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language:
  - af
  - am
  - ar
  - de
  - en
  - es
  - ha
  - hi
  - ig
  - mr
  - om
  - pcm
  - pt
  - ro
  - ru
  - rw
  - so
  - su
  - sv
  - sw
  - ti
  - tt
  - uk
  - vmw
  - yo
  - zh
license: cc-by-4.0
configs:
  - config_name: afr
    data_files:
      - split: train
        path: afr/train-*
      - split: dev
        path: afr/dev-*
      - split: test
        path: afr/test-*
  - config_name: amh
    data_files:
      - split: train
        path: amh/train-*
      - split: dev
        path: amh/dev-*
      - split: test
        path: amh/test-*
  - config_name: arq
    data_files:
      - split: train
        path: arq/train-*
      - split: dev
        path: arq/dev-*
      - split: test
        path: arq/test-*
  - config_name: ary
    data_files:
      - split: train
        path: ary/train-*
      - split: dev
        path: ary/dev-*
      - split: test
        path: ary/test-*
  - config_name: chn
    data_files:
      - split: train
        path: chn/train-*
      - split: dev
        path: chn/dev-*
      - split: test
        path: chn/test-*
  - config_name: deu
    data_files:
      - split: train
        path: deu/train-*
      - split: dev
        path: deu/dev-*
      - split: test
        path: deu/test-*
  - config_name: eng
    data_files:
      - split: train
        path: eng/train-*
      - split: dev
        path: eng/dev-*
      - split: test
        path: eng/test-*
  - config_name: esp
    data_files:
      - split: train
        path: esp/train-*
      - split: dev
        path: esp/dev-*
      - split: test
        path: esp/test-*
  - config_name: hau
    data_files:
      - split: train
        path: hau/train-*
      - split: dev
        path: hau/dev-*
      - split: test
        path: hau/test-*
  - config_name: hin
    data_files:
      - split: train
        path: hin/train-*
      - split: dev
        path: hin/dev-*
      - split: test
        path: hin/test-*
  - config_name: ibo
    data_files:
      - split: train
        path: ibo/train-*
      - split: dev
        path: ibo/dev-*
      - split: test
        path: ibo/test-*
  - config_name: kin
    data_files:
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        path: kin/train-*
      - split: dev
        path: kin/dev-*
      - split: test
        path: kin/test-*
dataset_info:
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      - name: anger
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      - name: disgust
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      - name: fear
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      - name: joy
        dtype: int64
      - name: sadness
        dtype: int64
      - name: surprise
        dtype: int64
      - name: emotions
        sequence: string
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    download_size: 181733
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  - config_name: amh
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      - name: disgust
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      - name: fear
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      - name: joy
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      - name: sadness
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      - name: surprise
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      - name: emotions
        sequence: string
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      - name: disgust
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      - name: joy
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      - name: sadness
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      - name: surprise
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      - name: emotions
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      - name: disgust
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      - name: emotions
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      - name: disgust
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      - name: emotions
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      - name: sadness
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      - name: disgust
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      - name: disgust
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      - name: fear
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      - name: joy
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      - name: sadness
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      - name: surprise
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      - name: disgust
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      - name: fear
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      - name: joy
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      - name: sadness
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      - name: surprise
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      - name: emotions
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SemEval 2025 Task 11 - Track A Dataset

This dataset contains the data for SemEval 2025 Task 11: Bridging the Gap in Text-Based Emotion Detection - Track A, organized as language-specific configurations.

Dataset Description

The dataset is a multi-language, multi-label emotion classification dataset with separate configurations for each language.

