SetFit with klue/roberta-base

This is a SetFit model that can be used for Text Classification. This SetFit model uses klue/roberta-base as the Sentence Transformer embedding model. A LogisticRegression instance is used for classification.

The model has been trained using an efficient few-shot learning technique that involves:

  1. Fine-tuning a Sentence Transformer with contrastive learning.
  2. Training a classification head with features from the fine-tuned Sentence Transformer.

Model Details

Model Description

  • Model Type: SetFit
  • Sentence Transformer body: klue/roberta-base
  • Classification head: a LogisticRegression instance
  • Maximum Sequence Length: 512 tokens
  • Number of Classes: 17 classes

Model Sources

Model Labels

Label Examples
0.0
  • '축사 난방 판넬 송아지 애완견 개집 전기 열선 가열 -미디엄 가구/인테리어>DIY자재/용품>바닥재>필름난방'
  • '냉장고 시트지 리폼 필름지 싱크대 에어컨 더블 도어 스티커 가구/인테리어>DIY자재/용품>시트지>단색시트지'
  • '이코리브 사각형 전선 정리 몰딩 쫄대 1M 1P 학원 가구/인테리어>DIY자재/용품>몰딩'
14.0
  • '홈메이드 보드라운 비정형 러그 거실 카페트 매트 캐시미어 82번 LINE 가구/인테리어>카페트/러그>러그'
  • '테라스꾸미기 캠핑용매트 발판매트 월컴 가구/인테리어>카페트/러그>발매트'
  • '러그 발매트 화장실 현관 침실 주방 주방매트 대형 미끄럼방지 캠핑 PVC 가구/인테리어>카페트/러그>발매트'
9.0
  • '소화기 안내 아크릴 디자인 표지판 문패 가구/인테리어>인테리어소품>디자인문패'
  • '우체통 유럽 철재 전원주택 스탠드 우체통 인테리어 -1 2m 레터 박스 A 가구/인테리어>인테리어소품>우체통'
  • '빈티지 우체통 빨간 벽걸이 엔틱 카페 우편함 가구/인테리어>인테리어소품>우체통'
13.0
  • '베스트슬립 M2 올가닉 메달리스트 매트리스 K 가구/인테리어>침실가구>매트리스>킹매트리스'
  • '화장대 의자 골드가구 등받이 인테리어 화장대 의자 가구/인테리어>침실가구>화장대>화장대의자'
  • '플레인홈 포렐 모던 거실 협탁 580 가구/인테리어>침실가구>협탁'
6.0
  • '패딩 리본 키링 2컬러 가방꾸미기 가꾸 뜨개가방 부자재 가구/인테리어>수예>뜨개질>패키지'
  • '어린이집 신체활동 공룡도안 전신 안전거울 아기안전거울 아기 가구/인테리어>수예>퀼트/펠트>도안'
  • '5색재봉실 레인보우 컬러 바느질 퀼트 자수 원사 재봉 십자수 공예 가구/인테리어>수예>자수>실/바늘'
5.0
  • '다용도실 베란다 창고 정리 선반 세탁실 선반장 사무실 철제 키큰 가구/인테리어>수납가구>선반'
  • '도서 잡지 사무실 분류 보관함 회전 신문 홍보물 전단지 스탠딩 가구/인테리어>수납가구>잡지꽂이'
  • '프랑코홈 프랑코 리빙박스 62L 2개 SET 대용량 플라스틱 수납 정리함 FRANCO 가구/인테리어>수납가구>공간박스'
11.0
  • '비비엔다 포르페 냉감 아이싱 맥스 아기 쿨패드 유아특대형 슈퍼싱글 퀸 킹 가구/인테리어>침구단품>패드>싱글/슈퍼싱글패드'
  • '매트리스커버높은 방수 토퍼 매트리스 커버 싱글 퀸 가구/인테리어>침구단품>매트/침대커버>싱글/슈퍼싱글침대커버'
  • '모던하우스 리아 소프트워싱 차렵이불 Q 가구/인테리어>침구단품>차렵이불'
1.0
  • '데코라인 본테 높은 600 피규어 진열장 DHP006 가구/인테리어>거실가구>장식장'
