forked from phoenix/litellm-mirror
* add audio, modalities param * add test for gpt audio models * add get_supported_openai_params for GPT audio models * add supported params for audio * test_audio_output_from_model * bump openai to openai==1.52.0 * bump openai on pyproject * fix audio test * fix test mock_chat_response * handle audio for Message * fix handling audio for OAI compatible API endpoints * fix linting * fix mock dbrx test * add audio to Delta * handle model_response.choices.delta.audio * fix linting
119 lines
3.9 KiB
Python
119 lines
3.9 KiB
Python
import json
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import os
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import sys
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from datetime import datetime
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from unittest.mock import AsyncMock
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sys.path.insert(
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0, os.path.abspath("../..")
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) # Adds the parent directory to the system path
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import httpx
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import pytest
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from respx import MockRouter
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import litellm
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from litellm import Choices, Message, ModelResponse
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from litellm.types.utils import StreamingChoices, ChatCompletionAudioResponse
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import base64
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import requests
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def check_non_streaming_response(completion):
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assert completion.choices[0].message.audio is not None, "Audio response is missing"
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assert isinstance(
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completion.choices[0].message.audio, ChatCompletionAudioResponse
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), "Invalid audio response type"
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assert len(completion.choices[0].message.audio.data) > 0, "Audio data is empty"
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async def check_streaming_response(completion):
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_audio_bytes = None
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_audio_transcript = None
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_audio_id = None
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async for chunk in completion:
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print(chunk)
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_choice: StreamingChoices = chunk.choices[0]
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if _choice.delta.audio is not None:
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if _choice.delta.audio.get("data") is not None:
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_audio_bytes = _choice.delta.audio["data"]
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if _choice.delta.audio.get("transcript") is not None:
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_audio_transcript = _choice.delta.audio["transcript"]
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if _choice.delta.audio.get("id") is not None:
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_audio_id = _choice.delta.audio["id"]
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# Atleast one chunk should have set _audio_bytes, _audio_transcript, _audio_id
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assert _audio_bytes is not None
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assert _audio_transcript is not None
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assert _audio_id is not None
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@pytest.mark.asyncio
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# @pytest.mark.flaky(retries=3, delay=1)
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@pytest.mark.parametrize("stream", [True, False])
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async def test_audio_output_from_model(stream):
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audio_format = "pcm16"
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if stream is False:
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audio_format = "wav"
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litellm.set_verbose = False
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completion = await litellm.acompletion(
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model="gpt-4o-audio-preview",
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modalities=["text", "audio"],
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audio={"voice": "alloy", "format": "pcm16"},
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messages=[{"role": "user", "content": "response in 1 word - yes or no"}],
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stream=stream,
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)
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if stream is True:
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await check_streaming_response(completion)
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else:
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print("response= ", completion)
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check_non_streaming_response(completion)
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wav_bytes = base64.b64decode(completion.choices[0].message.audio.data)
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with open("dog.wav", "wb") as f:
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f.write(wav_bytes)
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@pytest.mark.asyncio
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@pytest.mark.parametrize("stream", [True, False])
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async def test_audio_input_to_model(stream):
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# Fetch the audio file and convert it to a base64 encoded string
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audio_format = "pcm16"
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if stream is False:
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audio_format = "wav"
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litellm.set_verbose = True
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url = "https://openaiassets.blob.core.windows.net/$web/API/docs/audio/alloy.wav"
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response = requests.get(url)
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response.raise_for_status()
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wav_data = response.content
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encoded_string = base64.b64encode(wav_data).decode("utf-8")
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completion = await litellm.acompletion(
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model="gpt-4o-audio-preview",
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modalities=["text", "audio"],
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audio={"voice": "alloy", "format": audio_format},
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stream=stream,
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messages=[
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{
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"role": "user",
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"content": [
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{"type": "text", "text": "What is in this recording?"},
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{
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"type": "input_audio",
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"input_audio": {"data": encoded_string, "format": "wav"},
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},
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],
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},
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],
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)
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if stream is True:
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await check_streaming_response(completion)
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else:
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print("response= ", completion)
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check_non_streaming_response(completion)
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wav_bytes = base64.b64decode(completion.choices[0].message.audio.data)
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with open("dog.wav", "wb") as f:
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f.write(wav_bytes)
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