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c0061ff5
编写于
10月 15, 2020
作者:
1
123malin
提交者:
GitHub
10月 15, 2020
浏览文件
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电子邮件补丁
差异文件
【paddle.fleet】geo send sparse optimize (#27719) (#27979)
* test=develop, fix geo sgd communicator and gloo http_init for ps
上级
51dd268c
变更
4
隐藏空白更改
内联
并排
Showing
4 changed file
with
31 addition
and
79 deletion
+31
-79
paddle/fluid/operators/distributed/communicator.cc
paddle/fluid/operators/distributed/communicator.cc
+24
-31
python/paddle/distributed/fleet/base/role_maker.py
python/paddle/distributed/fleet/base/role_maker.py
+1
-1
python/paddle/distributed/fleet/launch_utils.py
python/paddle/distributed/fleet/launch_utils.py
+3
-3
python/paddle/fluid/incubate/fleet/parameter_server/ir/trainer_pass.py
.../fluid/incubate/fleet/parameter_server/ir/trainer_pass.py
+3
-44
未找到文件。
paddle/fluid/operators/distributed/communicator.cc
浏览文件 @
c0061ff5
...
...
@@ -466,41 +466,34 @@ void GeoCommunicator::Send(const std::vector<std::string> &var_names,
const
std
::
vector
<
std
::
string
>
&
var_tables
,
const
framework
::
Scope
&
scope
)
{
waiting_
=
false
;
PADDLE_ENFORCE_EQ
(
var_tables
.
size
(),
1
,
platform
::
errors
::
InvalidArgument
(
"var_tables.size() == 1 is permitted"
));
auto
table_name
=
var_tables
[
0
];
if
(
table_name
==
STEP_COUNTER
)
return
;
auto
before_send
=
GetCurrentUS
();
std
::
unordered_map
<
std
::
string
,
std
::
unordered_set
<
int64_t
>>
ids_table
;
size_t
splited_var_nums
=
send_varname_to_ctx_
[
table_name
].
splited_varnames
.
size
();
for
(
size_t
i
=
0
;
i
<
var_tables
.
size
();
i
++
)
{
auto
table_name
=
var_tables
[
i
];
if
(
table_name
==
STEP_COUNTER
)
{
continue
;
}
else
{
size_t
splited_var_nums
=
send_varname_to_ctx_
[
table_name
].
splited_varnames
.
size
();
for
(
size_t
j
=
0
;
j
<
splited_var_nums
;
j
++
)
{
if
(
ids_table
.
find
(
send_varname_to_ctx_
[
table_name
].
splited_varnames
[
j
])
==
ids_table
.
end
())
{
ids_table
.
insert
(
std
::
pair
<
std
::
string
,
std
::
unordered_set
<
int64_t
>>
(
send_varname_to_ctx_
[
table_name
].
splited_varnames
[
j
],
std
::
unordered_set
<
int64_t
>
()));
}
}
std
::
unordered_map
<
std
::
string
,
std
::
unordered_set
<
int64_t
>>
ids_table
;
auto
*
var
=
scope
.
FindVar
(
var_names
[
i
]);
auto
var_tensor
=
var
->
Get
<
framework
::
LoDTensor
>
();
int
element_number
=
var_tensor
.
numel
();
const
int64_t
*
var_mutable_data
=
var_tensor
.
data
<
int64_t
>
();
for
(
size_t
j
=
0
;
j
<
splited_var_nums
;
j
++
)
{
ids_table
.
insert
(
std
::
pair
<
std
::
string
,
std
::
unordered_set
<
int64_t
>>
(
send_varname_to_ctx_
[
table_name
].
splited_varnames
[
j
],
std
::
unordered_set
<
int64_t
>
()));
}
auto
*
var
=
scope
.
FindVar
(
var_names
[
0
]);
auto
&
rows
=
var
->
Get
<
framework
::
SelectedRows
>
().
rows
();
// insert ids which has not been record
for
(
int
j
=
0
;
j
<
element_number
;
j
++
)
{
auto
ep_idx
=
var_mutable_data
[
j
]
%
splited_var_nums
;
ids_table
.
at
(
send_varname_to_ctx_
[
table_name
].
splited_varnames
[
ep_idx
])
.
insert
(
var_mutable_data
[
j
]);
}
}
// insert ids which has not been record
for
(
size_t
j
=
0
;
j
<
rows
.
size
();
j
++
)
{
auto
ep_idx
=
rows
[
j
]
%
splited_var_nums
;
ids_table
.
at
(
send_varname_to_ctx_
[
table_name
].
splited_varnames
[
ep_idx
])
.
insert
(
rows
[
j
]);
}
auto
before_push
=
GetCurrentUS
();
for
(
auto
&
iter
:
ids_table
)
{
auto
&
key
=
iter
.
first
;
...
...
@@ -512,8 +505,8 @@ void GeoCommunicator::Send(const std::vector<std::string> &var_names,
<<
"'s queue"
;
}
auto
after_send
=
GetCurrentUS
();
VLOG
(
3
)
<<
"run send
_op finish. using "
<<
(
before_push
-
before_send
)
<<
";
"
<<
(
after_send
-
before_push
);
VLOG
(
3
)
<<
"run send
"
<<
table_name
<<
" op finish. using
"
<<
(
before_push
-
before_send
)
<<
"; "
<<
(
after_send
-
before_push
);
}
void
GeoCommunicator
::
MainThread
()
{
...
...
python/paddle/distributed/fleet/base/role_maker.py
浏览文件 @
c0061ff5
...
...
@@ -826,7 +826,7 @@ class PaddleCloudRoleMaker(RoleMakerBase):
start_http_server
=
True
else
:
ep_rank_0
=
os
.
getenv
(
"PADDLE_GLOO_HTTP_ENDPOINT"
,
""
)
if
self
.
