Kumo Tabular Small, regressor (ONNX)

ONNX conversion of the Small regressor of NVIDIA's Kumo Tabular (small/regressor.pt, revision v1.0.0), a tabular foundation model that predicts new rows from labeled context rows in one forward pass, with no training. For the model, its training and its limits see the original card, the blog post and structured-data-models.

Try it in your browser: Kumo Tabular in the Browser (drop a CSV or Parquet file; DuckDB-WASM + WebGPU; your data stays on the page). Code: shreyaskarnik/kumo-tabular-web.

Graph

onnx/model.onnx + onnx/model.onnx_data, fp32, 120 MB. It is the inner model (_KumoTabular.forward) with dynamic rows, context rows and columns:

  • x [R, C] float32: context rows first, then query rows, already preprocessed
  • y_context [R_context] float32, standardized with the context mean and population std
  • categorical_mask [C] bool: which columns came from categorical features
  • logits [R_query, 999]: quantiles q001โ€ฆq999 of the standardized target; sort, multiply by the context std and add the mean; the point estimate is their mean

The graph expects sdm's preprocessing (standardize, clip, sigma-clip, category codes and counts; see sdm/models/kumo/tabular/recipe.py). The browser demo ports it to TypeScript and checks it value by value against sdm. It loads with Transformers.js AutoModel (device: "webgpu") and runs on ONNX Runtime WebGPU, WASM or CPU.

Conversion and checks

torch.onnx.export (dynamo, opset 20). One op needed a custom lowering: aten.remainder.Scalar with a symbolic divisor (index % num_columns in the column grouping) becomes ONNX Mod. Scripts are in conversion/.

  • ONNX Runtime (CPU) against PyTorch on inputs captured from real sdm runs: max |diff| 4.4e-5 (diabetes (442ร—10), California housing (1500ร—8); end to end in the browser within 6e-6 (relative) of sdm's point estimates).
  • WebGPU (Chrome, M3 Pro), same inputs: max |diff| โ‰ค 2e-4.

License

The weights are NVIDIA's, under the OpenMDW-1.1 license (included); this is a format conversion with no change to them. Converted by @shreyask.

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