forecasting

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#forecasting

Event Signature Transfer: Model-Agnostic Forecast Scenario Construction from Historical Events

arXiv cs.AI ↗ · 2d ago Cached

This paper introduces Event Signature Transfer (EST), a training-free, model-agnostic operator that constructs forecast scenarios by transferring event signatures from historical events onto time-series forecasts.

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#forecasting

From Tone to Trajectory: Continuous Sentiment and the Shape of Monetary Policy Communication

arXiv cs.CL ↗ · 2d ago Cached

This paper examines how sentiment arcs in ECB and Fed press conferences predict policy rate changes and inflation expectations, showing that the sequencing of sentiment carries significant policy signals.

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#forecasting

It Still Feels Like Summer in Parts of the US. Blame El Niño

Wired ↗ · 6d ago Cached

Prolonged summer-like temperatures in the US are attributed to El Niño and climate change, with forecasters predicting above-normal heat through September.

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#forecasting

CoRe: Coherence and Relational Alignment for Multivariate Time Series Forecasting

arXiv cs.LG ↗ · 2026-09-18 Cached

CoRe proposes a model-agnostic learning objective for multivariate time-series forecasting that uses frequency coherence and relational graph losses to improve prediction accuracy over standard methods.

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#forecasting

Artificial intelligence now beats some of the best human forecasters

Hacker News Top ↗ · 2026-09-17

Artificial intelligence systems have outperformed some of the best human forecasters in predictive tasks.

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#forecasting

Solar Intelligence

arXiv cs.AI ↗ · 2026-09-15 Cached

This paper introduces Solar Intelligence, a hybrid retrieval-augmented framework that unifies solar data analytics, evidence-grounded scientific question answering, and machine learning forecasting to support decision-making in solar energy.

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#forecasting

In 2025, experts estimated a 10% chance that AI would solve or substantially assist in solving a Millennium Prize Problem by 2027

Reddit r/singularity ↗ · 2026-09-10

In 2025, experts estimated a 10% chance that AI would solve or substantially assist in solving a Millennium Prize Problem by 2027.

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#forecasting

Competence-Gated Pooling of Language Models and Priors for Event Forecasting

Hugging Face Daily Papers ↗ · 2026-09-10 Cached

This paper introduces competence-gated pooling to determine when language models should influence forecasts that already have external predictions, improving accuracy by learning domain-specific weights and deferring when external sources are stronger.

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#forecasting

IBM releases SOTA Granite Time Series PatchTST-FM-r2 model with commercial-friendly license

Hugging Face Blog ↗ · 2026-09-09 Cached

IBM released the Granite Time Series PatchTST-FM-r2 model, a 385M-parameter foundation model for zero-shot time-series forecasting with top performance on the GIFT-Eval benchmark and a commercial-friendly Apache 2.0 license.

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#forecasting

NOAH: Learning the Full Patient Journey. A Longitudinal Multimodal Time-Aware Model for Representation and Forecasting

Hugging Face Daily Papers ↗ · 2026-09-08 Cached

NOAH introduces a generative transformer model for comprehensive representation and forecasting of longitudinal multimodal patient data, enabling tasks like zero-shot classification and counterfactual simulation in clinical settings.

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#forecasting

Is ai-2027.com still on track?

Reddit r/singularity ↗ · 2026-09-06

A discussion checking whether ai-2027.com's month-by-month AGI and superintelligence forecasting timeline, released by the AI Futures Project in April 2025, remains accurate and what its continued validity would imply.

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#forecasting

A Two-Stage Forecasting System for CPU Workload Prediction in Private Clouds

arXiv cs.LG ↗ · 2026-09-04 Cached

This paper proposes a two-stage integrated forecasting model using XGBoost to predict CPU workload in private clouds by first forecasting customer service requests, achieving high accuracy with SMAPE below 7% for most applications.

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#forecasting

Introducing WeatherNext 3, our most advanced and accurate global weather AI model

Google DeepMind Blog ↗ · 2026-09-03 Cached

Google DeepMind and Google Research introduce WeatherNext 3, an advanced AI weather model that uses real-time satellite data for high-resolution, hourly forecasts integrated across Google products.

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#forecasting

OutageDiT: A Generative Foundation Model for Power Outage Forecasting and Scenario Simulation

arXiv cs.LG ↗ · 2026-09-03 Cached

OutageDiT is a generative foundation model for power outage forecasting that uses a Diffusion Transformer architecture to generate seven-day outage trajectories, improving forecast accuracy and enabling zero-shot transfer to new regions.

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#forecasting

@joshua_saxe: A group of us from the AI grantmaking orgs, AI labs, natsec policy and cyber worlds are creating an AI Cybersecurity Ob…

X AI KOLs Timeline ↗ · 2026-09-02 Cached

A group from AI and cybersecurity sectors is founding an AI Cybersecurity Observatory to provide data-driven insights on AI automated cyberattacks for policymakers and defenders.

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#forecasting

Sparse Koopman Autoencoders Identify Local Dynamical Regimes in Multibasin Systems

arXiv cs.LG ↗ · 2026-09-01 Cached

This paper introduces Sparse Koopman Autoencoders (SKAEs) to identify local dynamical regimes in multibasin nonlinear systems, demonstrating superior forecasting performance and interpretable latent supports.

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#forecasting

TimesFM-3: A zero-shot foundation model for multivariate forecasting

Reddit r/singularity ↗ · 2026-09-01 Cached

Google introduces TimesFM-3, a state-of-the-art zero-shot foundation model for multivariate time series forecasting, capable of handling multiple targets and covariates in a single forward pass without fine-tuning.

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#forecasting

Technical Comparative Benchmarking Study: Advanced AI Hybrid Methods for Renewable Energy Farm Optimization and Forecasting

arXiv cs.LG ↗ · 2026-08-28 Cached

A comparative benchmarking study evaluates various AI methods for renewable energy farm optimization and forecasting, showing that ensemble and hybrid approaches excel in different data scenarios.

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#forecasting

LLM Agents for Time-Series: A Survey

arXiv cs.AI ↗ · 2026-08-28 Cached

A survey paper that categorizes LLM-based agents for time-series tasks into four categories and provides a task-oriented guide for design and future research.

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#forecasting

Will the AI boom continue? Forecasting the trajectory of the AI industry (11 minute read)

TLDR AI ↗ · 2026-08-28 Cached

The article forecasts the AI industry's trajectory using expert predictions, highlighting continued revenue growth for companies like Anthropic and OpenAI, and significant increases in data center investment despite regulatory challenges.

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