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create app.py
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app.py
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import os
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#os.system("pip install git+https://github.com/openai/whisper.git")
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#os.system("pip install neon-tts-plugin-coqui==0.6.0")
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import gradio as gr
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import whisper
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import requests
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import tempfile
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#from neon_tts_plugin_coqui import CoquiTTS
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from datasets import load_dataset
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import random
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dataset = load_dataset("ysharma/short_jokes", split="train")
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filtered_dataset = dataset.filter(
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lambda x: (True not in [nsfw in x["Joke"].lower() for nsfw in ["warning", "fuck", "dead", "nsfw","69", "sex"]])
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)
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# Model 2: Sentence Transformer
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API_URL = "https://api-inference.huggingface.co/models/sentence-transformers/msmarco-distilbert-base-tas-b"
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HF_TOKEN = os.environ["HF_TOKEN"]
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headers = {"Authorization": f"Bearer {HF_TOKEN}"}
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def query(payload):
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response = requests.post(API_URL, headers=headers, json=payload)
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return response.json()
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# Language common in both the multilingual models - English, Chinese, Spanish, and French etc
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# Model 1: Whisper: Speech-to-text
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#model = whisper.load_model("base")
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#Model 2: Text-to-Speech
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#LANGUAGES = list(CoquiTTS.langs.keys())
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#coquiTTS = CoquiTTS()
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#Languages for Coqui are: ['en', 'es', 'fr', 'de', 'pl', 'uk', 'ro', 'hu', 'el', 'bg', 'nl', 'fi', 'sl', 'lv', 'ga']
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# Driver function
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def driver_fun(text) :
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print("*********** Inside Driver ************")
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#if (text == 'dummy') and (audio is not None) :
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# print(f"Audio is {audio}")
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# translation, lang = whisper_stt(audio)
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#else:
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# translation = text
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random_val = random.randrange(0,231657)
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if random_val < 226657:
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lower_limit = random_val
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upper_limit = random_val + 4000
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else:
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lower_limit = random_val - 4000
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upper_limit = random_val
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print(f"lower_limit : upper_limit = {lower_limit} : {upper_limit}")
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dataset_subset = filtered_dataset['Joke'][lower_limit : upper_limit]
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data = query({"inputs": {"source_sentence": text ,"sentences": dataset_subset} } ) #"That is a happy person"
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if 'error' in data:
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print(f"Error is : {data}")
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return 'Error in model inference - Run Again Please', 'Error in model inference - Run Again Please', None
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print(f"type(data) : {type(data)}")
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#print(f"data : {data} ")
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max_match_score = max(data)
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indx_score = data.index(max_match_score)
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joke = dataset_subset[indx_score]
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print(f"Joke is : {joke}")
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#speech = tts(joke, 'en')
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return joke
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demo = gr.Blocks()
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with demo:
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gr.Markdown("<h1><center>Text-to-Joke</center></h1>")
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gr.Markdown(
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"""<center>Enter a theme or a context for AI to find a joke for you on that.</center><br><center>If you see the message 'Error in model inference - Run Again Please', just press the button again every time!</center>
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""")
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with gr.Row():
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with gr.Column():
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#in_audio = gr.Audio(source="microphone", type="filepath", label='Record your voice command here in English -') #type='filepath'
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in_text = gr.Textbox(label= 'Enter a theme or context for a joke')
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b1 = gr.Button("Get a Joke")
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with gr.Column():
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#in_text = gr.Textbox(label='Or enter any text here..', value='dummy')
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#out_audio = gr.Audio(label='Audio response form CoquiTTS')
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out_generated_joke = gr.Textbox(label= 'Joke returned! ')
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b1.click(driver_fun,inputs=[in_text], outputs=[out_generated_joke]) #out_translation_en, out_generated_text,out_generated_text_en,
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with gr.Row():
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gr.Markdown(
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"""Built using [Sentence Transformers](https://huggingface.co/models?library=sentence-transformers&sort=downloads) and [**Gradio Block API**](https://gradio.app/docs/#blocks).<br><br>Few Caveats:<br>1. Please note that sometimes the joke might be NSFW. Although, I have tried putting in filters to not have that experience, but the filters seem non-exhaustive.<br>2. Sometimes the joke might not match your theme, please bear with the limited capabilities of free open-source ML prototypes.<br>3. Much like real life, sometimes the joke might just not land, haha!<br>4. Repeating this: If you see the message 'Error in model inference - Run Again Please', just press the button again every time!
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""")
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demo.launch(enable_queue=True, debug=True)
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