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OpenDAS
dynamo
Commits
c4ef45bb
Unverified
Commit
c4ef45bb
authored
Mar 31, 2026
by
Yan Ru Pei
Committed by
GitHub
Mar 31, 2026
Browse files
test(replay): compare offline replay against AIC static point (#7729)
Signed-off-by:
PeaBrane
<
yanrpei@gmail.com
>
parent
457db719
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lib/bindings/python/tests/test_replay.py
lib/bindings/python/tests/test_replay.py
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lib/bindings/python/tests/test_replay.py
View file @
c4ef45bb
...
...
@@ -258,6 +258,108 @@ def _planner_profile_data_npz_path() -> Path:
)
AIC_PARITY_MODEL
=
"Qwen/Qwen3-32B"
AIC_PARITY_SYSTEM
=
"h200_sxm"
AIC_PARITY_VERSIONS
=
{
"vllm"
:
"0.12.0"
,
"sglang"
:
"0.5.6.post2"
,
}
AIC_PARITY_BACKENDS
=
[
pytest
.
param
(
"vllm"
,
marks
=
pytest
.
mark
.
vllm
,
id
=
"vllm"
),
pytest
.
param
(
"sglang"
,
marks
=
pytest
.
mark
.
sglang
,
id
=
"sglang"
),
]
def
_aic_replay_args
(
backend_name
:
str
):
payload
=
{
"block_size"
:
512
,
"enable_prefix_caching"
:
True
,
"enable_chunked_prefill"
:
False
,
"max_num_seqs"
:
16
,
"max_num_batched_tokens"
:
65536
,
"num_gpu_blocks"
:
100000
,
"speedup_ratio"
:
1.0
,
"aic_backend"
:
backend_name
,
"aic_system"
:
AIC_PARITY_SYSTEM
,
"aic_backend_version"
:
AIC_PARITY_VERSIONS
[
backend_name
],
"aic_tp_size"
:
1
,
"aic_model_path"
:
AIC_PARITY_MODEL
,
}
if
backend_name
==
"sglang"
:
payload
[
"engine_type"
]
=
"sglang"
payload
[
"sglang"
]
=
{
"page_size"
:
512
,
"max_prefill_tokens"
:
65536
,
"chunked_prefill_size"
:
65536
,
}
return
MockEngineArgs
.
from_json
(
json
.
dumps
(
payload
))
def
_aic_disagg_replay_args
(
backend_name
:
str
,
*
,
tp_size
:
int
,
is_prefill
:
bool
,
max_num_seqs
:
int
,
max_num_batched_tokens
:
int
,
):
payload
=
{
"block_size"
:
512
,
"enable_prefix_caching"
:
False
,
"enable_chunked_prefill"
:
False
,
"max_num_seqs"
:
max_num_seqs
,
"max_num_batched_tokens"
:
max_num_batched_tokens
,
"num_gpu_blocks"
:
50000
,
"speedup_ratio"
:
1.0
,
"aic_backend"
:
backend_name
,
"aic_system"
:
AIC_PARITY_SYSTEM
,
"aic_backend_version"
:
AIC_PARITY_VERSIONS
[
backend_name
],
"aic_tp_size"
:
tp_size
,
"aic_model_path"
:
AIC_PARITY_MODEL
,
"is_prefill"
:
is_prefill
,
"is_decode"
:
not
is_prefill
,
}
if
backend_name
==
"sglang"
:
payload
[
"engine_type"
]
=
"sglang"
payload
[
"sglang"
]
=
{
"page_size"
:
512
,
"max_prefill_tokens"
:
65536
,
"chunked_prefill_size"
:
65536
,
}
return
MockEngineArgs
.
from_json
(
json
.
dumps
(
payload
))
def
_run_aic_static_point
(
backend_name
:
str
,
isl
:
int
,
osl
:
int
,
batch_size
:
int
):
aiconfigurator
=
pytest
.
importorskip
(
"aiconfigurator"
)
database
=
aiconfigurator
.
sdk
.
perf_database
.
get_database
(
system
=
AIC_PARITY_SYSTEM
,
backend
=
backend_name
,
version
=
AIC_PARITY_VERSIONS
[
backend_name
],
)
backend
=
aiconfigurator
.
sdk
.
backends
.
factory
.
get_backend
(
backend_name
)
model
=
aiconfigurator
.
sdk
.
models
.
get_model
(
model_path
=
AIC_PARITY_MODEL
,
model_config
=
aiconfigurator
.
sdk
.
config
.
ModelConfig
(
tp_size
=
1
),
backend_name
=
backend_name
,
)
session
=
aiconfigurator
.
sdk
.
inference_session
.
InferenceSession
(
model
,
database
,
backend
)
summary
=
session
.
run_static
(
runtime_config
=
aiconfigurator
.
sdk
.
config
.
RuntimeConfig
(
batch_size
=
batch_size
,
beam_width
=
1
,
isl
=
isl
,
osl
=
osl
,
prefix
=
0
,
),
mode
=
"static"
,
stride
=
32
,
)
return
summary
.
get_summary_df
().
to_dict
(
orient
=
"records"
)[
0
]
def
_planner_profile_data_dir_path
()
->
Path
:
return
(
Path
(
__file__
).
resolve
().
parents
[
4
]
...
