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Azure Ai Transcription Py

by @thegovind

Azure AI Transcription SDK for Python. Use for real-time and batch speech-to-text transcription with timestamps and diarization. Triggers: "transcription", "speech to text", "Azure AI Transcription", "TranscriptionClient".

Versionv0.1.0
Downloads2,531
Stars⭐ 1
TERMINAL
clawhub install azure-ai-transcription-py

πŸ“– About This Skill


name: azure-ai-transcription-py description: | Azure AI Transcription SDK for Python. Use for real-time and batch speech-to-text transcription with timestamps and diarization. Triggers: "transcription", "speech to text", "Azure AI Transcription", "TranscriptionClient". package: azure-ai-transcription

Azure AI Transcription SDK for Python

Client library for Azure AI Transcription (speech-to-text) with real-time and batch transcription.

Installation

pip install azure-ai-transcription

Environment Variables

TRANSCRIPTION_ENDPOINT=https://.cognitiveservices.azure.com
TRANSCRIPTION_KEY=

Authentication

Use subscription key authentication (DefaultAzureCredential is not supported for this client):

import os
from azure.ai.transcription import TranscriptionClient

client = TranscriptionClient( endpoint=os.environ["TRANSCRIPTION_ENDPOINT"], credential=os.environ["TRANSCRIPTION_KEY"] )

Transcription (Batch)

job = client.begin_transcription(
    name="meeting-transcription",
    locale="en-US",
    content_urls=["https:///audio.wav"],
    diarization_enabled=True
)
result = job.result()
print(result.status)

Transcription (Real-time)

stream = client.begin_stream_transcription(locale="en-US")
stream.send_audio_file("audio.wav")
for event in stream:
    print(event.text)

Best Practices

1. Enable diarization when multiple speakers are present 2. Use batch transcription for long files stored in blob storage 3. Capture timestamps for subtitle generation 4. Specify language to improve recognition accuracy 5. Handle streaming backpressure for real-time transcription 6. Close transcription sessions when complete

πŸ“‹ Tips & Best Practices

1. Enable diarization when multiple speakers are present 2. Use batch transcription for long files stored in blob storage 3. Capture timestamps for subtitle generation 4. Specify language to improve recognition accuracy 5. Handle streaming backpressure for real-time transcription 6. Close transcription sessions when complete