  • Total languages: 26 standard ISO codes
  • Total examples: 115159
  • Splits: train, dev, test

Language Configurations

Each language is available as a separate configuration with the following statistics:

ISO Code Original Code(s) Train Examples Dev Examples Test Examples Total
af afr 1222 98 1065 2385
am amh 3549 592 1774 5915
ar arq, ary 2509 367 1714 4590
de deu 2603 200 2604 5407
en eng 2768 116 2767 5651
es esp 1996 184 1695 3875
ha hau 2145 356 1080 3581
hi hin 2556 100 1010 3666
ig ibo 2880 479 1444 4803
mr mar 2415 100 1000 3515
om orm 3442 574 1721 5737
pcm pcm 3728 620 1870 6218
pt ptbr, ptmz 3772 457 3002 7231
ro ron 1241 123 1119 2483
ru rus 2679 199 1000 3878
rw kin 2451 407 1231 4089
so som 3392 566 1696 5654
su sun 924 199 926 2049
sv swe 1187 200 1188 2575
sw swa 3307 551 1656 5514
ti tir 3681 614 1840 6135
tt tat 1000 200 1000 2200
uk ukr 2466 249 2234 4949
vmw vmw 1551 258 777 2586
yo yor 2992 497 1500 4989
zh chn 2642 200 2642 5484

Features

  • id: Unique identifier for each example
  • text: Text content to classify
  • anger, disgust, fear, joy, sadness, surprise: Presence of emotion
  • emotions: List of emotions present in the text

Usage

from datasets import load_dataset

# Load all data for a specific language
eng_dataset = load_dataset("YOUR_USERNAME/semeval-2025-task11-track-a", "eng")

# Or load a specific split for a language
eng_train = load_dataset("YOUR_USERNAME/semeval-2025-task11-track-a", "eng", split="train")

Citation

If you use this dataset, please cite the following papers:

@misc{{muhammad2025brighterbridginggaphumanannotated,
      title={{BRIGHTER: BRIdging the Gap in Human-Annotated Textual Emotion Recognition Datasets for 28 Languages}}, 
      author={{Shamsuddeen Hassan Muhammad and Nedjma Ousidhoum and Idris Abdulmumin and Jan Philip Wahle and Terry Ruas and Meriem Beloucif and Christine de Kock and Nirmal Surange and Daniela Teodorescu and Ibrahim Said Ahmad and David Ifeoluwa Adelani and Alham Fikri Aji and Felermino D. M. A. Ali and Ilseyar Alimova and Vladimir Araujo and Nikolay Babakov and Naomi Baes and Ana-Maria Bucur and Andiswa Bukula and Guanqun Cao and Rodrigo Tufiño and Rendi Chevi and Chiamaka Ijeoma Chukwuneke and Alexandra Ciobotaru and Daryna Dementieva and Murja Sani Gadanya and Robert Geislinger and Bela Gipp and Oumaima Hourrane and Oana Ignat and Falalu Ibrahim Lawan and Rooweither Mabuya and Rahmad Mahendra and Vukosi Marivate and Andrew Piper and Alexander Panchenko and Charles Henrique Porto Ferreira and Vitaly Protasov and Samuel Rutunda and Manish Shrivastava and Aura Cristina Udrea and Lilian Diana Awuor Wanzare and Sophie Wu and Florian Valentin Wunderlich and Hanif Muhammad Zhafran and Tianhui Zhang and Yi Zhou and Saif M. Mohammad}},
      year={{2025}},
      eprint={{2502.11926}},
      archivePrefix={{arXiv}},
      primaryClass={{cs.CL}},
      url={{https://arxiv.org/abs/2502.11926}}, 
}}
@misc{{muhammad2025semeval2025task11bridging,
      title={{SemEval-2025 Task 11: Bridging the Gap in Text-Based Emotion Detection}}, 
      author={{Shamsuddeen Hassan Muhammad and Nedjma Ousidhoum and Idris Abdulmumin and Seid Muhie Yimam and Jan Philip Wahle and Terry Ruas and Meriem Beloucif and Christine De Kock and Tadesse Destaw Belay and Ibrahim Said Ahmad and Nirmal Surange and Daniela Teodorescu and David Ifeoluwa Adelani and Alham Fikri Aji and Felermino Ali and Vladimir Araujo and Abinew Ali Ayele and Oana Ignat and Alexander Panchenko and Yi Zhou and Saif M. Mohammad}},
      year={{2025}},
      eprint={{2503.07269}},
      archivePrefix={{arXiv}},
      primaryClass={{cs.CL}},
      url={{https://arxiv.org/abs/2503.07269}}, 
}}

License

This dataset is licensed under CC-BY 4.0.