_EXPAND(TORCH_EXTENSION_NAME, ops) {
" Tensor cos_sin_cache_offsets) -> ()"
);
" Tensor cos_sin_cache_offsets) -> ()"
);
ops
.
impl
(
"batched_rotary_embedding"
,
torch
::
kCUDA
,
&
batched_rotary_embedding
);
ops
.
impl
(
"batched_rotary_embedding"
,
torch
::
kCUDA
,
&
batched_rotary_embedding
);
// trans w16
ops
.
def
(
"trans_w16_gemm(Tensor! dst, Tensor src, int row, int col) -> ()"
);
ops
.
impl
(
"trans_w16_gemm"
,
torch
::
kCUDA
,
&
trans_w16_gemm
);
// Quantization ops
// Quantization ops
#ifndef USE_ROCM
#ifndef USE_ROCM
// Quantized GEMM for AQLM.
// Quantized GEMM for AQLM.
...
...
vllm/_custom_ops.py
View file @
89d1dd57
...
@@ -190,6 +190,12 @@ def advance_step_flashinfer(num_seqs: int, num_queries: int, block_size: int,
...
@@ -190,6 +190,12 @@ def advance_step_flashinfer(num_seqs: int, num_queries: int, block_size: int,
block_table_bound
)
block_table_bound
)
# trans_w16
def
trans_w16_gemm
(
dst
:
torch
.
Tensor
,
src
:
torch
.
Tensor
,
row
:
int
,
col
:
int
)
->
None
:
torch
.
ops
.
_C
.
trans_w16_gemm
(
dst
,
src
,
row
,
col
)
# fused quant layer norm ops
# fused quant layer norm ops
def
rms_norm_dynamic_per_token_quant
(
def
rms_norm_dynamic_per_token_quant
(
input
:
torch
.
Tensor
,
input
:
torch
.
Tensor
,
...
...
vllm/attention/backends/mla/common.py
View file @
89d1dd57
...
@@ -184,6 +184,7 @@ for chunk_idx in range(cdiv(C, MCC)):
...
@@ -184,6 +184,7 @@ for chunk_idx in range(cdiv(C, MCC)):
return curr_o @ W_O
return curr_o @ W_O
"""
"""
import
os
import
functools
import
functools
from
abc
import
abstractmethod
from
abc
import
abstractmethod
from
collections
import
defaultdict
from
collections
import
defaultdict
...
@@ -1048,6 +1049,8 @@ class MLACommonImpl(MLAAttentionImpl[T], Generic[T]):
...
@@ -1048,6 +1049,8 @@ class MLACommonImpl(MLAAttentionImpl[T], Generic[T]):
functools
.
partial
(
flash_attn_varlen_func
,
functools
.
partial
(
flash_attn_varlen_func
,
fa_version
=
self
.
vllm_flash_attn_version
)
fa_version
=
self
.
vllm_flash_attn_version
)
self
.
use_llama_nn
=
os
.
environ
.
get
(
'LLAMA_NN'
)
==
'1'
def
_v_up_proj_and_o_proj
(
self
,
x
):
def
_v_up_proj_and_o_proj
(
self
,
x
):
# Convert from (B, N, L) to (N, B, L)
# Convert from (B, N, L) to (N, B, L)
x
=
x
.
view
(
-
1
,
self
.
num_heads
,
self
.
kv_lora_rank
).
transpose
(
0
,
1
)
x
=
x
.
view
(
-
1
,
self
.
num_heads
,
self
.
kv_lora_rank
).
transpose
(
0
,
1
)
...
@@ -1098,6 +1101,17 @@ class MLACommonImpl(MLAAttentionImpl[T], Generic[T]):
...
