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metadata
library_name: sentence-transformers
pipeline_tag: sentence-similarity
tags:
  - sentence-transformers
  - feature-extraction
  - sentence-similarity
  - transformers
  - sentence-embedding
  - mteb
model-index:
  - name: bilingual-embedding-large-8k
    results:
      - task:
          type: Clustering
        dataset:
          type: lyon-nlp/alloprof
          name: MTEB AlloProfClusteringP2P
          config: default
          split: test
          revision: 392ba3f5bcc8c51f578786c1fc3dae648662cb9b
        metrics:
          - type: v_measure
            value: 55.52298673909706
          - type: v_measures
            value:
              - 0.5198748380785404
              - 0.5562521099012603
              - 0.5322986254464575
              - 0.5722250987615152
              - 0.532932258758668
      - task:
          type: Clustering
        dataset:
          type: lyon-nlp/alloprof
          name: MTEB AlloProfClusteringS2S
          config: default
          split: test
          revision: 392ba3f5bcc8c51f578786c1fc3dae648662cb9b
        metrics:
          - type: v_measure
            value: 35.802733348353094
          - type: v_measures
            value:
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              - 0.36376421464272285
              - 0.37524966704915225
              - 0.3749296797757371
              - 0.36673700158106576
      - task:
          type: Reranking
        dataset:
          type: lyon-nlp/mteb-fr-reranking-alloprof-s2p
          name: MTEB AlloprofReranking
          config: default
          split: test
          revision: 65393d0d7a08a10b4e348135e824f385d420b0fd
        metrics:
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          - type: mrr
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          - type: nAUC_mrr_diff1
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          - type: nAUC_mrr_max
            value: 27.328424865584367
      - task:
          type: Retrieval
        dataset:
          type: lyon-nlp/alloprof
          name: MTEB AlloprofRetrieval
          config: default
          split: test
          revision: fcf295ea64c750f41fadbaa37b9b861558e1bfbd
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            value: 28.282
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            value: 38.805
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            value: 35.838
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            value: 37.537
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            value: 10.561
          - type: recall_at_1
            value: 28.282
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          - type: recall_at_1000
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          - type: recall_at_20
            value: 71.15700000000001
          - type: recall_at_3
            value: 45.379999999999995
          - type: recall_at_5
            value: 52.807
      - task:
          type: Classification
        dataset:
          type: mteb/amazon_reviews_multi
          name: MTEB AmazonReviewsClassification (fr)
          config: fr
          split: test
          revision: 1399c76144fd37290681b995c656ef9b2e06e26d
        metrics:
          - type: accuracy
            value: 44.10999999999999
          - type: f1
            value: 42.00584553745547
          - type: f1_weighted
            value: 42.005845537455485
      - task:
          type: Retrieval
        dataset:
          type: maastrichtlawtech/bsard
          name: MTEB BSARDRetrieval
          config: default
          split: test
          revision: 5effa1b9b5fa3b0f9e12523e6e43e5f86a6e6d59
        metrics:
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            value: 4.955
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          - type: map_at_100
            value: 9.998999999999999
          - type: map_at_1000
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          - type: map_at_20
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          - type: map_at_3
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            value: 7.95
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      - task:
          type: Clustering
        dataset:
          type: lyon-nlp/clustering-hal-s2s
          name: MTEB HALClusteringS2S
          config: default
          split: test
          revision: e06ebbbb123f8144bef1a5d18796f3dec9ae2915
        metrics:
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          - type: v_measures
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              - 0.22595460950575297
              - 0.20177741591393913
      - task:
          type: Clustering
        dataset:
          type: reciTAL/mlsum
          name: MTEB MLSUMClusteringP2P
          config: default
          split: test
          revision: b5d54f8f3b61ae17845046286940f03c6bc79bc7
        metrics:
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              - 0.3832149080991847
              - 0.37602613534689566
      - task:
          type: Clustering
        dataset:
          type: reciTAL/mlsum
          name: MTEB MLSUMClusteringS2S
          config: default
          split: test
          revision: b5d54f8f3b61ae17845046286940f03c6bc79bc7
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      - task:
          type: Classification
        dataset:
          type: mteb/mtop_domain
          name: MTEB MTOPDomainClassification (fr)
          config: fr
          split: test
          revision: d80d48c1eb48d3562165c59d59d0034df9fff0bf
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            value: 87.82023175696837
          - type: f1
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          - type: f1_weighted
            value: 87.75645870762435
      - task:
          type: Classification
        dataset:
          type: mteb/mtop_intent
          name: MTEB MTOPIntentClassification (fr)
          config: fr
          split: test
          revision: ae001d0e6b1228650b7bd1c2c65fb50ad11a8aba
        metrics:
          - type: accuracy
            value: 58.628249295333546
          - type: f1
            value: 42.22070573172825
          - type: f1_weighted
            value: 60.62087995743649
      - task:
          type: Classification
        dataset:
          type: mteb/masakhanews
          name: MTEB MasakhaNEWSClassification (fra)
          config: fra
          split: test
          revision: 18193f187b92da67168c655c9973a165ed9593dd
        metrics:
          - type: accuracy
            value: 69.81042654028435
          - type: f1
            value: 66.05811881796396
          - type: f1_weighted
            value: 70.34901566149948
      - task:
          type: Clustering
        dataset:
          type: masakhane/masakhanews
          name: MTEB MasakhaNEWSClusteringP2P (fra)
          config: fra
          split: test
          revision: 8ccc72e69e65f40c70e117d8b3c08306bb788b60
        metrics:
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            value: 45.02712178986078
          - type: v_measures
            value:
              - 1
              - 0.23955793240111928