_server_index
()
==
0
:
if
self
.
_
is_server
()
and
self
.
_
server_index
()
==
0
:
start_http_server
=
True
ip
,
port
=
ep_rank_0
.
split
(
':'
)
kwargs
=
{
...
...
python/paddle/distributed/fleet/launch_utils.py
浏览文件 @
c0061ff5
...
...
@@ -895,7 +895,7 @@ class ParameterServerLauncher(object):
"PADDLE_TRAINERS_NUM"
:
str
(
self
.
worker_num
),
"POD_IP"
:
cur_server
.
endpoint
.
split
(
":"
)[
0
],
"PADDLE_WITH_GLOO"
:
"1"
,
"PADDLE_GLOO_RENDEZVOUS"
:
"
2
"
,
"PADDLE_GLOO_RENDEZVOUS"
:
"
3
"
,
"PADDLE_GLOO_FS_PATH"
:
self
.
gloo_rendezvous_dir
,
"PADDLE_GLOO_HTTP_ENDPOINT"
:
self
.
http_port
}
...
...
@@ -959,7 +959,7 @@ class ParameterServerLauncher(object):
"TRAINING_ROLE"
:
"TRAINER"
,
"PADDLE_TRAINER_ID"
:
str
(
cur_worker
.
rank
),
"PADDLE_WITH_GLOO"
:
"1"
,
"PADDLE_GLOO_RENDEZVOUS"
:
"
2
"
,
"PADDLE_GLOO_RENDEZVOUS"
:
"
3
"
,
"PADDLE_GLOO_FS_PATH"
:
self
.
gloo_rendezvous_dir
,
"FLAGS_selected_gpus"
:
"0"
,
"FLAGS_selected_xpus"
:
"0"
,
...
...
@@ -1028,7 +1028,7 @@ class ParameterServerLauncher(object):
"PADDLE_TRAINERS_NUM"
:
str
(
self
.
worker_num
),
"POD_IP"
:
cur_heter_worker
.
endpoint
.
split
(
":"
)[
0
],
"PADDLE_WITH_GLOO"
:
"1"
,
"PADDLE_GLOO_RENDEZVOUS"
:
"
2
"
,
"PADDLE_GLOO_RENDEZVOUS"
:
"
3
"
,
"PADDLE_GLOO_FS_PATH"
:
self
.
gloo_rendezvous_dir
,
"FLAGS_selected_gpus"
:
"0"
,
"FLAGS_selected_xpus"
:
"0"
,
...
...
python/paddle/fluid/incubate/fleet/parameter_server/ir/trainer_pass.py
浏览文件 @
c0061ff5
...
...
@@ -169,7 +169,7 @@ def append_send_ops_pass(program, config):
trainer_id
=
config
.
get_role_id
()
pserver_endpoints
=
config
.
get_ps_endpoints
()
def
_append_
grad_
send_op
(
union_vars
,
queue
):
def
_append_send_op
(
union_vars
,
queue
):
if
queue
==
STEP_COUNTER
:
send_input_vars
=
[]
...
...
@@ -198,43 +198,6 @@ def append_send_ops_pass(program, config):
return
dummy_output
def
_append_sparse_ids_send_op
():
sparse_var
=
[]
sparse_tables
=
[]
unique_sparse_var
=
{}
for
op
in
program
.
global_block
().
ops
:
if
"is_sparse"
in
op
.
all_attrs
():
if
op
.
type
==
"lookup_table"
:
op
.
_set_attr
(
'remote_prefetch'
,
False
)
for
input_var_name
,
sparse_var_name
in
zip
(
op
.
input
(
"Ids"
),
op
.
input
(
"W"
)):
if
input_var_name
in
unique_sparse_var
:
if
unique_sparse_var
[
input_var_name
]
==
sparse_var_name
:
continue
input_var
=
program
.
global_block
().
var
(
input_var_name
)
sparse_var
.
append
(
input_var
)
sparse_tables
.
append
(
sparse_var_name
)
unique_sparse_var
[
input_var_name
]
=
sparse_var_name
dummy_output
=
[]
if
mode
in
[
DistributedMode
.
SYNC
,
DistributedMode
.
HALF_ASYNC
]:
dummy_output
=
program
.
global_block
().
create_var
(
name
=
framework
.
generate_control_dev_var_name
())
program
.
global_block
().
append_op
(
type
=
"send"
,
inputs
=
{
"X"
:
sparse_var
},
outputs
=
{
"Out"
:
dummy_output
},
attrs
=
{
"send_varnames"
:
sparse_tables
,
"merge_add"
:
True
,
"use_send_handler"
:
False
,
"endpoints"
:
pserver_endpoints
,
RPC_OP_ROLE_ATTR_NAME
:
RPC_OP_ROLE_ATTR_VALUE
})
return
dummy_output
def
_append_barrier_op
(
dummys
):
program
.
global_block
().
append_op
(
type
=
"send_barrier"
,
...
...
@@ -251,12 +214,8 @@ def append_send_ops_pass(program, config):
sends
=
config
.
get_trainer_send_context
()
if
mode
==
DistributedMode
.
GEO
:
dummys
.
append
(
_append_sparse_ids_send_op
())
else
:
for
merged_name
,
send
in
sends
.
items
():
dummys
.
append
(
_append_grad_send_op
(
send
.
origin_varnames
(),
merged_name
))
for
merged_name
,
send
in
sends
.
items
():
dummys
.
append
(
_append_send_op
(
send
.
origin_varnames
(),
merged_name
))
if
mode
in
[
DistributedMode
.
SYNC
,
DistributedMode
.
HALF_ASYNC
]:
_append_barrier_op
(
dummys
)
...
...
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