Rao Kotamarthi

dblp:283/5407 · DBLP profile ↗
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3ranked-venue papers
0as first author
3since 2021 · last 2025
0000-0002-2612-7590ORCID · reported

Domains — the database's venue-derived domains; a paper can count in several

Artificial intelligence and machine learning · 2 · 2 since 2021Systems, architecture and hardware · 1 · 1 since 2021

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Artificial intelligence
3 papers
Generative modeling · 74% Deep learning architectures and training · 20% Time series and sequential data · 6%
Interdisciplinary, comprehensive, and emerging computing
2 papers
Environmental and earth informatics · 100%
Computer architecture, parallel and distributed computing, and storage systems
1 paper
High-performance computing · 100%

Topics — the 8 heaviest of 8, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Machine learning › Generative modeling
diffusion model
1.722025
AERIS: Argonne Earth Systems Model for Reliable and Skillful Predictions · SC 2025
OmniCast: A Masked Latent Diffusion Model for Weather Forecasting Across Time Scales · NeurIPS 2025
Environmental and earth informatics › weather forecasting
data-driven weather forecasting
1.622025
OmniCast: A Masked Latent Diffusion Model for Weather Forecasting Across Time Scales · NeurIPS 2025
Scaling transformer neural networks for skillful and reliable medium-range weather forecasting · NeurIPS 2024
Environmental and earth informatics
weather forecasting
1.622025
OmniCast: A Masked Latent Diffusion Model for Weather Forecasting Across Time Scales · NeurIPS 2025
Scaling transformer neural networks for skillful and reliable medium-range weather forecasting · NeurIPS 2024
Machine learning › Generative modeling › diffusion model
latent diffusion model
0.912025
OmniCast: A Masked Latent Diffusion Model for Weather Forecasting Across Time Scales · NeurIPS 2025
Machine learning › Deep learning architectures and training
transformer
0.812024
Scaling transformer neural networks for skillful and reliable medium-range weather forecasting · NeurIPS 2024
Machine learning › Generative modeling
variational autoencoder
0.312025
OmniCast: A Masked Latent Diffusion Model for Weather Forecasting Across Time Scales · NeurIPS 2025
High-performance computing › large-scale training
large-scale distributed training
0.312025
AERIS: Argonne Earth Systems Model for Reliable and Skillful Predictions · SC 2025
Machine learning › Time series and sequential data › time series modeling
probabilistic forecasting
0.212024
Scaling transformer neural networks for skillful and reliable medium-range weather forecasting · NeurIPS 2024

Methods — techniques the papers use, named apart from their topics

window parallelism · 1.7swin diffusion transformer · 1.7sequence parallelism · 1.7pipeline parallelism · 1.7per-token diffusion head · 1.7masked latent diffusion · 1.7iterative unmasking · 1.7weather-specific embedding · 1.5randomized dynamics forecast · 1.5pressure-weighted loss · 1.5
YearPublicationVenuePosition
2025 OmniCast: A Masked Latent Diffusion Model for Weather Forecasting Across Time Scales
abstract
Accurate weather forecasting across time scales is critical for anticipating and mitigating the impacts of climate change. Recent data-driven methods based on deep learning have achieved significant success in the medium range, but struggle at longer subseasonal-to-seasonal (S2S) horizons due to error accumulation in their autoregressive approach. In this work, we propose OmniCast, a scalable and skillful probabilistic model that unifies weather forecasting across timescales. OmniCast consists of two components: a VAE model that encodes raw weather data into a continuous, lower-dimensional latent space, and a diffusion-based transformer model that generates a sequence of future latent tokens given the initial conditioning tokens. During training, we mask random future tokens and train the transformer to estimate their distribution given conditioning and visible tokens using a per-token diffusion head. During inference, the transformer generates the full sequence of future tokens by iteratively unmasking random subsets of tokens. This joint sampling across space and time mitigates compounding errors from autoregressive approaches. The low-dimensional latent space enables modeling long sequences of future latent states, allowing the transformer to learn weather dynamics beyond initial conditions. OmniCast performs competitively with leading probabilistic methods at the medium-range timescale while being 10× to 20× faster, and achieves state-of-the-art performance at the subseasonal-to-seasonal scale across accuracy, physics-based, and probabilistic metrics. Furthermore, we demonstrate that OmniCast can generate stable rollouts up to 100 years ahead. Code and model checkpoints are available at https://github.com/tung-nd/omnicast.
Troy Arcomano, Rao Kotamarthi, Ian T. Foster, Sandeep Madireddy, Aditya Grover
NeurIPS4
2025 AERIS: Argonne Earth Systems Model for Reliable and Skillful Predictions
abstract
Generative machine learning offers new opportunities to better understand complex Earth system dynamics. Recent diffusion-based methods address spectral biases and improve ensemble calibration in weather forecasting compared to deterministic methods, yet have so far proven difficult to scale stably at high resolutions. We introduce AERIS, a 1.3 to 80B parameter pixel-level Swin diffusion transformer to address this gap, and SWiPe, a generalizable technique that composes window parallelism with sequence and pipeline parallelism to shard window-based transformers without added communication cost or increased global batch size. On Aurora (10,080 nodes), AERIS sustains 10.21 ExaFLOPS (mixed precision) and a peak performance of 11.21 ExaFLOPS with 1 × 1 patch size on the 0.25° ERA5 dataset, achieving 95.5% weak scaling efficiency, and 81.6% strong scaling efficiency. AERIS outperforms the IFS ENS and remains stable on seasonal scales to 90 days, highlighting the potential of billion-parameter diffusion models for weather and climate prediction.
Väinö Hatanpää, Eugene Ku, Jason Stock, Murali Emani, Sam Foreman, Chunyong Jung, Sandeep Madireddy, Varuni Sastry 0001, Ray A. O. Sinurat, Huihuo Zheng, Sam Wheeler, Troy Arcomano, Venkatram Vishwanath, Rao Kotamarthi
SC15
2024 Scaling transformer neural networks for skillful and reliable medium-range weather forecasting
abstract
Weather forecasting is a fundamental problem for anticipating and mitigating the impacts of climate change. Recently, data-driven approaches for weather forecasting based on deep learning have shown great promise, achieving accuracies that are competitive with operational systems. However, those methods often employ complex, customized architectures without sufficient ablation analysis, making it difficult to understand what truly contributes to their success. Here we introduce Stormer, a simple transformer model that achieves state-of-the art performance on weather forecasting with minimal changes to the standard transformer backbone. We identify the key components of Stormer through careful empirical analyses, including weather-specific embedding, randomized dynamics forecast, and pressure-weighted loss. At the core of Stormer is a randomized forecasting objective that trains the model to forecast the weather dynamics over varying time intervals. During inference, this allows us to produce multiple forecasts for a target lead time and combine them to obtain better forecast accuracy. On WeatherBench 2, Stormer performs competitively at short to medium-range forecasts and outperforms current methods beyond 7 days, while requiring orders-of-magnitude less training data and compute. Additionally, we demonstrate Stormer’s favorable scaling properties, showing consistent improvements in forecast accuracy with increases in model size and training tokens. Code and checkpoints are available at https://github.com/tung-nd/stormer.
Rohan Shah, Hritik Bansal, Troy Arcomano, Romit Maulik, Rao Kotamarthi, Ian T. Foster, Sandeep Madireddy, Aditya Grover
NeurIPS6