              - 0.7158920010774062
              - 0.036391635653837
              - 0.25951452036067674
      - task:
          type: Clustering
        dataset:
          type: masakhane/masakhanews
          name: MTEB MasakhaNEWSClusteringS2S (fra)
          config: fra
          split: test
          revision: 8ccc72e69e65f40c70e117d8b3c08306bb788b60
        metrics:
          - type: v_measure
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          - type: v_measures
            value:
              - 1
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              - 0.19876372667844472
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              - 0.12934886702079137
      - task:
          type: Classification
        dataset:
          type: mteb/amazon_massive_intent
          name: MTEB MassiveIntentClassification (fr)
          config: fr
          split: test
          revision: 4672e20407010da34463acc759c162ca9734bca6
        metrics:
          - type: accuracy
            value: 66.13651647612645
          - type: f1
            value: 64.42898347709598
          - type: f1_weighted
            value: 65.01442547020224
      - task:
          type: Classification
        dataset:
          type: mteb/amazon_massive_scenario
          name: MTEB MassiveScenarioClassification (fr)
          config: fr
          split: test
          revision: fad2c6e8459f9e1c45d9315f4953d921437d70f8
        metrics:
          - type: accuracy
            value: 72.73705447209144
          - type: f1
            value: 72.09285609231057
          - type: f1_weighted
            value: 72.34295244611339
      - task:
          type: Retrieval
        dataset:
          type: jinaai/mintakaqa
          name: MTEB MintakaRetrieval (fr)
          config: fr
          split: test
          revision: efa78cc2f74bbcd21eff2261f9e13aebe40b814e
        metrics:
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            value: 13.677
          - type: map_at_10
            value: 21.044
          - type: map_at_100
            value: 22.012
          - type: map_at_1000
            value: 22.125
          - type: map_at_20
            value: 21.573999999999998
          - type: map_at_3
            value: 18.857
          - type: map_at_5
            value: 19.936999999999998
          - type: mrr_at_1
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          - type: mrr_at_100
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          - type: mrr_at_1000
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          - type: mrr_at_20
            value: 21.574199922074904
          - type: mrr_at_3
            value: 18.857493857493825
          - type: mrr_at_5
            value: 19.93652743652738
          - type: nauc_map_at_1000_diff1
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          - type: ndcg_at_5
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          - type: precision_at_1
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          - type: precision_at_10
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          - type: precision_at_100
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          - type: precision_at_1000
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          - type: precision_at_20
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          - type: precision_at_3
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          - type: precision_at_5
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          - type: recall_at_1
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          - type: recall_at_10
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          - type: recall_at_100
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          - type: recall_at_1000
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          - type: recall_at_3
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          - type: recall_at_5
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      - task:
          type: PairClassification
        dataset:
          type: GEM/opusparcus
          name: MTEB OpusparcusPC (fr)
          config: fr
          split: test
          revision: 9e9b1f8ef51616073f47f306f7f47dd91663f86a
        metrics:
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          - type: cos_sim_ap
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          - type: cos_sim_f1
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          - type: cos_sim_precision
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          - type: cos_sim_recall
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          - type: dot_accuracy
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          - type: dot_ap
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          - type: dot_f1
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          - type: dot_precision
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          - type: dot_recall
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          - type: euclidean_accuracy
            value: 82.9700272479564
          - type: euclidean_ap
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          - type: euclidean_f1
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          - type: euclidean_precision
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          - type: euclidean_recall
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          - type: manhattan_accuracy
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          - type: manhattan_ap
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          - type: manhattan_f1
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          - type: manhattan_precision
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          - type: manhattan_recall
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          - type: max_accuracy
            value: 82.9700272479564
          - type: max_ap
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          - type: max_f1
            value: 87.97316722568279
      - task:
          type: PairClassification
        dataset:
          type: google-research-datasets/paws-x
          name: MTEB PawsX (fr)
          config: fr
          split: test
          revision: 8a04d940a42cd40658986fdd8e3da561533a3646
        metrics:
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            value: 64.14999999999999
          - type: cos_sim_ap
            value: 63.43794001840604
          - type: cos_sim_f1
            value: 62.59187620889749
          - type: cos_sim_precision
            value: 48.097502972651604
          - type: cos_sim_recall
            value: 89.59025470653378
          - type: dot_accuracy
            value: 64.14999999999999
          - type: dot_ap
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          - type: dot_f1
            value: 62.59187620889749
          - type: dot_precision
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          - type: dot_recall
            value: 89.59025470653378
          - type: euclidean_accuracy
            value: 64.14999999999999
