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library_name: transformers | |
language: | |
- yue | |
license: cc-by-4.0 | |
tags: | |
- generated_from_trainer | |
pipeline_tag: fill-mask | |
widget: | |
- text: 香港原本[MASK]一個人煙稀少嘅漁港。 | |
example_title: 係 | |
model-index: | |
- name: bert-large-cantonese | |
results: [] | |
# bert-large-cantonese | |
## Description | |
This model is tranied from scratch on Cantonese text. It is a BERT model with a large architecture (24-layer, 1024-hidden, 16-heads, 326M parameters). | |
The first training stage is to pre-train the model on 128 length sequences with a batch size of 512 for 1 epoch. the second stage is to continued pre-train the model on 512 length sequences with a batch size of 512 for one more epoch. | |
## How to use | |
You can use this model directly with a pipeline for masked language modeling: | |
```python | |
from transformers import pipeline | |
mask_filler = pipeline( | |
"fill-mask", | |
model="hon9kon9ize/bert-large-cantonese" | |
) | |
mask_filler("雞蛋六隻,糖呢就兩茶匙,仲有[MASK]橙皮添。") | |
; [{'score': 0.08160534501075745, | |
; 'token': 943, | |
; 'token_str': '個', | |
; 'sequence': '雞 蛋 六 隻 , 糖 呢 就 兩 茶 匙 , 仲 有 個 橙 皮 添 。'}, | |
; {'score': 0.06182105466723442, | |
; 'token': 1576, | |
; 'token_str': '啲', | |
; 'sequence': '雞 蛋 六 隻 , 糖 呢 就 兩 茶 匙 , 仲 有 啲 橙 皮 添 。'}, | |
; {'score': 0.04600336775183678, | |
; 'token': 1646, | |
; 'token_str': '嘅', | |
; 'sequence': '雞 蛋 六 隻 , 糖 呢 就 兩 茶 匙 , 仲 有 嘅 橙 皮 添 。'}, | |
; {'score': 0.03743772581219673, | |
; 'token': 3581, | |
; 'token_str': '橙', | |
; 'sequence': '雞 蛋 六 隻 , 糖 呢 就 兩 茶 匙 , 仲 有 橙 橙 皮 添 。'}, | |
; {'score': 0.031560592353343964, | |
; 'token': 5148, | |
; 'token_str': '紅', | |
; 'sequence': '雞 蛋 六 隻 , 糖 呢 就 兩 茶 匙 , 仲 有 紅 橙 皮 添 。'}] | |
``` | |
## Training hyperparameters | |
The following hyperparameters were used during first training: | |
- Batch size: 512 | |
- Learning rate: 1e-4 | |
- Learning rate scheduler: linear decay | |
- 1 Epoch | |
- Warmup ratio: 0.1 | |
Loss plot on [WanDB](https://api.wandb.ai/links/indiejoseph/v3ljlpmp) | |
The following hyperparameters were used during second training: | |
- Batch size: 512 | |
- Learning rate: 5e-5 | |
- Learning rate scheduler: linear decay | |
- 1 Epoch | |
- Warmup ratio: 0.1 | |
Loss plot on [WanDB](https://api.wandb.ai/links/indiejoseph/vcm3q1ef) | |