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@@ -44,7 +44,7 @@ A technical report detailing our proposed `LEAF` training procedure will be avai
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  # Highlights
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- * **State-of-the-Art Performance**: `mdbr-leaf-ir` achieves new state-of-the-art results for compact embedding models, ranking <span style="color:red">#TBD</span> on the public [BEIR benchmark leaderboard](https://huggingface.co/spaces/mteb/leaderboard) for models <100M parameters with an average nDCG@10 score of <span style="color:red">[TBD]</span>.
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  * **Flexible Architecture Support**: `mdbr-leaf-ir` supports asymmetric retrieval architectures enabling even greater retrieval results. [See below](#asymmetric-retrieval-setup) for more information.
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  * **MRL and Quantization Support**: embedding vectors generated by `mdbr-leaf-ir` compress well when truncated (MRL) and can be stored using more efficient types like `int8` and `binary`. [See below](#mrl) for more information.
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  # Highlights
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+ * **State-of-the-Art Performance**: `mdbr-leaf-ir` achieves new state-of-the-art results for compact embedding models, **ranking #1** on the public [BEIR benchmark leaderboard](https://huggingface.co/spaces/mteb/leaderboard) for models with ≤100M parameters.
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  * **Flexible Architecture Support**: `mdbr-leaf-ir` supports asymmetric retrieval architectures enabling even greater retrieval results. [See below](#asymmetric-retrieval-setup) for more information.
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  * **MRL and Quantization Support**: embedding vectors generated by `mdbr-leaf-ir` compress well when truncated (MRL) and can be stored using more efficient types like `int8` and `binary`. [See below](#mrl) for more information.
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