          - type: euclidean_ap
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          - type: euclidean_f1
            value: 62.59187620889749
          - type: euclidean_precision
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          - type: euclidean_recall
            value: 89.59025470653378
          - type: manhattan_accuracy
            value: 64.2
          - type: manhattan_ap
            value: 63.46163243480347
          - type: manhattan_f1
            value: 62.540021344717175
          - type: manhattan_precision
            value: 46.069182389937104
          - type: manhattan_recall
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          - type: max_accuracy
            value: 64.2
          - type: max_ap
            value: 63.52400235031554
          - type: max_f1
            value: 62.59187620889749
      - task:
          type: STS
        dataset:
          type: Lajavaness/SICK-fr
          name: MTEB SICKFr
          config: default
          split: test
          revision: e077ab4cf4774a1e36d86d593b150422fafd8e8a
        metrics:
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            value: 85.12347242597652
          - type: cos_sim_spearman
            value: 79.80580538857501
          - type: euclidean_pearson
            value: 82.03127787921382
          - type: euclidean_spearman
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          - type: manhattan_pearson
            value: 82.02795155003601
          - type: manhattan_spearman
            value: 79.7808784011127
      - task:
          type: STS
        dataset:
          type: mteb/sts22-crosslingual-sts
          name: MTEB STS22 (fr)
          config: fr
          split: test
          revision: de9d86b3b84231dc21f76c7b7af1f28e2f57f6e3
        metrics:
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            value: 82.34462624659417
          - type: cos_sim_spearman
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          - type: euclidean_pearson
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          - type: euclidean_spearman
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          - type: manhattan_pearson
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          - type: manhattan_spearman
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      - task:
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        dataset:
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          name: MTEB STSBenchmarkMultilingualSTS (fr)
          config: fr
          split: test
          revision: 29afa2569dcedaaa2fe6a3dcfebab33d28b82e8c
        metrics:
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            value: 86.0897698618904
          - type: cos_sim_spearman
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          - type: euclidean_pearson
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          - type: euclidean_spearman
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          - type: manhattan_pearson
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          - type: manhattan_spearman
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      - task:
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        dataset:
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          name: MTEB SummEvalFr
          config: default
          split: test
          revision: b385812de6a9577b6f4d0f88c6a6e35395a94054
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          - type: dot_pearson
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          - type: dot_spearman
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      - task:
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        dataset:
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          name: MTEB SyntecReranking
          config: default
          split: test
          revision: daf0863838cd9e3ba50544cdce3ac2b338a1b0ad
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          - type: nAUC_mrr_diff1
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      - task:
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        dataset:
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          name: MTEB SyntecRetrieval
          config: default
          split: test
          revision: 19661ccdca4dfc2d15122d776b61685f48c68ca9
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          - type: map_at_1000
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            value: 0.1
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            value: 100
          - type: recall_at_1000
            value: 100
          - type: recall_at_20
            value: 97
          - type: recall_at_3
            value: 92
          - type: recall_at_5
            value: 93
      - task:
          type: Retrieval
        dataset:
          type: jinaai/xpqa
          name: MTEB XPQARetrieval (fr)
          config: fr
          split: test
          revision: c99d599f0a6ab9b85b065da6f9d94f9cf731679f
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            value: 62.409000000000006
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            value: 63.63999999999999
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            value: 55.364999999999995
          - type: map_at_5
            value: 59.95399999999999
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            value: 70.414944794117
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            value: 70.69824986774621
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            value: 68.04628393413438
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            value: 69.65509568313303
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            value: 27.467436111704224
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            value: 38.9902118898862
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            value: 68.907
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            value: 72.896
          - type: ndcg_at_1000
            value: 73.721
          - type: ndcg_at_20
            value: 70.738
          - type: ndcg_at_3
            value: 62.731
          - type: ndcg_at_5
            value: 65.191
          - type: precision_at_1
            value: 62.88399999999999
          - type: precision_at_10
            value: 16.101
          - type: precision_at_100
            value: 1.951
          - type: precision_at_1000
            value: 0.20600000000000002
          - type: precision_at_20
            value: 8.705
          - type: precision_at_3
            value: 38.095
          - type: precision_at_5
            value: 27.904
          - type: recall_at_1
            value: 40.038000000000004
          - type: recall_at_10
            value: 79.237
          - type: recall_at_100
            value: 94.17699999999999
          - type: recall_at_1000
            value: 99.466
          - type: recall_at_20
            value: 85.027
          - type: recall_at_3
            value: 60.336
          - type: recall_at_5
            value: 70.122
license: apache-2.0
language:
  - fr
metrics:
  - pearsonr
  - spearmanr

