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58 lines
1.5 KiB
Python
58 lines
1.5 KiB
Python
"""
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Basic example of scraping pipeline using SpeechSummaryGraph
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"""
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import os
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from dotenv import load_dotenv
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from scrapegraphai.graphs import SpeechGraph
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from scrapegraphai.utils import prettify_exec_info
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load_dotenv()
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# ************************************************
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# Define audio output path
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# ************************************************
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FILE_NAME = "website_summary.mp3"
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curr_dir = os.path.dirname(os.path.realpath(__file__))
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output_path = os.path.join(curr_dir, FILE_NAME)
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# ************************************************
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# Define the configuration for the graph
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# ************************************************
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openai_key = os.getenv("OPENAI_APIKEY")
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graph_config = {
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"llm": {
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"api_key": openai_key,
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"model": "gpt-3.5-turbo",
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"temperature": 0.7,
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},
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"tts_model": {
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"api_key": openai_key,
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"model": "tts-1",
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"voice": "alloy"
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},
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"output_path": output_path,
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}
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# ************************************************
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# Create the SpeechGraph instance and run it
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# ************************************************
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speech_graph = SpeechGraph(
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prompt="Make a detailed audio summary of the projects.",
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source="https://perinim.github.io/projects/",
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config=graph_config,
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)
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result = speech_graph.run()
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print(result)
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# ************************************************
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# Get graph execution info
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# ************************************************
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graph_exec_info = speech_graph.get_execution_info()
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print(prettify_exec_info(graph_exec_info))
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