Datasets:
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README.md
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Principal Component Analysis (PCA) applied to the full feature set (Figure 1) reveals a clear separation between BOOM and [GiftEval](https://huggingface.co/datasets/Salesforce/GiftEval) datasets. BOOM occupies a broader and more dispersed region of the feature space, reflecting greater diversity in signal complexity and temporal structure. This separation reinforces the benchmark’s relevance for evaluating models under realistic, deployment-aligned conditions.
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## Links:
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- [Research Paper](https://
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- [Codebase](https://github.com/DataDog/toto)
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- [Leaderboard 🏆](https://huggingface.co/spaces/Datadog/BOOM)
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- [Toto model (Datadog's open-weights model with state-of-the-art performance on BOOM)](https://huggingface.co/Datadog/Toto-Open-Base-1.0)
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Principal Component Analysis (PCA) applied to the full feature set (Figure 1) reveals a clear separation between BOOM and [GiftEval](https://huggingface.co/datasets/Salesforce/GiftEval) datasets. BOOM occupies a broader and more dispersed region of the feature space, reflecting greater diversity in signal complexity and temporal structure. This separation reinforces the benchmark’s relevance for evaluating models under realistic, deployment-aligned conditions.
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## Links:
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- [Research Paper](https://arxiv.org/abs/2505.14766)
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- [Codebase](https://github.com/DataDog/toto)
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- [Leaderboard 🏆](https://huggingface.co/spaces/Datadog/BOOM)
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- [Toto model (Datadog's open-weights model with state-of-the-art performance on BOOM)](https://huggingface.co/Datadog/Toto-Open-Base-1.0)
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