@@ -1098,6 +1101,17 @@ class MLACommonImpl(MLAAttentionImpl[T], Generic[T]):
# we currently do not have quantized bmm's which are needed for
# we currently do not have quantized bmm's which are needed for
# `W_UV` and `W_UK_T`, we we just store fp16/bf16 copies and perform
# `W_UV` and `W_UK_T`, we we just store fp16/bf16 copies and perform
# the bmm's in 16-bit, the extra memory overhead of this is fairly low
# the bmm's in 16-bit, the extra memory overhead of this is fairly low
if
self
.
use_llama_nn
and
self
.
kv_b_proj
.
quant_method
is
None
:
kv_b_proj_weight
=
get_and_maybe_dequant_weights
(
self
.
kv_b_proj
)
assert
kv_b_proj_weight
.
shape
==
(
self
.
num_heads
*
(
self
.
qk_nope_head_dim
+
self
.
v_head_dim
),
self
.
kv_lora_rank
,),
(
f
"
{
kv_b_proj_weight
.
shape
=
}
, "
f
"
{
self
.
kv_lora_rank
=
}
, "
f
"
{
self
.
num_heads
=
}
, "
f
"
{
self
.
qk_nope_head_dim
=
}
, "
f
"
{
self
.
v_head_dim
=
}
"
)
else
:
kv_b_proj_weight
=
get_and_maybe_dequant_weights
(
self
.
kv_b_proj
).
T
kv_b_proj_weight
=
get_and_maybe_dequant_weights
(
self
.
kv_b_proj
).
T
assert
kv_b_proj_weight
.
shape
==
(
assert
kv_b_proj_weight
.
shape
==
(
self
.
kv_lora_rank
,
self
.
kv_lora_rank
,
...
...
vllm/envs.py
View file @
89d1dd57
...
@@ -234,7 +234,7 @@ environment_variables: dict[str, Callable[[], Any]] = {
...
@@ -234,7 +234,7 @@ environment_variables: dict[str, Callable[[], Any]] = {
# flag to control if vllm should use triton flash attention
# flag to control if vllm should use triton flash attention
"VLLM_USE_TRITON_FLASH_ATTN"
:
"VLLM_USE_TRITON_FLASH_ATTN"
:
lambda
:
(
os
.
environ
.
get
(
"VLLM_USE_TRITON_FLASH_ATTN"
,
"
Tru
e"
).
lower
()
in
lambda
:
(
os
.
environ
.
get
(
"VLLM_USE_TRITON_FLASH_ATTN"
,
"
Fals
e"
).
lower
()
in
(
"true"
,
"1"
)),
(
"true"
,
"1"
)),
# Force vllm to use a specific flash-attention version (2 or 3), only valid
# Force vllm to use a specific flash-attention version (2 or 3), only valid
...
...
vllm/model_executor/layers/fused_moe/configs/E=128,N=128,device_name=BW200.json
0 → 100644
View file @
89d1dd57
{
"1"
:
{
"BLOCK_SIZE_M"
:
32
,
"BLOCK_SIZE_N"
:
128
,
"BLOCK_SIZE_K"
:
128
,
"GROUP_SIZE_M"
:
64
,
"num_warps"
:
4
,
"num_stages"
:
2
},
"2"
:
{
"BLOCK_SIZE_M"
:
32
,
"BLOCK_SIZE_N"
:
64
,
"BLOCK_SIZE_K"
:
64
,
"GROUP_SIZE_M"
:
32
,
"num_warps"
:
4
,
"num_stages"
:
2
},
"4"
:
{
"BLOCK_SIZE_M"
:
16
,
"BLOCK_SIZE_N"
:
64
,
"BLOCK_SIZE_K"
:
128
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
4
,
"num_stages"
:
2
},
"8"
:
{
"BLOCK_SIZE_M"
:
16
,
"BLOCK_SIZE_N"
:
64
,
"BLOCK_SIZE_K"
:
128
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
4
,
"num_stages"
:
2
},
"16"
:
{
"BLOCK_SIZE_M"
:
16
,
"BLOCK_SIZE_N"
:
64
,
"BLOCK_SIZE_K"
:
128
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
4
,
"num_stages"
:
2
},
"24"
:
{
"BLOCK_SIZE_M"
:
16
,
"BLOCK_SIZE_N"
:
64
,
"BLOCK_SIZE_K"
:
128
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
4
,
"num_stages"
:
2
},
"32"
:
{
"BLOCK_SIZE_M"
:
16
,
"BLOCK_SIZE_N"
:
64
,
"BLOCK_SIZE_K"
:
128
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
4
,
"num_stages"
:
2
},
"48"
:
{
"BLOCK_SIZE_M"
:
16
,
"BLOCK_SIZE_N"
:
64
,
"BLOCK_SIZE_K"
:
128
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
4
,
"num_stages"
:
2
},
"64"
:
{
"BLOCK_SIZE_M"
:
16
,
"BLOCK_SIZE_N"
:
64
,
"BLOCK_SIZE_K"
:
128
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
4
,
"num_stages"
:
2
},
"96"
:
{
"BLOCK_SIZE_M"
:
16
,
"BLOCK_SIZE_N"
:
64
,
"BLOCK_SIZE_K"
:
128
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
4
,
"num_stages"
:
2
},
"128"
:
{
"BLOCK_SIZE_M"
:
16
,
"BLOCK_SIZE_N"
:
64
,
"BLOCK_SIZE_K"
:
128
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
4
,
"num_stages"
:
2
},
"256"
:
{
"BLOCK_SIZE_M"
:
32
,
"BLOCK_SIZE_N"
:
64
,
"BLOCK_SIZE_K"
:
128
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
8
,
"num_stages"
:
2
},
"512"
:
{
"BLOCK_SIZE_M"
:
64
,
"BLOCK_SIZE_N"
:
128
,
"BLOCK_SIZE_K"
:
64
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
4
,
"num_stages"
:
2
},
"1024"
:
{
"BLOCK_SIZE_M"
:
128
,
"BLOCK_SIZE_N"
:
128
,
"BLOCK_SIZE_K"
:
64
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
4
,
"num_stages"
:
2
},
"1536"
:
{
"BLOCK_SIZE_M"
:
128
,
"BLOCK_SIZE_N"
:
128
,
"BLOCK_SIZE_K"
:
64
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
4
,
"num_stages"
:
2
},
"2048"
:
{
"BLOCK_SIZE_M"
:
128
,
"BLOCK_SIZE_N"
:
128
,
"BLOCK_SIZE_K"
:
64
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
4
,
"num_stages"
:
2
},
"3072"
:
{
"BLOCK_SIZE_M"
:
128
,
"BLOCK_SIZE_N"
:
128
,
"BLOCK_SIZE_K"
:
64
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
4
,
"num_stages"
:
2
},
"4096"
:
{
"BLOCK_SIZE_M"
:
128
,
"BLOCK_SIZE_N"
:
128
,
"BLOCK_SIZE_K"
:
64
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
4
,
"num_stages"
:
2
}
}
vllm/model_executor/layers/fused_moe/configs/E=128,N=128,device_name=BW200_nn.json
0 → 100644
View file @
89d1dd57
{
"1"
:
{
"BLOCK_SIZE_M"
:
16
,
"BLOCK_SIZE_N"
:
64
,
"BLOCK_SIZE_K"
:
64
,
"GROUP_SIZE_M"
:
16
,
"num_warps"
:
4
,
"num_stages"
:
3
,
"num_ldmatrixes"
:
1
},
"2"
:
{
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vllm/model_executor/layers/fused_moe/configs/E=16,N=1024,device_name=BW200_nn.json
0 → 100644
View file @
89d1dd57
{
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vllm/model_executor/layers/fused_moe/configs/E=16,N=1024,device_name=DCU_K100_AI_nn.json
0 → 100644
View file @
89d1dd57
{
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vllm/model_executor/layers/fused_moe/configs/E=16,N=1024,device_name=K100_AI_nn.json
0 → 100644
View file @
89d1dd57
{
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vllm/model_executor/layers/fused_moe/configs/E=256,N=256,device_name=BW200.json
0 → 100644
View file @
89d1dd57
{
"1"
:
{
"BLOCK_SIZE_M"
:
16
,
"BLOCK_SIZE_N"
:
128
,
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4
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64
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128
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128
