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Add new CrossEncoder model

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  1. README.md +507 -0
  2. config.json +56 -0
  3. model.safetensors +3 -0
  4. special_tokens_map.json +37 -0
  5. tokenizer.json +0 -0
  6. tokenizer_config.json +945 -0
README.md ADDED
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+ ---
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+ language:
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+ - en
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+ license: apache-2.0
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+ tags:
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+ - sentence-transformers
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+ - cross-encoder
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+ - generated_from_trainer
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+ - dataset_size:95939
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+ - loss:LambdaLoss
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+ base_model: answerdotai/ModernBERT-base
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+ pipeline_tag: text-ranking
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+ library_name: sentence-transformers
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+ metrics:
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+ - map
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+ - mrr@10
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+ - ndcg@10
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+ model-index:
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+ - name: ModernBERT-base trained on GooAQ
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+ results:
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+ - task:
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+ type: cross-encoder-reranking
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+ name: Cross Encoder Reranking
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+ dataset:
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+ name: gooaq dev
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+ type: gooaq-dev
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+ metrics:
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+ - type: map
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+ value: 0.7164
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+ name: Map
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+ - type: mrr@10
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+ value: 0.7148
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+ name: Mrr@10
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+ - type: ndcg@10
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+ value: 0.7601
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+ name: Ndcg@10
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+ - task:
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+ type: cross-encoder-reranking
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+ name: Cross Encoder Reranking
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+ dataset:
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+ name: NanoMSMARCO R100
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+ type: NanoMSMARCO_R100
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+ metrics:
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+ - type: map
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+ value: 0.4853
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+ name: Map
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+ - type: mrr@10
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+ value: 0.4772
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+ name: Mrr@10
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+ - type: ndcg@10
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+ value: 0.5514
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+ name: Ndcg@10
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+ - task:
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+ type: cross-encoder-reranking
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+ name: Cross Encoder Reranking
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+ dataset:
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+ name: NanoNFCorpus R100
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+ type: NanoNFCorpus_R100
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+ metrics:
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+ - type: map
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+ value: 0.3379
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+ name: Map
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+ - type: mrr@10
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+ value: 0.5293
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+ name: Mrr@10
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+ - type: ndcg@10
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+ value: 0.3714
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+ name: Ndcg@10
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+ - task:
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+ type: cross-encoder-reranking
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+ name: Cross Encoder Reranking
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+ dataset:
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+ name: NanoNQ R100
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+ type: NanoNQ_R100
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+ metrics:
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+ - type: map
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+ value: 0.539
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+ name: Map
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+ - type: mrr@10
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+ value: 0.5479
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+ name: Mrr@10
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+ - type: ndcg@10
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+ value: 0.5941
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+ name: Ndcg@10
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+ - task:
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+ type: cross-encoder-nano-beir
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+ name: Cross Encoder Nano BEIR
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+ dataset:
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+ name: NanoBEIR R100 mean
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+ type: NanoBEIR_R100_mean
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+ metrics:
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+ - type: map
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+ value: 0.4541
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+ name: Map
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+ - type: mrr@10
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+ value: 0.5181
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+ name: Mrr@10
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+ - type: ndcg@10
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+ value: 0.5056
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+ name: Ndcg@10
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+ ---
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+
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+ # ModernBERT-base trained on GooAQ
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+
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+ This is a [Cross Encoder](https://www.sbert.net/docs/cross_encoder/usage/usage.html) model finetuned from [answerdotai/ModernBERT-base](https://huggingface.co/answerdotai/ModernBERT-base) using the [sentence-transformers](https://www.SBERT.net) library. It computes scores for pairs of texts, which can be used for text reranking and semantic search.
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+
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+ ## Model Details
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+
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+ ### Model Description
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+ - **Model Type:** Cross Encoder
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+ - **Base model:** [answerdotai/ModernBERT-base](https://huggingface.co/answerdotai/ModernBERT-base) <!-- at revision 8949b909ec900327062f0ebf497f51aef5e6f0c8 -->
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+ - **Maximum Sequence Length:** 8192 tokens
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+ - **Number of Output Labels:** 1 label
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+ <!-- - **Training Dataset:** Unknown -->
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+ - **Language:** en
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+ - **License:** apache-2.0
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+
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+ ### Model Sources
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+
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+ - **Documentation:** [Sentence Transformers Documentation](https://sbert.net)
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+ - **Documentation:** [Cross Encoder Documentation](https://www.sbert.net/docs/cross_encoder/usage/usage.html)
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+ - **Repository:** [Sentence Transformers on GitHub](https://github.com/UKPLab/sentence-transformers)
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+ - **Hugging Face:** [Cross Encoders on Hugging Face](https://huggingface.co/models?library=sentence-transformers&other=cross-encoder)
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+
125
+ ## Usage
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+
127
+ ### Direct Usage (Sentence Transformers)
128
+
129
+ First install the Sentence Transformers library:
130
+
131
+ ```bash
132
+ pip install -U sentence-transformers
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+ ```
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+
135
+ Then you can load this model and run inference.