...
@@ -562,6 +664,150 @@ def test_run_synthetic_concurrency_replay_counts_match(
)
@
pytest
.
mark
.
parametrize
(
"backend_name"
,
AIC_PARITY_BACKENDS
)
@
pytest
.
mark
.
parametrize
(
"isl"
,
[
256
,
512
,
1024
,
2048
,
4096
])
def
test_run_synthetic_concurrency_replay_matches_aic_static_point_no_prefix
(
backend_name
,
isl
):
report
=
run_synthetic_trace_replay
(
isl
,
128
,
8
,
extra_engine_args
=
_aic_replay_args
(
backend_name
),
num_workers
=
1
,
replay_mode
=
"offline"
,
replay_concurrency
=
8
,
arrival_interval_ms
=
0.0
,
)
aic
=
_run_aic_static_point
(
backend_name
=
backend_name
,
isl
=
isl
,
osl
=
128
,
batch_size
=
8
,
)
expected_ttft_ms
=
aic
[
"context_latency"
]
+
aic
[
"tpot"
]
assert
report
[
"mean_ttft_ms"
]
==
pytest
.
approx
(
expected_ttft_ms
,
rel
=
0.05
)
assert
report
[
"mean_tpot_ms"
]
==
pytest
.
approx
(
aic
[
"tpot"
],
rel
=
0.05
)
assert
report
[
"output_throughput_tok_s"
]
==
pytest
.
approx
(
aic
[
"tokens/s/gpu"
],
rel
=
0.05
)
@
pytest
.
mark
.
timeout
(
30
)
@
pytest
.
mark
.
parametrize
(
(
"backend_name"
,
"isl"
,
"osl"
,
"request_count"
,
"replay_concurrency"
,
"total_gpu_budget"
,
"prefill_tp"
,
"decode_tp"
,
"prefill_bs"
,
"decode_bs"
,
"prefill_workers"
,
"decode_workers"
,
"prefill_seq_s_per_worker"
,
"decode_seq_s_per_worker"
,
),
[
pytest
.
param
(
"vllm"
,
1024
,
512
,
1440
,
720
,
20
,
1
,
2
,
1
,
120
,
6
,
5
,
10.49
,
12.482
,
marks
=
pytest
.
mark
.
vllm
,
id
=
"vllm"
,
),
pytest
.
param
(
"sglang"
,
1024
,
512
,
2944
,
1472
,
24
,
2
,
2
,
1
,
184
,
6
,
6
,
15.811
,
14.669
,
marks
=
pytest
.
mark
.
sglang
,
id
=
"sglang"
,
),
],
)
def
test_run_synthetic_disagg_replay_preserves_aic_local_optimum
(
backend_name
,
isl
,
osl
,
request_count
,
replay_concurrency
,
total_gpu_budget
,
prefill_tp
,
decode_tp
,
prefill_bs
,
decode_bs
,
prefill_workers
,
decode_workers
,
prefill_seq_s_per_worker
,
decode_seq_s_per_worker
,
):
prefill_args
=
_aic_disagg_replay_args
(
backend_name
,
tp_size
=
prefill_tp
,
is_prefill
=
True
,
max_num_seqs
=
prefill_bs
,
max_num_batched_tokens
=
isl
,
)
decode_args
=
_aic_disagg_replay_args
(
backend_name
,
tp_size
=
decode_tp
,
is_prefill
=
False
,
max_num_seqs
=
decode_bs
,
max_num_batched_tokens
=
200000
,
)
variants
=
[
(
"picked"
,
prefill_workers
,
decode_workers
),
(
"p_minus_2_d_plus_2"
,
prefill_workers
-
2
,
decode_workers
+
2
),
(
"p_plus_2_d_minus_2"
,
prefill_workers
+
2
,
decode_workers
-
2
),
]
reports
=
{}
for
variant_name
,
p_workers
,
d_workers
in
variants
:
report
=
run_synthetic_trace_replay
(
isl
,
osl
,
request_count
,
prefill_engine_args
=
prefill_args
,
decode_engine_args
=
decode_args
,
num_prefill_workers
=
p_workers
,
num_decode_workers
=
d_workers
,
replay_concurrency
=
replay_concurrency
,
replay_mode
=
"offline"
,
router_mode
=
"round_robin"
,
arrival_interval_ms
=
0.0
,
)
reports
[
variant_name
]
=
report
[
"output_throughput_tok_s"
]
/
total_gpu_budget
assert
reports
[
"picked"
]
>
reports
[
"p_minus_2_d_plus_2"
]
assert
reports
[
"picked"
]
>
reports
[
"p_plus_2_d_minus_2"
]
@
pytest
.
mark
.
parametrize
(
"replay_mode"
,
[
"offline"
,
"online"
])
def
test_run_trace_replay_accepts_router_config
(
tmp_path
,
replay_mode
):
trace_path
=
_write_trace_and_args
(
tmp_path
)
...
...
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