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242 lines
8.0 KiB
Python
242 lines
8.0 KiB
Python
# # Copyright 2026 Google LLC
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# #
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# # Licensed under the Apache License, Version 2.0 (the "License");
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# # you may not use this file except in compliance with the License.
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# # You may obtain a copy of the License at
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# #
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# # http://www.apache.org/licenses/LICENSE-2.0
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# #
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# # Unless required by applicable law or agreed to in writing, software
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# # distributed under the License is distributed on an "AS IS" BASIS,
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# # WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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# # See the License for the specific language governing permissions and
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# # limitations under the License.
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# import asyncio
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# import time
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# from google.adk.agents import Agent
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# from google.adk.agents import LiveRequestQueue
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# from google.adk.agents.invocation_context import RealtimeCacheEntry
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# from google.adk.agents.run_config import RunConfig
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# from google.adk.events.event import Event
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# from google.adk.models import LlmResponse
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# from google.genai import types
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# import pytest
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# from .. import testing_utils
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# def test_audio_caching_direct():
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# """Test audio caching logic directly without full live streaming."""
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# # This test directly verifies that our audio caching logic works
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# audio_data = b'\x00\xFF\x01\x02\x03\x04\x05\x06'
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# audio_mime_type = 'audio/pcm'
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# # Create mock responses for successful completion
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# responses = [
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# LlmResponse(
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# content=types.Content(
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# role='model',
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# parts=[types.Part.from_text(text='Processing audio...')],
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# ),
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# turn_complete=False,
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# ),
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# LlmResponse(turn_complete=True), # This should trigger flush
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# ]
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# mock_model = testing_utils.MockModel.create(responses)
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# mock_model.model = 'gemini-2.5-flash' # For CFC support
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# root_agent = Agent(
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# name='test_agent',
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# model=mock_model,
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# tools=[],
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# )
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# # Test our implementation by directly calling it
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# async def test_caching():
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# # Create context similar to what would be created in real scenario
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# invocation_context = await testing_utils.create_invocation_context(
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# root_agent, run_config=RunConfig(support_cfc=True)
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# )
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# # Import our caching classes
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# from google.adk.agents.invocation_context import RealtimeCacheEntry
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# from google.adk.agents.llm.base_llm_flow import BaseLlmFlow
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# # Create a mock flow to test our methods
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# flow = BaseLlmFlow()
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# # Test adding audio to cache
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# invocation_context.input_realtime_cache = []
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# audio_entry = RealtimeCacheEntry(
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# role='user',
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# data=types.Blob(data=audio_data, mime_type=audio_mime_type),
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# timestamp=1234567890.0,
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# )
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# invocation_context.input_realtime_cache.append(audio_entry)
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# # Verify cache has data
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# assert len(invocation_context.input_realtime_cache) == 1
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# assert invocation_context.input_realtime_cache[0].data.data == audio_data
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# # Test flushing cache
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# await flow._handle_control_event_flush(invocation_context, responses[-1])
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# # Verify cache was cleared
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# assert len(invocation_context.input_realtime_cache) == 0
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# # Check if artifacts were created
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# artifact_keys = (
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# await invocation_context.artifact_service.list_artifact_keys(
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# app_name=invocation_context.app_name,
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# user_id=invocation_context.user_id,
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# session_id=invocation_context.session.id,
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# )
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# )
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# # Should have at least one audio artifact
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# audio_artifacts = [key for key in artifact_keys if 'audio' in key.lower()]
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# assert (
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# len(audio_artifacts) > 0
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# ), f'Expected audio artifacts, found: {artifact_keys}'
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# # Verify artifact content
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# if audio_artifacts:
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# artifact = await invocation_context.artifact_service.load_artifact(
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# app_name=invocation_context.app_name,
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# user_id=invocation_context.user_id,
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# session_id=invocation_context.session.id,
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# filename=audio_artifacts[0],
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# )
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# assert artifact.inline_data.data == audio_data
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# return True
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# # Run the async test
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# result = asyncio.run(test_caching())
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# assert result is True
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# def test_transcription_handling():
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# """Test that transcriptions are properly handled and saved to session service."""
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# # Create mock responses with transcriptions
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# input_transcription = types.Transcription(
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# text='Hello, this is transcribed input', finished=True
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# )
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# output_transcription = types.Transcription(
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# text='This is transcribed output', finished=True
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# )
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# responses = [
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# LlmResponse(
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# content=types.Content(
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# role='model', parts=[types.Part.from_text(text='Processing...')]
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# ),
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# turn_complete=False,
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# ),
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# LlmResponse(input_transcription=input_transcription, turn_complete=False),
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# LlmResponse(
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# output_transcription=output_transcription, turn_complete=False
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# ),
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# LlmResponse(turn_complete=True),
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# ]
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# mock_model = testing_utils.MockModel.create(responses)
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# mock_model.model = 'gemini-2.5-flash'
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# root_agent = Agent(
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# name='test_agent',
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# model=mock_model,
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# tools=[],
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# )
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# async def test_transcription():
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# # Create context
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# invocation_context = await testing_utils.create_invocation_context(
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# root_agent, run_config=RunConfig(support_cfc=True)
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# )
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# from google.adk.events.event import Event
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# from google.adk.agents.llm.base_llm_flow import BaseLlmFlow
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# flow = BaseLlmFlow()
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# # Test processing transcription events
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# session_events_before = len(invocation_context.session.events)
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# # Simulate input transcription event
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# input_event = Event(
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# id=Event.new_id(),
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# invocation_id=invocation_context.invocation_id,
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# author='user',
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# input_transcription=input_transcription,
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# )
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# # Simulate output transcription event
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# output_event = Event(
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# id=Event.new_id(),
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# invocation_id=invocation_context.invocation_id,
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# author=invocation_context.agent.name,
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# output_transcription=output_transcription,
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# )
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# # Save transcription events to session
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# await invocation_context.session_service.append_event(
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# invocation_context.session, input_event
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# )
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# await invocation_context.session_service.append_event(
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# invocation_context.session, output_event
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# )
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# # Verify transcriptions were saved to session
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# session_events_after = len(invocation_context.session.events)
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# assert session_events_after == session_events_before + 2
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# # Check that transcription events were saved
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# transcription_events = [
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# event
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# for event in invocation_context.session.events
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# if hasattr(event, 'input_transcription')
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# and event.input_transcription
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# or hasattr(event, 'output_transcription')
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# and event.output_transcription
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# ]
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# assert len(transcription_events) >= 2
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# # Verify input transcription
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# input_transcription_events = [
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# event
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# for event in invocation_context.session.events
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# if hasattr(event, 'input_transcription') and event.input_transcription
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# ]
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# assert len(input_transcription_events) >= 1
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# assert (
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# input_transcription_events[0].input_transcription.text
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# == 'Hello, this is transcribed input'
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# )
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# assert input_transcription_events[0].author == 'user'
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# # Verify output transcription
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# output_transcription_events = [
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# event
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# for event in invocation_context.session.events
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# if hasattr(event, 'output_transcription') and event.output_transcription
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# ]
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# assert len(output_transcription_events) >= 1
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# assert (
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# output_transcription_events[0].output_transcription.text
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# == 'This is transcribed output'
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# )
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# assert (
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# output_transcription_events[0].author == invocation_context.agent.name
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# )
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# return True
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# # Run the async test
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# result = asyncio.run(test_transcription())
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# assert result is True
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