Methods › General › Spreadsheet Formula Prediction Models › SpreadsheetCoder
SpreadsheetCoder
Introduced by Xinyun Chen et al. in SpreadsheetCoder: Formula Prediction from Semi-structured Context
archive 2025-07-28 Description, source and code snippet are the archive's method entry.
SpreadsheetCoder is a neural network architecture for spreadsheet formula prediction. It is a BERT-based model architecture to represent the tabular context in both row-based and column-based formats. A BERT encoder computes an embedding vector for each input token, incorporating the contextual information from nearby rows and columns. The BERT encoder is initialized from the weights pre-trained on English text corpora, which is beneficial for encoding table headers. To handle cell references, a two-stage decoding process is used inspired by sketch learning for program synthesis. The decoder first generates a formula sketch, which does not include concrete cell references, and then predicts the corresponding cell ranges to generate the complete formula
Papers archive 2025-07-28
1 shown of 1, newest first. Repository counts are the archive's code-links table. A Syntology line states what Syntology ran from that paper's harvested code; it is per sample and not a correctness claim.
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SpreadsheetCoder: Formula Prediction from Semi-structured Context 26 Jun 2021 · 1 repository · arXiv:2106.15339
Tasks archive 2025-07-28
2 tasks the archive attaches to papers tagged with this method, by distinct papers. A task without a page in the catalog is plain text.
| Task | Papers |
|---|---|
| Prediction | 1 |
| Program Synthesis | 1 |
Usage over time archive 2025-07-28
Components: the archive holds no method-to-method composition, so PwC's Components table cannot be rebuilt; the Papers list carries no Results column for the same reason (the archive does not join its leaderboard rows to method tags).
Categories archive 2025-07-28
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