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T. Konstantin Rusch

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#artificial intelligence Preprint Oct 2026

Efficient Reasoning with Flow Language Models

Flow Language Models (FLMs) have emerged as a continuous-state alternative to discrete diffusion language models, yet the role of their continuous representations in reasoning remains unclear. We investigate this question by comparing the reasoning efficiency of FLMs and discrete diffusion models, measured by solution...

Han-Ru Bai, Faissal Izermine, Oscar Davis et al. · 0 citations
#machine learning Preprint Sep 2026

Looped Actor: Depth-Recurrent Reasoning Models for Reinforcement Learning

Looped reasoning models repeatedly apply a shared set of parameters, enabling more computation without increasing the model size. These models also support input-dependent computation by dynamically deciding when to stop looping. Motivated by the recent success of looped transformers in language modeling and reasoning,...

T. Konstantin Rusch, T. Seyde, J. Boyer et al. · 0 citations

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