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+ ## German NER Albert Model
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+
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+ This is a trained Albert model for Token Classification in German ,[Germeval](https://sites.google.com/site/germeval2014ner/) and can be used for Inference.
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+
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+
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+ ## Model Specifications
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+
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+ - MAX_LENGTH=128
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+ - MODEL='albert-base-v1'
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+ - BATCH_SIZE=32
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+ - NUM_EPOCHS=3
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+ - SAVE_STEPS=750
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+ - SEED=1
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+ - SAVE_STEPS = 100
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+ - LOGGING_STEPS = 100
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+ - SEED = 42
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+
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+
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+
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+ ### Usage Specifications
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+
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+ This model is trained on Tensorflow version and is compatible with the 'ner' pipeline of huggingface.
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+
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+ ```python
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+ from transformers import AutoTokenizer,TFAutoModelForTokenClassification
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+ from transformers import pipeline
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+
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+ model=TFAutoModelForTokenClassification.from_pretrained('abhilash1910/albert-german-ner')
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+ tokenizer=AutoTokenizer.from_pretrained('abhilash1910/albert-german-ner')
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+ ner_model = pipeline('ner', model=model, tokenizer=tokenizer)
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+ seq='Berlin ist die Hauptstadt von Deutschland'
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+ ner_model(seq)
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+ ```
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+
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+ The Tensorflow version of Albert is used for training the model and the output for the above mentioned segment is as follows:
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+
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+ ```
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+ [{'entity': 'B-PERderiv',
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+ 'index': 1,
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+ 'score': 0.09580112248659134,
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+ 'word': '▁berlin'},
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+ {'entity': 'B-ORGpart',
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+ 'index': 2,
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+ 'score': 0.08364498615264893,
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+ 'word': '▁is'},
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+ {'entity': 'B-LOCderiv',
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+ 'index': 3,
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+ 'score': 0.07593920826911926,
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+ 'word': 't'},
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+ {'entity': 'B-PERderiv',
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+ 'index': 4,
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+ 'score': 0.09574996680021286,
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+ 'word': '▁die'},
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+ {'entity': 'B-LOCderiv',
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+ 'index': 5,
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+ 'score': 0.07097965478897095,
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+ 'word': '▁'},
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+ {'entity': 'B-PERderiv',
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+ 'index': 6,
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+ 'score': 0.07122448086738586,
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+ 'word': 'haupt'},
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+ {'entity': 'B-PERderiv',
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+ 'index': 7,
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+ 'score': 0.12397754937410355,
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+ 'word': 'stadt'},
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+ {'entity': 'I-OTHderiv',
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+ 'index': 8,
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+ 'score': 0.0818650871515274,
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+ 'word': '▁von'},
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+ {'entity': 'I-LOCderiv',
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+ 'index': 9,
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+ 'score': 0.08271490037441254,
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+ 'word': '▁'},
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+ {'entity': 'B-LOCderiv',
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+ 'index': 10,
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+ 'score': 0.08616268634796143,
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+ 'word': 'deutschland'}]
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+ ```
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+
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+ ## Resources
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+
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+ For all resources , please look into [huggingface](https://huggingface.com).