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metadata
language:
  - en
thumbnail: >-
  https://avatars3.githubusercontent.com/u/32437151?s=460&u=4ec59abc8d21d5feea3dab323d23a5860e6996a4&v=4
tags:
  - text-classification
  - go-emotion
  - pytorch
license: apache-2.0
datasets:
  - go_emotions
metrics:
  - Accuracy

Distilbert-Base-Uncased-Go-Emotion

Model description:

Distilbert is created with knowledge distillation during the pre-training phase which reduces the size of a BERT model by 40% while retaining 97% of its language understanding. It's smaller, faster than Bert and any other Bert-based model.

Distilbert-base-uncased finetuned on the emotion dataset using HuggingFace Trainer with below Hyperparameters

Training Parameters:

Num examples = 169208
Num Epochs = 3
Instantaneous batch size per device = 16
Total train batch size (w. parallel, distributed & accumulation) = 16
Gradient Accumulation steps = 1
Total optimization steps = 31728

TrainOutput:

'train_loss': 0.12085497042373672, 

Evalution Output:

 'eval_accuracy_thresh': 0.9614765048027039,
 'eval_loss': 0.1164659634232521