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64
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1
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,
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:
2
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}
vllm/model_executor/layers/fused_moe/configs/E=256,N=64,device_name=BW200.json
0 → 100644
View file @
89d1dd57
{
"1"
:
{
"BLOCK_SIZE_M"
:
32
,
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:
128
,
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64
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32
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4
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64
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128
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64
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1
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2
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128
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128
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64
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1
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4
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"num_stages"
:
2
}
}
vllm/model_executor/layers/fused_moe/configs/E=256,N=64,device_name=BW200_nn.json
0 → 100644
View file @
89d1dd57
{
"1"
:
{
"BLOCK_SIZE_M"
:
16
,
"BLOCK_SIZE_N"
:
32
,
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:
1
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vllm/model_executor/layers/fused_moe/configs/E=256,N=64,device_name=DCU_K100_AI_nn.json
0 → 100644
View file @
89d1dd57
{
"1"
:
{
"BLOCK_SIZE_M"
:
16
,
"BLOCK_SIZE_N"
:
32
,
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{
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64
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32
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8
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1
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}
vllm/model_executor/layers/fused_moe/configs/E=256,N=64,device_name=K100_AI_nn.json
0 → 100644
View file @
89d1dd57
{
"1"
:
{
"BLOCK_SIZE_M"
:
16
,
"BLOCK_SIZE_N"
:
32
,
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128
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16
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32
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:
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32
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128
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64
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1
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64
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32
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64
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:
32
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:
128
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64
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1
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:
32
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128
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64
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32
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64
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{
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32
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128
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32
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128
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{
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:
64
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128
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64
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{
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32
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1
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"2048"
:
{
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32
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2
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:
{
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:
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:
128
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:
128
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1
,
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:
8
,
"num_stages"
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2
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:
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:
{
"BLOCK_SIZE_M"
:
32
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:
128
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"BLOCK_SIZE_K"
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128
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"GROUP_SIZE_M"
:
1
,
"num_warps"
:
8
,
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2
,
"num_ldmatrixes"
:
1
}
}
vllm/model_executor/layers/fused_moe/configs/E=32,N=512,device_name=BW200_nn.json
0 → 100644
View file @
89d1dd57
{
"1"
:
{
"BLOCK_SIZE_M"
:
16
,
"BLOCK_SIZE_N"
:
64
,
"BLOCK_SIZE_K"
:
128
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4
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16
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:
128
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64
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1
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4
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2
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1
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:
16
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32
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1
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4
