Model Trained Using AutoTrain
- Problem type: Entity Extraction
- Model ID: 1474454086
- CO2 Emissions (in grams): 2.1803
Validation Metrics
- Loss: 0.177
- Accuracy: 0.957
- Precision: 0.839
- Recall: 0.888
- F1: 0.863
Usage
You can use cURL to access this model:
$ curl -X POST -H "Authorization: Bearer YOUR_API_KEY" -H "Content-Type: application/json" -d '{"inputs": "I love AutoTrain"}' https://api-inference.huggingface.co/models/hemangjoshi37a/autotrain-ratnakar_1000_sample_curated-1474454086
Or Python API:
from transformers import AutoModelForTokenClassification, AutoTokenizer
model = AutoModelForTokenClassification.from_pretrained("hemangjoshi37a/autotrain-ratnakar_1000_sample_curated-1474454086", use_auth_token=True)
tokenizer = AutoTokenizer.from_pretrained("hemangjoshi37a/autotrain-ratnakar_1000_sample_curated-1474454086", use_auth_token=True)
inputs = tokenizer("I love AutoTrain", return_tensors="pt")
outputs = model(**inputs)
GitHub Link to this project : Telegram Trade Msg Backtest ML
Need custom model for your application? : Place a order on hjLabs.in : Custom Token Classification or Named Entity Recognition (NER) model as in Natural Language Processing (NLP) Machine Learning
What this repository contains? :
-
Label data using LabelStudio NER(Named Entity Recognition or Token Classification) tool.
convert to
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Convert LabelStudio CSV or JSON to HuggingFace-autoTrain dataset conversion script
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Train NER model on Hugginface-autoTrain.
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Use Hugginface-autoTrain model to predict labels on new data in LabelStudio using LabelStudio-ML-Backend.
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Define python function to predict labels using Hugginface-autoTrain model.
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Only label new data from newly predicted-labels-dataset that has falsified labels.
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Backtest Truely labelled dataset against real historical data of the stock using zerodha kiteconnect and jugaad_trader.
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Evaluate total gained percentage since inception summation-wise and compounded and plot.
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Listen to telegram channel for new LIVE messages using telegram API for algotrading.
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Serve the app as flask web API for web request and respond to it as labelled tokens.
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Outperforming or underperforming results of the telegram channel tips against exchange index by percentage.
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- Custom Token Classification or Named Entity Recognition (NER) model as in Natural Language Processing (NLP) Machine Learning
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