Leo97 / KoELECTRA-small-v3-modu-ner

huggingface.co
Total runs: 9.0K
24-hour runs: 157
7-day runs: -13.8K
30-day runs: -18.9K
Model's Last Updated: April 07 2023
token-classification

Introduction of KoELECTRA-small-v3-modu-ner

Model Details of KoELECTRA-small-v3-modu-ner

KoELECTRA-small-v3-modu-ner

This model is a fine-tuned version of monologg/koelectra-small-v3-discriminator on an unknown dataset. It achieves the following results on the evaluation set:

  • Loss: 0.1431
  • Precision: 0.8232
  • Recall: 0.8449
  • F1: 0.8339
  • Accuracy: 0.9628
Model description

태깅 시스템 : BIO 시스템

  • B-(begin) : 개체명이 시작할 때
  • I-(inside) : 토큰이 개체명 중간에 있을 때
  • O(outside) : 토큰이 개체명이 아닐 경우

한국정보통신기술협회(TTA) 대분류 기준을 따르는 15 가지의 태그셋

분류 표기 정의
ARTIFACTS AF 사람에 의해 창조된 인공물로 문화재, 건물, 악기, 도로, 무기, 운송수단, 작품명, 공산품명이 모두 이에 해당
ANIMAL AM 사람을 제외한 짐승
CIVILIZATION CV 문명/문화
DATE DT 기간 및 계절, 시기/시대
EVENT EV 특정 사건/사고/행사 명칭
STUDY_FIELD FD 학문 분야, 학파 및 유파
LOCATION LC 지역/장소와 지형/지리 명칭 등을 모두 포함
MATERIAL MT 원소 및 금속, 암석/보석, 화학물질
ORGANIZATION OG 기관 및 단체 명칭
PERSON PS 인명 및 인물의 별칭 (유사 인물 명칭 포함)
PLANT PT 꽃/나무, 육지식물, 해초류, 버섯류, 이끼류
QUANTITY QT 수량/분량, 순서/순차, 수사로 이루어진 표현
TIME TI 시계상으로 나타나는 시/시각, 시간 범위
TERM TM 타 개체명에서 정의된 세부 개체명 이외의 개체명
THEORY TR 특정 이론, 법칙 원리 등
Intended uses & limitations
How to use

You can use this model with Transformers pipeline for NER.

from transformers import AutoTokenizer, AutoModelForTokenClassification
from transformers import pipeline

tokenizer = AutoTokenizer.from_pretrained("Leo97/KoELECTRA-small-v3-modu-ner")
model = AutoModelForTokenClassification.from_pretrained("Leo97/KoELECTRA-small-v3-modu-ner")
ner = pipeline("ner", model=model, tokenizer=tokenizer)

example = "서울역으로 안내해줘."
ner_results = ner(example)
print(ner_results)
Training and evaluation data

개체명 인식(NER) 모델 학습 데이터 셋

Training procedure
Training hyperparameters

The following hyperparameters were used during training:

  • learning_rate: 5e-05
  • train_batch_size: 64
  • eval_batch_size: 64
  • seed: 42
  • optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
  • lr_scheduler_type: linear
  • lr_scheduler_warmup_steps: 15151
  • num_epochs: 20
  • mixed_precision_training: Native AMP
Training results
Training Loss Epoch Step Validation Loss Precision Recall F1 Accuracy
No log 1.0 3788 0.3978 0.5986 0.5471 0.5717 0.9087
No log 2.0 7576 0.2319 0.6986 0.6953 0.6969 0.9345
No log 3.0 11364 0.1838 0.7363 0.7612 0.7486 0.9444
No log 4.0 15152 0.1610 0.7762 0.7745 0.7754 0.9509
No log 5.0 18940 0.1475 0.7862 0.8011 0.7936 0.9545
No log 6.0 22728 0.1417 0.7857 0.8181 0.8016 0.9563
No log 7.0 26516 0.1366 0.8022 0.8196 0.8108 0.9584
No log 8.0 30304 0.1346 0.8093 0.8236 0.8164 0.9596
No log 9.0 34092 0.1328 0.8085 0.8299 0.8190 0.9602
No log 10.0 37880 0.1332 0.8110 0.8368 0.8237 0.9608
No log 11.0 41668 0.1323 0.8157 0.8347 0.8251 0.9612
No log 12.0 45456 0.1353 0.8118 0.8402 0.8258 0.9611
No log 13.0 49244 0.1370 0.8152 0.8416 0.8282 0.9616
No log 14.0 53032 0.1368 0.8164 0.8415 0.8287 0.9616
No log 15.0 56820 0.1378 0.8187 0.8438 0.8310 0.9621
No log 16.0 60608 0.1389 0.8217 0.8438 0.8326 0.9626
No log 17.0 64396 0.1380 0.8266 0.8426 0.8345 0.9631
No log 18.0 68184 0.1428 0.8216 0.8445 0.8329 0.9625
No log 19.0 71972 0.1431 0.8232 0.8455 0.8342 0.9628
0.1712 20.0 75760 0.1431 0.8232 0.8449 0.8339 0.9628
Framework versions
  • Transformers 4.27.4
  • Pytorch 2.0.0+cu118
  • Datasets 2.11.0
  • Tokenizers 0.13.3

Runs of Leo97 KoELECTRA-small-v3-modu-ner on huggingface.co

9.0K
Total runs
157
24-hour runs
-10.8K
3-day runs
-13.8K
7-day runs
-18.9K
30-day runs

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