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+ ```python
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+ from sentence_transformers import CrossEncoder
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+
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+ # Download from the 🤗 Hub
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+ model = CrossEncoder("tomaarsen/reranker-ModernBERT-base-gooaq-lambda")
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+ # Get scores for pairs of texts
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+ pairs = [
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+ ['How many calories in an egg', 'There are on average between 55 and 80 calories in an egg depending on its size.'],
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+ ['How many calories in an egg', 'Egg whites are very low in calories, have no fat, no cholesterol, and are loaded with protein.'],
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+ ['How many calories in an egg', 'Most of the calories in an egg come from the yellow yolk in the center.'],
146
+ ]
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+ scores = model.predict(pairs)
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+ print(scores.shape)
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+ # (3,)
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+
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+ # Or rank different texts based on similarity to a single text
152
+ ranks = model.rank(
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+ 'How many calories in an egg',
154
+ [
155
+ 'There are on average between 55 and 80 calories in an egg depending on its size.',
156
+ 'Egg whites are very low in calories, have no fat, no cholesterol, and are loaded with protein.',
157
+ 'Most of the calories in an egg come from the yellow yolk in the center.',
158
+ ]
159
+ )
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+ # [{'corpus_id': ..., 'score': ...}, {'corpus_id': ..., 'score': ...}, ...]
161
+ ```
162
+
163
+ <!--
164
+ ### Direct Usage (Transformers)
165
+
166
+ <details><summary>Click to see the direct usage in Transformers</summary>
167
+
168
+ </details>
169
+ -->
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+
171
+ <!--
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+ ### Downstream Usage (Sentence Transformers)
173
+
174
+ You can finetune this model on your own dataset.
175
+
176
+ <details><summary>Click to expand</summary>
177
+
178
+ </details>
179
+ -->
180
+
181
+ <!--
182
+ ### Out-of-Scope Use
183
+
184
+ *List how the model may foreseeably be misused and address what users ought not to do with the model.*
185
+ -->
186
+
187
+ ## Evaluation
188
+
189
+ ### Metrics
190
+
191
+ #### Cross Encoder Reranking
192
+
193
+ * Dataset: `gooaq-dev`
194
+ * Evaluated with [<code>CrossEncoderRerankingEvaluator</code>](https://sbert.net/docs/package_reference/cross_encoder/evaluation.html#sentence_transformers.cross_encoder.evaluation.CrossEncoderRerankingEvaluator) with these parameters:
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+ ```json
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+ {
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+ "at_k": 10,
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+ "always_rerank_positives": false
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+ }
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+ ```
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+
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+ | Metric | Value |
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+ |:------------|:---------------------|
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+ | map | 0.7164 (+0.1853) |
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+ | mrr@10 | 0.7148 (+0.1908) |
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+ | **ndcg@10** | **0.7601 (+0.1689)** |
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+
208
+ #### Cross Encoder Reranking
209
+
210
+ * Datasets: `NanoMSMARCO_R100`, `NanoNFCorpus_R100` and `NanoNQ_R100`
211
+ * Evaluated with [<code>CrossEncoderRerankingEvaluator</code>](https://sbert.net/docs/package_reference/cross_encoder/evaluation.html#sentence_transformers.cross_encoder.evaluation.CrossEncoderRerankingEvaluator) with these parameters:
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+ ```json
213
+ {
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+ "at_k": 10,
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+ "always_rerank_positives": true
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+ }
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+ ```
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+
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+ | Metric | NanoMSMARCO_R100 | NanoNFCorpus_R100 | NanoNQ_R100 |
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+ |:------------|:---------------------|:---------------------|:---------------------|
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+ | map | 0.4853 (-0.0042) | 0.3379 (+0.0769) | 0.5390 (+0.1194) |
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+ | mrr@10 | 0.4772 (-0.0003) | 0.5293 (+0.0294) | 0.5479 (+0.1212) |
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+ | **ndcg@10** | **0.5514 (+0.0110)** | **0.3714 (+0.0464)** | **0.5941 (+0.0934)** |
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+
225
+ #### Cross Encoder Nano BEIR
226
+
227
+ * Dataset: `NanoBEIR_R100_mean`
228
+ * Evaluated with [<code>CrossEncoderNanoBEIREvaluator</code>](https://sbert.net/docs/package_reference/cross_encoder/evaluation.html#sentence_transformers.cross_encoder.evaluation.CrossEncoderNanoBEIREvaluator) with these parameters:
229
+ ```json
230
+ {
231
+ "dataset_names": [
232
+ "msmarco",
233
+ "nfcorpus",
234
+ "nq"
235
+ ],
236
+ "rerank_k": 100,
237
+ "at_k": 10,
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+ "always_rerank_positives": true
239
+ }
240
+ ```
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+
242
+ | Metric | Value |
243
+ |:------------|:---------------------|
244
+ | map | 0.4541 (+0.0640) |
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+ | mrr@10 | 0.5181 (+0.0501) |
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+ | **ndcg@10** | **0.5056 (+0.0503)** |
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+
248
+ <!--
249
+ ## Bias, Risks and Limitations
250
+
251
+ *What are the known or foreseeable issues stemming from this model? You could also flag here known failure cases or weaknesses of the model.*
252
+ -->
253
+
254
+ <!--
255
+ ### Recommendations
256
+
257
+ *What are recommendations with respect to the foreseeable issues? For example, filtering explicit content.*
258
+ -->
259
+
260
+ ## Training Details
261
+
262
+ ### Training Dataset
263
+
264
+ #### Unnamed Dataset
265
+
266
+ * Size: 95,939 training samples
267
+ * Columns: <code>question</code>, <code>answer</code>, and <code>labels</code>
268
+ * Approximate statistics based on the first 1000 samples:
269
+ | | question | answer | labels |
270
+ |:--------|:-----------------------------------------------------------------------------------------------|:-----------------------------------|:-----------------------------------|
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+ | type | string | list | list |
272
+ | details | <ul><li>min: 18 characters</li><li>mean: 43.5 characters</li><li>max: 101 characters</li></ul> | <ul><li>size: 6 elements</li></ul> | <ul><li>size: 6 elements</li></ul> |
273
+ * Samples:
274
+ | question | answer | labels |
275
+ |:-----------------------------------------------------------------------|:---------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------------|:----------------------------------|
276
+ | <code>can u get ip banned from discord?</code> | <code>['Yes you very much can, infact its already done. When you ban a person its an IP ban (also an account ban) There are no ways to bypass it without a new account.', 'Yes, your account is banned if you see the “Your account has been suspended/terminated for violating the Terms of Service” message when logging in to Pokémon GO.', 'This means that Snap is identifying devices and not users. So if a user, after getting banned, tries to access Snapchat from a different account but the same device, then that account also gets banned automatically. “The jailbreaking ban is apparently actually a device ban.', "When you block someone on Discord, they won't be able to send you private messages, and will servers you share will hide their messages. If the person you blocked was on your Friends list, they'll be removed immediately.", "You will for sure get an e-mail telling you that you were banned. That error happens quite often to me. Just login again from the title screen and game on. It's a commo...</code> | <code>[1, 0, 0, 0, 0, ...]</code> |