  • '현대의료기 모짜르트 4인 SF 카우치 컴포트 황토숯볼 흙소파 가구/인테리어>거실가구>소파>흙/돌소파'
  • '오브민 접이식 폴딩 이동식 노트북 책상800 소파 사이드테이블 가구/인테리어>거실가구>테이블>사이드테이블'
4.0
  • '쿠션 던지기 리넨 베개 커버 귀여운 눈송이 케이스 새해 장식 가구/인테리어>솜류>쿠션솜'
  • '바디필로우 대 롱쿠션 캔디솜 더크린 가구/인테리어>솜류>쿠션솜'
  • '힐튼 퀼팅베개 계절베개 숙면베개 필로우 29859062 가구/인테리어>솜류>베개솜/속통>거위털/오리털베개솜'
16.0
  • '안고자는인형 대형 고양이 롱 바디필로우 수면 쿠션 모찌 찰떡 가구/인테리어>홈데코>쿠션/방석>대쿠션/대방석'
  • '냉감 애견패드 강아지 고양이 쿨매트 듀라론 2P 눕자 40X60 가구/인테리어>홈데코>쿠션/방석>대쿠션/대방석'
  • '3개 홀더 스마트폰 bob 거치대 썬바이저 차량용 자동차 가구/인테리어>홈데코>쿠션/방석>팔꿈치/손목쿠션'
3.0
  • '프린터거치대 프린터선반 다이 수납장 테이블 선반 -블랙 3단프레임 가구/인테리어>서재/사무용가구>책상>책상소품'
  • '카파맥스 플러스 3단 책꽂이 연두 가구/인테리어>서재/사무용가구>책꽂이'
  • '포밍 테이블 1800 사무용 회의실 책상 다용도 작업대 가구/인테리어>서재/사무용가구>사무/교구용가구>회의테이블'
8.0
  • '수영장 썬베드 야외 의자 비치 해변 호텔 펜션 테라스 리조트 침대 가구/인테리어>아웃도어가구>야외의자'
  • '평벤치 학교 의자 공원 운동장 야외 휴게소 병원 벤 -1 8m U자형 가구/인테리어>아웃도어가구>야외벤치'
  • '야외조립창고 컨테이너 농막수납장 공구보관함 잡화 유형 A 가구/인테리어>아웃도어가구>기타아웃도어가구'
7.0
  • '귀여운 로봇 낮은수납장 깊은 정리 이동식 3단 틈새 가구/인테리어>아동/주니어가구>수납장'
  • '엘레아 메리다 800 5단 서랍장 가구/인테리어>아동/주니어가구>서랍장'
  • '장바구니 일룸 에디키즈 장난감 정리대 가구/인테리어>아동/주니어가구>수납장'
15.0
  • '창안애 브러쉬 25mm 알루미늄 블라인드 30 x 30 가구/인테리어>커튼/블라인드>블라인드'
  • '광목로만쉐이드 작은 동물 커튼 욕실 3D 디지털 침실 구름로만쉐이드 가구/인테리어>커튼/블라인드>로만셰이드'
  • '에그박스 2단 슬라이딩 가구/인테리어>커튼/블라인드>로만셰이드'
12.0
  • '마이하우스 알러지케어 스타패치 핑크 키즈 차렵이불 풀세트 S/SS 가구/인테리어>침구세트>매트커버세트>슈퍼싱글매트커버세트'
  • '올리비아데코 베리메리 60수 아사 요차렵세트 Q 가구/인테리어>침구세트>요이불세트>2/3인용'
  • '레노마홈 스마일워싱 차렵이불 베개세트 Q 사계절 가구/인테리어>침구세트>이불베개세트>슈퍼싱글이불베개세트'
2.0
  • '슬립앤슬립 마스터유닛2 5분할 베개 소프트 LE1215376644 가구/인테리어>베개>메모리폼베개'
  • '일자목베개 쿨젤 목편한 숙면 기능성 쿨링 메모리폼 여름 베개 1개 가구/인테리어>베개>메모리폼베개'
  • '스패로우 스프링 필로우 메모리폼 베개 가구/인테리어>베개>메모리폼베개'
10.0
  • '라자가구 위드 고메 1600 주방수납장 세트 홈카페형 nk008 가구/인테리어>주방가구>주방수납장'
  • '레트로하우스 코케 고무나무 원목 접이식 확장형 식탁 테이블 1600 가구/인테리어>주방가구>식탁/의자>식탁테이블'
  • 'UNKNOWN 호환 리빙코리아 리빙웰 프리미엄 오븐 석쇠 OV250 가구/인테리어>주방가구>기타주방가구'

Evaluation

Metrics

Label Accuracy
all 1.0

Uses

Direct Use for Inference

First install the SetFit library:

pip install setfit

Then you can load this model and run inference.

from setfit import SetFitModel

# Download from the 🤗 Hub
model = SetFitModel.from_pretrained("mini1013/master_item_fi")
# Run inference
preds = model("클레마티스 오로라화병 가구/인테리어>인테리어소품>화병")

