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Performance of Conformal Prediction in Capturing Aleatoric Uncertainty

arXiv:2509.05826v2 Announce Type: replace Abstract: Conformal prediction is a model-agnostic approach to generating prediction sets that cover the true class with a high probability. Although its prediction set size is expected to capture aleatoric uncertainty, there is a lack of…

Bootstrap Off-policy with World Model

arXiv:2511.00423v2 Announce Type: replace Abstract: Online planning has proven effective in reinforcement learning (RL) for improving sample efficiency and final performance. However, using planning for environment interaction inevitably introduces a divergence between the collected data and the policy’s actual behaviors,…

Predicting Talent Breakout Rate using Twitter and TV data

arXiv:2511.16905v1 Announce Type: new Abstract: Early detection of rising talents is of paramount importance in the field of advertising. In this paper, we define a concept of talent breakout and propose a method to detect Japanese talents before their rise…

SCALEX: Scalable Concept and Latent Exploration for Diffusion Models

arXiv:2511.13750v2 Announce Type: replace Abstract: Image generation models frequently encode social biases, including stereotypes tied to gender, race, and profession. Existing methods for analyzing these biases in diffusion models either focus narrowly on predefined categories or depend on manual interpretation…