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New benchmark GHGbench tackles fragmented carbon emission prediction

Researchers have introduced GHGbench, a new benchmark and dataset designed to unify and improve the prediction of carbon emissions at both company and building levels. The benchmark addresses fragmentation in existing datasets by providing a comprehensive collection of company disclosures and harmonized building data across multiple cities. Initial findings highlight that predicting building emissions is more challenging than company emissions, and that generalization to new regions or cities is a significant hurdle, with multimodal remote-sensing embeddings proving particularly useful. AI

影响 Provides a unified benchmark to advance AI research in predicting carbon emissions, potentially aiding climate change mitigation efforts.

排序理由 The cluster describes a new academic paper introducing a benchmark and dataset for carbon emission prediction.

在 arXiv cs.LG 阅读 →

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New benchmark GHGbench tackles fragmented carbon emission prediction

报道来源 [2]

  1. arXiv cs.LG TIER_1 English(EN) · Flora Salim ·

    GHGbench: A Unified Multi-Entity, Multi-Task Benchmark for Carbon Emission Prediction

    Open datasets and benchmarks for entity-level carbon-emission prediction remain fragmented across access, scale, granularity, and evaluation. We introduce GHGbench, an open dataset and benchmark for company- and building-level greenhouse-gas prediction. The company track contains…

  2. Hugging Face Daily Papers TIER_1 English(EN) ·

    GHGbench: A Unified Multi-Entity, Multi-Task Benchmark for Carbon Emission Prediction

    Open datasets and benchmarks for entity-level carbon-emission prediction remain fragmented across access, scale, granularity, and evaluation. We introduce GHGbench, an open dataset and benchmark for company- and building-level greenhouse-gas prediction. The company track contains…