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OpenDAS
bitsandbytes
Commits
490153b2
Commit
490153b2
authored
Jul 10, 2023
by
Tim Dettmers
Browse files
Added generation tests.
parent
1c774ece
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tests/test_generation.py
tests/test_generation.py
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tests/test_generation.py
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490153b2
import
pytest
import
torch
import
math
from
transformers
import
(
AutoConfig
,
AutoModelForCausalLM
,
AutoTokenizer
,
BitsAndBytesConfig
,
GenerationConfig
,
set_seed
,
)
import
transformers
def
get_4bit_config
():
return
BitsAndBytesConfig
(
load_in_4bit
=
True
,
load_in_8bit
=
False
,
llm_int8_threshold
=
6.0
,
llm_int8_has_fp16_weight
=
False
,
bnb_4bit_compute_dtype
=
torch
.
float16
,
bnb_4bit_use_double_quant
=
True
,
bnb_4bit_quant_type
=
'nf4'
,
)
def
get_model
(
model_name_or_path
=
'huggyllama/llama-7b'
,
bnb_config
=
get_4bit_config
()):
model
=
AutoModelForCausalLM
.
from_pretrained
(
model_name_or_path
,
quantization_config
=
bnb_config
,
max_memory
=
{
0
:
'48GB'
},
device_map
=
'auto'
).
eval
()
return
model
def
get_prompt_for_generation_eval
(
text
,
add_roles
=
True
):
description
=
(
"A chat between a curious human and an artificial intelligence assistant. "
"The assistant gives helpful, detailed, and polite answers to the user's questions."
)
if
add_roles
:
prompt
=
f
'
{
description
}
### Human:
{
text
}
### Assistant:'
else
:
prompt
=
f
'
{
description
}
{
text
}
'
return
prompt
def
generate
(
model
,
tokenizer
,
text
,
generation_config
,
prompt_func
=
get_prompt_for_generation_eval
):
text
=
prompt_func
(
text
)
inputs
=
tokenizer
(
text
,
return_tensors
=
"pt"
).
to
(
'cuda:0'
)
outputs
=
model
.
generate
(
inputs
=
inputs
[
'input_ids'
],
generation_config
=
generation_config
)
return
tokenizer
.
decode
(
outputs
[
0
],
skip_special_tokens
=
True
)
name_or_path
=
'huggyllama/llama-7b'
#name_or_path = 'AI-Sweden/gpt-sw3-126m'
@
pytest
.
fixture
(
scope
=
'session'
)
def
model
():
bnb_config
=
get_4bit_config
()
bnb_config
.
bnb_4bit_compute_dtype
=
torch
.
float32
bnb_config
.
load_in_4bit
=
True
model
=
get_model
(
name_or_path
)
print
(
''
)
return
model
@
pytest
.
fixture
(
scope
=
'session'
)
def
tokenizer
():
tokenizer
=
transformers
.
AutoTokenizer
.
from_pretrained
(
name_or_path
)
return
tokenizer
@
pytest
.
mark
.
parametrize
(
"dtype"
,
[
torch
.
float16
,
torch
.
bfloat16
,
torch
.
float32
],
ids
=
[
'fp16'
,
'bf16'
,
'fp32'
])
def
test_pi
(
model
,
tokenizer
,
dtype
):
generation_config
=
transformers
.
GenerationConfig
(
max_new_tokens
=
128
,
do_sample
=
True
,
top_p
=
0.9
,
temperature
=
0.7
,
)
generation_config
.
max_new_tokens
=
50
#text = 'Please write down the first 50 digits of pi.'
#text = get_prompt_for_generation_eval(text)
#text += ' Sure, here the first 50 digits of pi: 3.14159'
text
=
'3.14159'
model
.
config
.
quantization_config
.
bnb_4bit_compute_dtype
=
dtype
inputs
=
tokenizer
(
text
,
return_tensors
=
"pt"
).
to
(
'cuda:0'
)
outputs
=
model
.
generate
(
inputs
=
inputs
[
'input_ids'
],
generation_config
=
generation_config
)
textout
=
tokenizer
.
decode
(
outputs
[
0
],
skip_special_tokens
=
True
)
print
(
''
)
print
(
textout
)
print
(
math
.
pi
)
assert
textout
[:
len
(
str
(
math
.
pi
))]
==
str
(
math
.
pi
)
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