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OpenDAS
vllm_cscc
Commits
2689d5c0
Unverified
Commit
2689d5c0
authored
Apr 22, 2025
by
Flora Feng
Committed by
GitHub
Apr 22, 2025
Browse files
[Model] Use autoweightloader for mamba (#16950)
Signed-off-by:
sfeng33
<
4florafeng@gmail.com
>
parent
acba33a0
Changes
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23 additions
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18 deletions
+23
-18
vllm/model_executor/models/mamba.py
vllm/model_executor/models/mamba.py
+23
-18
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vllm/model_executor/models/mamba.py
View file @
2689d5c0
...
...
@@ -27,7 +27,7 @@ from vllm.model_executor.sampling_metadata import SamplingMetadata
from
vllm.sequence
import
IntermediateTensors
from
vllm.utils
import
LayerBlockType
from
.utils
import
(
is_pp_missing_parameter
,
from
.utils
import
(
AutoWeightsLoader
,
is_pp_missing_parameter
,
make_empty_intermediate_tensors_factory
,
make_layers
,
maybe_prefix
)
...
...
@@ -154,6 +154,26 @@ class MambaModel(nn.Module):
return
hidden_states
def
load_weights
(
self
,
weights
:
Iterable
[
Tuple
[
str
,
torch
.
Tensor
]])
->
Set
[
str
]:
params_dict
=
dict
(
self
.
named_parameters
())
loaded_params
:
Set
[
str
]
=
set
()
for
name
,
loaded_weight
in
weights
:
if
"A_log"
in
name
:
name
=
name
.
replace
(
"A_log"
,
"A"
)
# Skip loading extra bias for GPTQ models.
if
name
.
endswith
(
".bias"
)
and
name
not
in
params_dict
:
continue
if
is_pp_missing_parameter
(
name
,
self
):
continue
param
=
params_dict
[
name
]
weight_loader
=
getattr
(
param
,
"weight_loader"
,
default_weight_loader
)
weight_loader
(
param
,
loaded_weight
)
loaded_params
.
add
(
name
)
return
loaded_params
class
MambaForCausalLM
(
nn
.
Module
,
HasInnerState
,
IsAttentionFree
,
SupportsPP
,
SupportsV0Only
):
...
...
@@ -257,20 +277,5 @@ class MambaForCausalLM(nn.Module, HasInnerState, IsAttentionFree, SupportsPP,
def
load_weights
(
self
,
weights
:
Iterable
[
Tuple
[
str
,
torch
.
Tensor
]])
->
Set
[
str
]:
params_dict
=
dict
(
self
.
named_parameters
())
loaded_params
:
Set
[
str
]
=
set
()
for
name
,
loaded_weight
in
weights
:
if
"A_log"
in
name
:
name
=
name
.
replace
(
"A_log"
,
"A"
)
# Skip loading extra bias for GPTQ models.
if
name
.
endswith
(
".bias"
)
and
name
not
in
params_dict
:
continue
if
is_pp_missing_parameter
(
name
,
self
):
continue
param
=
params_dict
[
name
]
weight_loader
=
getattr
(
param
,
"weight_loader"
,
default_weight_loader
)
weight_loader
(
param
,
loaded_weight
)
loaded_params
.
add
(
name
)
return
loaded_params
loader
=
AutoWeightsLoader
(
self
)
return
loader
.
load_weights
(
weights
)
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