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+ | <code>what is the difference between methylphenidate cd and er?</code> | <code>['Metadate CD is a once-a-day capsule with biphasic release; initially there is a rapid release of methylphenidate, then a continuous-release phase. Metadate ER, on the other hand, is a tablet given two to three times per day.', 'Irregular Heartbeat Risk Associated with Common ADHD Med. Children who take a common drug to treat attention-deficit/hyperactivity disorder may be at an increased risk for developing an irregular heartbeat. The drug, methylphenidate, is the active ingredient in Concerta, Daytrana and Ritalin.', "Vyvanse contains the drug lisdexamfetamine dimesylate, while Ritalin contains the drug methylphenidate. Both Vyvanse and Ritalin are used to treat ADHD symptoms such as poor focus, reduced impulse control, and hyperactivity. However, they're also prescribed to treat other conditions.", 'Tolerance develops to the side effects of Adderall IR and XR in five to seven days. Side effects that persist longer than one week can be quickly managed by lowering the dose or changin...</code> | <code>[1, 0, 0, 0, 0, ...]</code> |
278
+ | <code>who has the most championships in hockey?</code> | <code>['Having lifted the trophy a total of 24 times, the Montreal Canadiens are the team with more Stanley Cup titles than any other franchise.', "['Ivy League – 46 National Championships.', 'Big Ten – 39 National Championships. ... ', 'SEC – 29 National Championships. ... ', 'ACC – 18 National Championships. ... ', 'Independents – 17 National Championships. ... ', 'Pac-12 – 15 National Championships. ... ', 'Big 12 – 11 National Championships. ... ']", 'Boston Celtics center Bill Russell holds the record for the most NBA championships won with 11 titles during his 13-year playing career.', 'Alabama can claim the most NCAA titles in the poll era, with only three of its 15 coming prior. With the 15th title — a win in the College Football Playoff in 2017, coach Nick Saban tied the legendary Bear Bryant with five championships recognized by the NCAA.', 'American football is the most popular sport to watch in the United States, followed by baseball, basketball, and ice hockey, which makes up th...</code> | <code>[1, 0, 0, 0, 0, ...]</code> |
279
+ * Loss: [<code>LambdaLoss</code>](https://sbert.net/docs/package_reference/cross_encoder/losses.html#lambdaloss) with these parameters:
280
+ ```json
281
+ {
282
+ "weighting_scheme": "sentence_transformers.cross_encoder.losses.LambdaLoss.NDCGLoss2PPScheme",
283
+ "k": null,
284
+ "sigma": 1.0,
285
+ "eps": 1e-10,
286
+ "reduction_log": "binary",
287
+ "activation_fct": "torch.nn.modules.linear.Identity",
288
+ "mini_batch_size": 16
289
+ }
290
+ ```
291
+
292
+ ### Training Hyperparameters
293
+ #### Non-Default Hyperparameters
294
+
295
+ - `eval_strategy`: steps
296
+ - `per_device_train_batch_size`: 64
297
+ - `per_device_eval_batch_size`: 64
298
+ - `learning_rate`: 2e-05
299
+ - `num_train_epochs`: 1
300
+ - `warmup_ratio`: 0.1
301
+ - `seed`: 12
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+ - `bf16`: True
303
+ - `dataloader_num_workers`: 4
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+ - `load_best_model_at_end`: True
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+
306
+ #### All Hyperparameters
307
+ <details><summary>Click to expand</summary>
308
+
309
+ - `overwrite_output_dir`: False
310
+ - `do_predict`: False
311
+ - `eval_strategy`: steps
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+ - `prediction_loss_only`: True
313
+ - `per_device_train_batch_size`: 64
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+ - `per_device_eval_batch_size`: 64
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+ - `per_gpu_train_batch_size`: None
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+ - `per_gpu_eval_batch_size`: None