bilingual-embedding-large

bilingual-embedding is the Embedding Model for bilingual language: french and english. This model is a specialized sentence-embedding trained specifically for the bilingual language, leveraging the robust capabilities of BGE M3, a pre-trained language model larged on the BGE M3 architecture. The model utilizes xlm-roberta to encode english-french sentences into a 1024-dimensional vector space, facilitating a wide range of applications from semantic search to text clustering. The embeddings capture the nuanced meanings of english-french sentences, reflecting both the lexical and contextual layers of the language.

Full Model Architecture

SentenceTransformer(
  (0): Transformer({'max_seq_length': 512, 'do_lower_case': False}) with Transformer model: BilingualModel 
  (1): Pooling({'word_embedding_dimension': 1024, 'pooling_mode_cls_token': False, 'pooling_mode_mean_tokens': True, 'pooling_mode_max_tokens': False, 'pooling_mode_mean_sqrt_len_tokens': False, 'pooling_mode_weightedmean_tokens': False, 'pooling_mode_lasttoken': False, 'include_prompt': True})
  (2): Normalize()
)

Training and Fine-tuning process

Stage 1: NLI Training

  • Dataset: [(SNLI+XNLI) for english+french]
  • Method: Training using Multi-Negative Ranking Loss. This stage focused on improving the model's ability to discern and rank nuanced differences in sentence semantics.

Stage 3: Continued Fine-tuning for Semantic Textual Similarity on STS Benchmark

  • Dataset: [STSB-fr and en]
  • Method: Fine-tuning specifically for the semantic textual similarity benchmark using Siamese BERT-Networks configured with the 'sentence-transformers' library.

Stage 4: Advanced Augmentation Fine-tuning

  • Dataset: STSB with generate silver sample from gold sample
  • Method: Employed an advanced strategy using Augmented SBERT with Pair Sampling Strategies, integrating both Cross-Encoder and Bi-Encoder models. This stage further refined the embeddings by enriching the training data dynamically, enhancing the model's robustness and accuracy.

Usage:

Using this model becomes easy when you have sentence-transformers installed:

pip install -U sentence-transformers

Then you can use the model like this:

from sentence_transformers import SentenceTransformer

sentences = ["Paris est une capitale de la France", "Paris is a capital of France"]

model = SentenceTransformer('Lajavaness/bilingual-embedding-large-8k', trust_remote_code=True)
print(embeddings)

Evaluation

TODO

Citation

@article{chen2024bge,
  title={Bge m3-embedding: Multi-lingual, multi-functionality, multi-granularity text embeddings through self-knowledge distillation},
  author={Chen, Jianlv and Xiao, Shitao and Zhang, Peitian and Luo, Kun and Lian, Defu and Liu, Zheng},
  journal={arXiv preprint arXiv:2402.03216},
  year={2024}
}

@article{conneau2019unsupervised,
  title={Unsupervised cross-lingual representation learning at scale},
  author={Conneau, Alexis and Khandelwal, Kartikay and Goyal, Naman and Chaudhary, Vishrav and Wenzek, Guillaume and Guzm{\'a}n, Francisco and Grave, Edouard and Ott, Myle and Zettlemoyer, Luke and Stoyanov, Veselin},
  journal={arXiv preprint arXiv:1911.02116},
  year={2019}
}

@article{reimers2019sentence,
   title={Sentence-BERT: Sentence Embeddings using Siamese BERT-Networks},
   author={Nils Reimers, Iryna Gurevych},
   journal={https://arxiv.org/abs/1908.10084},
   year={2019}
}

@article{thakur2020augmented,
  title={Augmented SBERT: Data Augmentation Method for Improving Bi-Encoders for Pairwise Sentence Scoring Tasks},
  author={Thakur, Nandan and Reimers, Nils and Daxenberger, Johannes and Gurevych, Iryna},
  journal={arXiv e-prints},
  pages={arXiv--2010},
  year={2020}