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import gradio as gr
from transformers import pipeline

trans = pipeline("automatic-speech-recognition", model = "facebook/wav2vec2-large-xlsr-53-spanish")
clasificador = pipeline("text-classification", model = "pysentimiento/robertuito-sentiment-analysis")

def audio_to_text(audio):
  text = trans(audio)["text"]
  return text

def text_to_feel(text):
  return clasificador(text)[0]["label"]

demo = gr.Blocks()
with demo:
  gr.Markdown("Demo de blocks")
  with gr.Tabs():
    with gr.TabItem("trans"):
      with gr.Row():
        audio = gr.Audio(source="microphone", type="filepath")
        transcription = gr.Textbox()
      b1 = gr.Button("Transcribe pf")
    with gr.TabItem("sent"):
      with gr.Row():
        texto = gr.Textbox()
        label = gr.Label()
      b2 = gr.Button("Sent porfa")

    b1.click(audio_to_text, inputs=audio, outputs=transcription)
    b2.click(text_to_feel, inputs=texto, outputs=label)

demo.launch()