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Duplicate from ellyothim/First_shot_gradio_covid_sentiment_analysis
Browse filesCo-authored-by: Othim <ellyothim@users.noreply.huggingface.co>
- .gitattributes +35 -0
- README.md +14 -0
- app.py +57 -0
- requirements.txt +6 -0
.gitattributes
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README.md
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---
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title: First Shot Gradio Covid Sentiment Analysis
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emoji: 🔥
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colorFrom: yellow
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colorTo: purple
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sdk: gradio
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sdk_version: 3.38.0
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app_file: app.py
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pinned: false
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license: mit
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duplicated_from: ellyothim/First_shot_gradio_covid_sentiment_analysis
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---
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Check out the configuration reference at https://huggingface.co/docs/hub/spaces-config-reference
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app.py
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import gradio as gr
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from transformers import AutoModelForSequenceClassification
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from transformers import TFAutoModelForSequenceClassification
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from transformers import AutoTokenizer, AutoConfig
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import numpy as np
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from scipy.special import softmax
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# setting up the requiremnts
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model_path = f"mrm8488/distilroberta-finetuned-financial-news-sentiment-analysis"
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tokenizer = AutoTokenizer.from_pretrained('mrm8488/distilroberta-finetuned-financial-news-sentiment-analysis')
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config = AutoConfig.from_pretrained(model_path)
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model = AutoModelForSequenceClassification.from_pretrained(model_path)
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# Preprocess text (username and link placeholders)
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def preprocess(text):
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new_text = []
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for t in text.split(" "):
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t = '@user' if t.startswith('@') and len(t) > 1 else t
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t = 'http' if t.startswith('http') else t
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new_text.append(t)
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return " ".join(new_text)
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# Defining the main function
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def sentiment_analysis(text):
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text = preprocess(text)
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# PyTorch-based models
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encoded_input = tokenizer(text, return_tensors='pt')
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output = model(**encoded_input)
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scores_ = output[0][0].detach().numpy()
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scores_ = softmax(scores_)
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# Format output dict of scores
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labels = ['Negative😢😢', 'Neutral', 'Positive😃😃']
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scores = {l:float(s) for (l,s) in zip(labels, scores_) }
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return scores
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welcome_message = "Welcome to Team Paris tweets first shot Sentimental Analysis App 😃 😃 😃 😃 "
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demo = gr.Interface(
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fn=sentiment_analysis,
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inputs=gr.Textbox(placeholder="Write your tweet here..."),
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outputs="label",
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interpretation="default",
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examples=[["This is wonderful!"]],
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title=welcome_message,
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description=("This is a sentimental analysis app built by fine tuning a model trained on financial news sentiment, we leverage what the model has learnt, /n, and fine tune it on twitter comments . The eval_loss of our model is 0.785")
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)
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demo.launch()
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# def greet(name):
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# return "Hello " + name + "!!"
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# iface = gr.Interface(fn=greet, inputs="text", outputs="text")
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# iface.launch(inline = False)
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requirements.txt
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transformers
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torch
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numpy
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gradio
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scipy>=1.6.0
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