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NVIDIA Releases Kumo Tabular: Open Tabular Foundation Models That Predict New Rows in a Single Forward Pass
תקציר מקורי באנגליתNVIDIA has released Kumo Tabular , a new family of tabular foundation models (TFMs) for classification and regression. If you have followed TabPFN or TabICL , the setup will look familiar. The model takes labeled rows as context and predicts new rows in one forward pass. There is no training, no hyperparameter tuning, and no feature engineering. Kumo Tabular comes in Small, Medium, and Large versions, spanning about 28M to 215M parameters. It runs through NVIDIA’s open-source structured-data-models (SDM) library. Is it deployable? Yes. Weights ship under the OpenMDW-1.1 license, which permits commercial use. The SDM code is Apache-2.0, and it needs Python 3.11+ and PyTorch 2.7+ , with examples targeting a CUDA GPU. What the SDM Library Adds SDM is a GPU-native library for structured-
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