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Ke Wan

4 accepted papers

2026

Bridging Dynamics and Data: A Unified Diffusion Framework for Mechanistically-Informed Epidemic Forecasting

ICML 2026poster

Reliable epidemic forecasting is critical for public health decision-making yet remains challenging due to data sparsity and the non-stationary nature of disease dynamics. While recent hybrid models attempt to integrate mechanistic principles with data-driven approaches, they often relegate mechanis…

Cited by 0SourceScholar
2026

GIST: Targeted Data Selection for Instruction Tuning via Coupled Optimization Geometry

ICML 2026poster

Targeted data selection has emerged as a crucial paradigm for efficient instruction tuning, aiming to identify a small yet influential subset of training examples for a specific target task. In practice, influence is often measured through the effect of an example on parameter updates. To make selec…

Cited by 0SourceScholar
2026

Inferring the Invisible: Neuro-Symbolic Rule Discovery for Missing Value Imputation

ICLR 2026poster

One of the central challenges in artificial intelligence is reasoning under partial observability, where key values are missing but essential for understanding and modeling the system. This paper presents a neuro-symbolic framework for latent rule discovery and missing value imputation. In contrast…

Cited by 0SourceScholar
2025

R-KV: Redundancy-aware KV Cache Compression for Reasoning Models

NeurIPS 2025poster

Reasoning models have demonstrated impressive performance in self-reflection and chain-of-thought reasoning. However, they often produce excessively long outputs, leading to prohibitively large key-value (KV) caches during inference. While chain-of-thought inference significantly improves performanc…

Cited by 0SourceScholar