SaT / app.py
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import gradio as gr
from wtpsplit import SaT
import json
# Initialize the SaT model
sat = SaT("sat-12l-sm")
sat.half().to("cuda")
def segment_text(input_text, multi_doc_input):
results = {}
if input_text:
# Process single text input
sentences = sat.split(input_text)
results["input_text"] = {"segments": sentences}
if multi_doc_input:
# Process multiple documents
documents = [doc.strip() for doc in multi_doc_input.split('\n') if doc.strip()]
for i, doc in enumerate(documents, 1):
sentences = sat.split(doc)
results[f"row_{i}"] = {"segments": sentences}
# Create a JSON object with the results
json_output = json.dumps(results, indent=2)
return json_output
# Create the Gradio interface
iface = gr.Interface(
fn=segment_text,
inputs=[
gr.Textbox(lines=5, label="Input Text (Optional)"),
gr.Textbox(lines=10, label="Multiple Documents (Optional, one per line)")
],
outputs=gr.JSON(label="Segmented Text (JSON)"),
title="Text Segmentation with SaT",
description="This app uses the SaT (Segment any Text) model to split input text into sentences and return the result as JSON. You can input text directly or provide multiple documents (one per line). All credits to the respective author(s). Github: https://github.com/segment-any-text/wtpsplit/tree/main",
examples=[
["This is a test This is another test.", ""],
["Hello this is a test But this is different now Now the next one starts looool", ""],
["The quick brown fox jumps over the lazy dog It was the best of times, it was the worst of times", ""],
["", "Document 1 first sentence Document 1 second sentence\nDocument 2 only sentence\nDocument 3 first Document 3 second"]
]
)
# Launch the app
iface.launch()