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- import json
- import re
- import weakref
- import jsonschema
- import pytest
- from aphrodite.common.outputs import RequestOutput
- from aphrodite.common.sampling_params import SamplingParams
- from aphrodite.endpoints.llm import LLM
- from ...conftest import cleanup
- MODEL_NAME = "HuggingFaceH4/zephyr-7b-beta"
- @pytest.fixture(scope="module")
- def llm():
- # pytest caches the fixture so we use weakref.proxy to
- # enable garbage collection
- llm = LLM(model=MODEL_NAME, max_model_len=1024)
- with llm.deprecate_legacy_api():
- yield weakref.proxy(llm)
- del llm
- cleanup()
- @pytest.mark.skip_global_cleanup
- def test_guided_regex(sample_regex, llm):
- sampling_params = SamplingParams(
- temperature=0.8,
- top_p=0.95,
- )
- outputs = llm.generate(
- prompts=[
- f"Give an example IPv4 address with this regex: {sample_regex}"
- ] * 2,
- sampling_params=sampling_params,
- use_tqdm=True,
- guided_options_request=dict(guided_regex=sample_regex))
- assert outputs is not None
- for output in outputs:
- assert output is not None
- assert isinstance(output, RequestOutput)
- prompt = output.prompt
- generated_text = output.outputs[0].text
- print(generated_text)
- assert generated_text is not None
- assert re.fullmatch(sample_regex, generated_text) is not None
- print(f"Prompt: {prompt!r}, Generated text: {generated_text!r}")
- @pytest.mark.skip_global_cleanup
- def test_guided_json_completion(sample_json_schema, llm):
- sampling_params = SamplingParams(
- temperature=1.0,
- max_tokens=1000,
- )
- outputs = llm.generate(
- prompts=[
- f"Give an example JSON for an employee profile "
- f"that fits this schema: {sample_json_schema}"
- ] * 2,
- sampling_params=sampling_params,
- use_tqdm=True,
- guided_options_request=dict(guided_json=sample_json_schema))
- assert outputs is not None
- for output in outputs:
- assert output is not None
- assert isinstance(output, RequestOutput)
- prompt = output.prompt
- generated_text = output.outputs[0].text
- assert generated_text is not None
- print(f"Prompt: {prompt!r}, Generated text: {generated_text!r}")
- output_json = json.loads(generated_text)
- jsonschema.validate(instance=output_json, schema=sample_json_schema)
- @pytest.mark.skip_global_cleanup
- def test_guided_choice_completion(sample_guided_choice, llm):
- sampling_params = SamplingParams(
- temperature=0.8,
- top_p=0.95,
- )
- outputs = llm.generate(
- prompts="The best language for type-safe systems programming is ",
- sampling_params=sampling_params,
- use_tqdm=True,
- guided_options_request=dict(guided_choice=sample_guided_choice))
- assert outputs is not None
- for output in outputs:
- assert output is not None
- assert isinstance(output, RequestOutput)
- prompt = output.prompt
- generated_text = output.outputs[0].text
- print(generated_text)
- assert generated_text is not None
- assert generated_text in sample_guided_choice
- print(f"Prompt: {prompt!r}, Generated text: {generated_text!r}")
- @pytest.mark.skip_global_cleanup
- def test_guided_grammar(sample_sql_statements, llm):
- sampling_params = SamplingParams(
- temperature=0.8,
- top_p=0.95,
- max_tokens=1000,
- )
- outputs = llm.generate(
- prompts=("Generate a sql state that select col_1 from "
- "table_1 where it is equals to 1"),
- sampling_params=sampling_params,
- use_tqdm=True,
- guided_options_request=dict(guided_grammar=sample_sql_statements))
- assert outputs is not None
- for output in outputs:
- assert output is not None
- assert isinstance(output, RequestOutput)
- prompt = output.prompt
- generated_text = output.outputs[0].text
- assert generated_text is not None
- # use Lark to parse the output, and make sure it's a valid parse tree
- from lark import Lark
- parser = Lark(sample_sql_statements)
- parser.parse(generated_text)
- # remove spaces for comparison b/c we removed them in the grammar
- ground_truth = "SELECT col_1 from table_1 where col_1 = 1".replace(
- " ", "")
- assert generated_text.strip() == ground_truth
- print(f"Prompt: {prompt!r}, Generated text: {generated_text!r}")
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