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+ - `gradient_accumulation_steps`: 1
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+ - `eval_accumulation_steps`: None
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+ - `torch_empty_cache_steps`: None
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+ - `learning_rate`: 2e-05
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+ - `weight_decay`: 0.0
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+ - `adam_beta1`: 0.9
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+ - `adam_beta2`: 0.999
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+ - `adam_epsilon`: 1e-08
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+ - `max_grad_norm`: 1.0
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+ - `num_train_epochs`: 1
327
+ - `max_steps`: -1
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+ - `lr_scheduler_type`: linear
329
+ - `lr_scheduler_kwargs`: {}
330
+ - `warmup_ratio`: 0.1
331
+ - `warmup_steps`: 0
332
+ - `log_level`: passive
333
+ - `log_level_replica`: warning
334
+ - `log_on_each_node`: True
335
+ - `logging_nan_inf_filter`: True
336
+ - `save_safetensors`: True
337
+ - `save_on_each_node`: False
338
+ - `save_only_model`: False
339
+ - `restore_callback_states_from_checkpoint`: False
340
+ - `no_cuda`: False
341
+ - `use_cpu`: False
342
+ - `use_mps_device`: False
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+ - `seed`: 12
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+ - `data_seed`: None
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+ - `jit_mode_eval`: False
346
+ - `use_ipex`: False
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+ - `bf16`: True
348
+ - `fp16`: False
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+ - `fp16_opt_level`: O1
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+ - `half_precision_backend`: auto
351
+ - `bf16_full_eval`: False
352
+ - `fp16_full_eval`: False
353
+ - `tf32`: None
354
+ - `local_rank`: 0
355
+ - `ddp_backend`: None
356
+ - `tpu_num_cores`: None
357
+ - `tpu_metrics_debug`: False
358
+ - `debug`: []
359
+ - `dataloader_drop_last`: False
360
+ - `dataloader_num_workers`: 4
361
+ - `dataloader_prefetch_factor`: None
362
+ - `past_index`: -1
363
+ - `disable_tqdm`: False
364
+ - `remove_unused_columns`: True
365
+ - `label_names`: None
366
+ - `load_best_model_at_end`: True
367
+ - `ignore_data_skip`: False
368
+ - `fsdp`: []
369
+ - `fsdp_min_num_params`: 0
370
+ - `fsdp_config`: {'min_num_params': 0, 'xla': False, 'xla_fsdp_v2': False, 'xla_fsdp_grad_ckpt': False}
371
+ - `fsdp_transformer_layer_cls_to_wrap`: None
372
+ - `accelerator_config`: {'split_batches': False, 'dispatch_batches': None, 'even_batches': True, 'use_seedable_sampler': True, 'non_blocking': False, 'gradient_accumulation_kwargs': None}
373
+ - `deepspeed`: None
374
+ - `label_smoothing_factor`: 0.0
375
+ - `optim`: adamw_torch
376
+ - `optim_args`: None
377
+ - `adafactor`: False
378
+ - `group_by_length`: False
379
+ - `length_column_name`: length
380
+ - `ddp_find_unused_parameters`: None
381
+ - `ddp_bucket_cap_mb`: None
382
+ - `ddp_broadcast_buffers`: False
383
+ - `dataloader_pin_memory`: True
384
+ - `dataloader_persistent_workers`: False
385
+ - `skip_memory_metrics`: True
386
+ - `use_legacy_prediction_loop`: False
387
+ - `push_to_hub`: False
388
+ - `resume_from_checkpoint`: None
389
+ - `hub_model_id`: None
390
+ - `hub_strategy`: every_save
391
+ - `hub_private_repo`: None
392
+ - `hub_always_push`: False
393
+ - `gradient_checkpointing`: False
394
+ - `gradient_checkpointing_kwargs`: None
395
+ - `include_inputs_for_metrics`: False
396
+ - `include_for_metrics`: []
397
+ - `eval_do_concat_batches`: True
398
+ - `fp16_backend`: auto
399
+ - `push_to_hub_model_id`: None
400
+ - `push_to_hub_organization`: None
401
+ - `mp_parameters`:
402
+ - `auto_find_batch_size`: False
403
+ - `full_determinism`: False
404
+ - `torchdynamo`: None
405
+ - `ray_scope`: last
406
+ - `ddp_timeout`: 1800
407
+ - `torch_compile`: False
408
+ - `torch_compile_backend`: None
409
+ - `torch_compile_mode`: None
410
+ - `dispatch_batches`: None
411
+ - `split_batches`: None
412
+ - `include_tokens_per_second`: False
413
+ - `include_num_input_tokens_seen`: False
414
+ - `neftune_noise_alpha`: None