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2
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:
{
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:
16
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:
{
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16
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32
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1
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16
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32
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:
1
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8
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2
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16
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256
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:
32
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1
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8
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2
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:
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:
32
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:
256
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:
32
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1
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4
,
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:
64
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:
256
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:
32
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1
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8
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2
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:
{
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32
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256
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64
,
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1
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{
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64
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256
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32
,
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:
{
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128
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256
,
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32
,
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{
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64
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128
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32
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2
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1
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128
,
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:
256
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:
32
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1
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4
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:
2
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1
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"1536"
:
{
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:
128
,
"BLOCK_SIZE_N"
:
256
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:
32
,
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1
,
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:
4
,
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:
2
,
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:
1
},
"2048"
:
{
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:
128
,
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:
256
,
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:
32
,
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1
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:
4
,
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:
2
,
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:
1
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"3072"
:
{
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:
128
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:
256
,
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32
,
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:
1
,
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:
4
,
"num_stages"
:
2
,
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:
1
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"4096"
:
{
"BLOCK_SIZE_M"
:
128
,
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:
256
,
"BLOCK_SIZE_K"
:
32
,
"GROUP_SIZE_M"
:
1
,
"num_warps"
:
4
,
"num_stages"
:
2
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:
1
}
}
vllm/model_executor/layers/fused_moe/configs/E=32,N=512,device_name=DCU_K100_AI_nn.json
0 → 100644
View file @
89d1dd57
{
"1"
:
{
"BLOCK_SIZE_M"
:
16
,
"BLOCK_SIZE_N"
:
32
,
"BLOCK_SIZE_K"
:
64
,
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1
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:
4
,
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3
,
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1
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{
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:
16
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:
64
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32
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1
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4
,
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3
,
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1
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"4"
:
{
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:
16
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:
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vllm/model_executor/layers/fused_moe/configs/E=32,N=512,device_name=K100_AI_nn.json
0 → 100644
View file @
89d1dd57
{
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