Training Details

Training Set Metrics

Training set Min Median Max
Word count 2 8.9412 24
Label Training Sample Count
0.0 980
1.0 280
2.0 133
3.0 350
4.0 349
5.0 840
6.0 490
7.0 893
8.0 420
9.0 1516
10.0 420
11.0 890
12.0 270
13.0 629
14.0 402
15.0 700
16.0 210

Training Hyperparameters

  • batch_size: (256, 256)
  • num_epochs: (30, 30)
  • max_steps: -1
  • sampling_strategy: oversampling
  • num_iterations: 50
  • body_learning_rate: (2e-05, 1e-05)
  • head_learning_rate: 0.01
  • loss: CosineSimilarityLoss
  • distance_metric: cosine_distance
  • margin: 0.25
  • end_to_end: False
  • use_amp: False
  • warmup_proportion: 0.1
  • l2_weight: 0.01
  • seed: 42
  • eval_max_steps: -1
  • load_best_model_at_end: False

Training Results

Epoch Step Training Loss Validation Loss
0.0005 1 0.4481 -
0.0262 50 0.4495 -
0.0524 100 0.426 -
0.0786 150 0.3955 -
0.1048 200 0.3284 -
0.1310 250 0.2654 -
0.1572 300 0.209 -
0.1833 350 0.1354 -
0.2095 400 0.0875 -
0.2357 450 0.0572 -
0.2619 500 0.0427 -
0.2881 550 0.0289 -
0.3143 600 0.0222 -
0.3405 650 0.0143 -
0.3667 700 0.0101 -
0.3929 750 0.0092 -
0.4191 800 0.0068 -
0.4453 850 0.0066 -
0.4715 900 0.0046 -
0.4976 950 0.0049 -
0.5238 1000 0.0046 -
0.5500 1050 0.0039 -
0.5762 1100 0.0038 -
0.6024 1150 0.0034 -
0.6286 1200 0.0029 -
0.6548 1250 0.0017 -
0.6810 1300 0.0011 -
0.7072 1350 0.0009 -
0.7334 1400 0.0006 -
0.7596 1450 0.0005 -
0.7858 1500 0.0004 -
0.8119 1550 0.0004 -
0.8381 1600 0.0003 -
0.8643 1650 0.0003 -
0.8905 1700 0.0003 -
0.9167 1750 0.0002 -
0.9429 1800 0.0002 -
0.9691 1850 0.0002 -
0.9953 1900 0.0002 -
1.0215 1950 0.0002 -
1.0477 2000 0.0002 -
1.0739 2050 0.0002 -
1.1001 2100 0.0001 -
1.1262 2150 0.0001 -
1.1524 2200 0.0001 -
1.1786 2250 0.0001 -
1.2048 2300 0.0001 -
1.2310 2350 0.0001 -
1.2572 2400 0.0001 -
1.2834 2450 0.0001 -
1.3096 2500 0.0001 -
1.3358 2550 0.0001 -
1.3620 2600 0.0001 -
1.3882 2650 0.0001 -
1.4144 2700 0.0001 -
1.4405 2750 0.0001 -
1.4667 2800 0.0001 -
1.4929 2850 0.0001 -
1.5191 2900 0.0001 -
1.5453 2950 0.0001 -
1.5715 3000 0.0001 -
1.5977 3050 0.0001 -
1.6239 3100 0.0001 -
1.6501 3150 0.0001 -
1.6763 3200 0.0 -
1.7025 3250 0.0001 -
1.7287 3300 0.0 -
1.7548 3350 0.0 -
1.7810 3400 0.0 -
1.8072 3450 0.0 -
1.8334 3500 0.0 -
1.8596 3550 0.0 -
1.8858 3600 0.0 -
1.9120 3650 0.0 -
1.9382 3700 0.0 -
1.9644 3750 0.0 -
1.9906 3800 0.0 -
2.0168 3850 0.0 -
2.0430 3900 0.0 -
2.0691 3950 0.0 -
2.0953 4000 0.0 -
2.1215 4050 0.0 -
2.1477 4100 0.0 -
2.1739 4150 0.0 -
2.2001 4200 0.0 -
2.2263 4250 0.0 -
2.2525 4300 0.0 -
2.2787 4350 0.0 -
2.3049 4400 0.0 -
2.3311 4450 0.0 -
2.3573 4500 0.0 -
2.3834 4550 0.0 -
2.4096 4600 0.0 -
2.4358 4650 0.0 -
2.4620 4700 0.0 -
2.4882 4750 0.0 -