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+ - `optim_target_modules`: None
416
+ - `batch_eval_metrics`: False
417
+ - `eval_on_start`: False
418
+ - `use_liger_kernel`: False
419
+ - `eval_use_gather_object`: False
420
+ - `average_tokens_across_devices`: False
421
+ - `prompts`: None
422
+ - `batch_sampler`: batch_sampler
423
+ - `multi_dataset_batch_sampler`: proportional
424
+
425
+ </details>
426
+
427
+ ### Training Logs
428
+ | Epoch | Step | Training Loss | gooaq-dev_ndcg@10 | NanoMSMARCO_R100_ndcg@10 | NanoNFCorpus_R100_ndcg@10 | NanoNQ_R100_ndcg@10 | NanoBEIR_R100_mean_ndcg@10 |
429
+ |:-------:|:--------:|:-------------:|:--------------------:|:------------------------:|:-------------------------:|:--------------------:|:--------------------------:|
430
+ | -1 | -1 | - | 0.1318 (-0.4594) | 0.0314 (-0.5091) | 0.3145 (-0.0105) | 0.0444 (-0.4562) | 0.1301 (-0.3253) |
431
+ | 0.0007 | 1 | 2.1483 | - | - | - | - | - |
432
+ | 0.0667 | 100 | 2.0302 | - | - | - | - | - |
433
+ | 0.1333 | 200 | 1.0684 | - | - | - | - | - |
434
+ | 0.1667 | 250 | - | 0.7116 (+0.1204) | 0.4469 (-0.0935) | 0.3483 (+0.0233) | 0.6251 (+0.1244) | 0.4734 (+0.0181) |
435
+ | 0.2 | 300 | 0.6541 | - | - | - | - | - |
436
+ | 0.2667 | 400 | 0.5459 | - | - | - | - | - |
437
+ | 0.3333 | 500 | 0.5159 | 0.7425 (+0.1513) | 0.5219 (-0.0186) | 0.3722 (+0.0471) | 0.6300 (+0.1294) | 0.5080 (+0.0526) |
438
+ | 0.4 | 600 | 0.4852 | - | - | - | - | - |
439
+ | 0.4667 | 700 | 0.4655 | - | - | - | - | - |
440
+ | 0.5 | 750 | - | 0.7545 (+0.1633) | 0.5572 (+0.0167) | 0.3726 (+0.0476) | 0.6188 (+0.1182) | 0.5162 (+0.0608) |
441
+ | 0.5333 | 800 | 0.448 | - | - | - | - | - |
442
+ | 0.6 | 900 | 0.4283 | - | - | - | - | - |
443
+ | 0.6667 | 1000 | 0.4296 | 0.7582 (+0.1670) | 0.5540 (+0.0136) | 0.3723 (+0.0473) | 0.6142 (+0.1136) | 0.5135 (+0.0581) |
444
+ | 0.7333 | 1100 | 0.4237 | - | - | - | - | - |
445
+ | 0.8 | 1200 | 0.4165 | - | - | - | - | - |
446
+ | 0.8333 | 1250 | - | 0.7600 (+0.1687) | 0.5574 (+0.0169) | 0.3676 (+0.0426) | 0.5671 (+0.0665) | 0.4974 (+0.0420) |
447
+ | 0.8667 | 1300 | 0.4258 | - | - | - | - | - |
448
+ | 0.9333 | 1400 | 0.4192 | - | - | - | - | - |
449
+ | **1.0** | **1500** | **0.425** | **0.7601 (+0.1689)** | **0.5514 (+0.0110)** | **0.3714 (+0.0464)** | **0.5941 (+0.0934)** | **0.5056 (+0.0503)** |
450
+ | -1 | -1 | - | 0.7601 (+0.1689) | 0.5514 (+0.0110) | 0.3714 (+0.0464) | 0.5941 (+0.0934) | 0.5056 (+0.0503) |
451
+
452
+ * The bold row denotes the saved checkpoint.
453
+
454
+ ### Framework Versions
455
+ - Python: 3.11.10
456
+ - Sentence Transformers: 3.5.0.dev0
457
+ - Transformers: 4.49.0
458
+ - PyTorch: 2.5.1+cu124
459
+ - Accelerate: 1.2.0
460
+ - Datasets: 2.21.0
461
+ - Tokenizers: 0.21.0
462
+
463
+ ## Citation
464
+
465
+ ### BibTeX
466
+
467
+ #### Sentence Transformers
468
+ ```bibtex
469
+ @inproceedings{reimers-2019-sentence-bert,
470
+ title = "Sentence-BERT: Sentence Embeddings using Siamese BERT-Networks",
471
+ author = "Reimers, Nils and Gurevych, Iryna",
472
+ booktitle = "Proceedings of the 2019 Conference on Empirical Methods in Natural Language Processing",
473
+ month = "11",
474
+ year = "2019",
475
+ publisher = "Association for Computational Linguistics",
476
+ url = "https://arxiv.org/abs/1908.10084",
477
+ }
478
+ ```
479
+
480
+ #### LambdaLoss
481
+ ```bibtex
482
+ @inproceedings{wang2018lambdaloss,
483
+ title={The lambdaloss framework for ranking metric optimization},
484
+ author={Wang, Xuanhui and Li, Cheng and Golbandi, Nadav and Bendersky, Michael and Najork, Marc},
485
+ booktitle={Proceedings of the 27th ACM international conference on information and knowledge management},
486
+ pages={1313--1322},
487
+ year={2018}
488
+ }
489
+ ```
490
+
491
+ <!--
492
+ ## Glossary
493
+
494
+ *Clearly define terms in order to be accessible across audiences.*
495
+ -->
496
+
497
+ <!--
498
+ ## Model Card Authors
499
+
500
+ *Lists the people who create the model card, providing recognition and accountability for the detailed work that goes into its construction.*
501
+ -->
502
+
503
+ <!--
504
+ ## Model Card Contact
505
+
506
+ *Provides a way for people who have updates to the Model Card, suggestions, or questions, to contact the Model Card authors.*
507
+ -->
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