2.5144 4800 0.0 -
2.5406 4850 0.0 -
2.5668 4900 0.0 -
2.5930 4950 0.0 -
2.6192 5000 0.0 -
2.6454 5050 0.0 -
2.6716 5100 0.0 -
2.6977 5150 0.0 -
2.7239 5200 0.0 -
2.7501 5250 0.0 -
2.7763 5300 0.0 -
2.8025 5350 0.0 -
2.8287 5400 0.0 -
2.8549 5450 0.0 -
2.8811 5500 0.0 -
2.9073 5550 0.0 -
2.9335 5600 0.0 -
2.9597 5650 0.0 -
2.9859 5700 0.0 -
3.0120 5750 0.0 -
3.0382 5800 0.0 -
3.0644 5850 0.0 -
3.0906 5900 0.0 -
3.1168 5950 0.0 -
3.1430 6000 0.0 -
3.1692 6050 0.0 -
3.1954 6100 0.0 -
3.2216 6150 0.0 -
3.2478 6200 0.0 -
3.2740 6250 0.0 -
3.3002 6300 0.0 -
3.3263 6350 0.0 -
3.3525 6400 0.0 -
3.3787 6450 0.0 -
3.4049 6500 0.0 -
3.4311 6550 0.0 -
3.4573 6600 0.0 -
3.4835 6650 0.0 -
3.5097 6700 0.0 -
3.5359 6750 0.0 -
3.5621 6800 0.0 -
3.5883 6850 0.0 -
3.6145 6900 0.0 -
3.6406 6950 0.0 -
3.6668 7000 0.0 -
3.6930 7050 0.0 -
3.7192 7100 0.0 -
3.7454 7150 0.0 -
3.7716 7200 0.0 -
3.7978 7250 0.0 -
3.8240 7300 0.0 -
3.8502 7350 0.0 -
3.8764 7400 0.0 -
3.9026 7450 0.0 -
3.9288 7500 0.0 -
3.9550 7550 0.0 -
3.9811 7600 0.0 -
4.0073 7650 0.0 -
4.0335 7700 0.0 -
4.0597 7750 0.0 -
4.0859 7800 0.0 -
4.1121 7850 0.0 -
4.1383 7900 0.0 -
4.1645 7950 0.0 -
4.1907 8000 0.0 -
4.2169 8050 0.0 -
4.2431 8100 0.0 -
4.2693 8150 0.0 -
4.2954 8200 0.0 -
4.3216 8250 0.0 -
4.3478 8300 0.0 -
4.3740 8350 0.0 -
4.4002 8400 0.0 -
4.4264 8450 0.0 -
4.4526 8500 0.0 -
4.4788 8550 0.0 -
4.5050 8600 0.0 -
4.5312 8650 0.0 -
4.5574 8700 0.0 -
4.5836 8750 0.0006 -
4.6097 8800 0.0006 -
4.6359 8850 0.0002 -
4.6621 8900 0.0001 -
4.6883 8950 0.0 -
4.7145 9000 0.0 -
4.7407 9050 0.0 -
4.7669 9100 0.0001 -
4.7931 9150 0.0 -
4.8193 9200 0.0 -
4.8455 9250 0.0 -
4.8717 9300 0.0 -
4.8979 9350 0.0 -
4.9240 9400 0.0 -
4.9502 9450 0.0 -
4.9764 9500 0.0 -
5.0026 9550 0.0 -
5.0288 9600 0.0 -
5.0550 9650 0.0 -
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Framework Versions

  • Python: 3.10.12
  • SetFit: 1.1.0
  • Sentence Transformers: 3.3.1
  • Transformers: 4.44.2
  • PyTorch: 2.2.0a0+81ea7a4
  • Datasets: 3.2.0
  • Tokenizers: 0.19.1

Citation

BibTeX

@article{https://doi.org/10.48550/arxiv.2209.11055,
    doi = {10.48550/ARXIV.2209.11055},
    url = {https://arxiv.org/abs/2209.11055},
    author = {Tunstall, Lewis and Reimers, Nils and Jo, Unso Eun Seo and Bates, Luke and Korat, Daniel and Wasserblat, Moshe and Pereg, Oren},
    keywords = {Computation and Language (cs.CL), FOS: Computer and information sciences, FOS: Computer and information sciences},
    title = {Efficient Few-Shot Learning Without Prompts},
    publisher = {arXiv},
    year = {2022},
    copyright = {Creative Commons Attribution 4.0 International}
}
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