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PrefixGPT: Prefix Adder Optimization by a Generative Pre-trained Transformer

arXiv:2511.19472v1 Announce Type: new Abstract: Prefix adders are widely used in compute-intensive applications for their high speed. However, designing optimized prefix adders is challenging due to strict design rules and an exponentially large design space. We introduce PrefixGPT, a generative…

The Generalized Proximity Forest

arXiv:2511.19487v1 Announce Type: new Abstract: Recent work has demonstrated the utility of Random Forest (RF) proximities for various supervised machine learning tasks, including outlier detection, missing data imputation, and visualization. However, the utility of the RF proximities depends upon the…

Segmentation-Aware Generative Reinforcement Network (GRN) for Tissue Layer Segmentation in 3-D Ultrasound Images for Chronic Low-back Pain (cLBP) Assessment

arXiv:2501.17690v4 Announce Type: replace-cross Abstract: We introduce a novel segmentation-aware joint training framework called generative reinforcement network (GRN) that integrates segmentation loss feedback to optimize both image generation and segmentation performance in a single stage. An image enhancement technique called…

Generative Model-Aided Continual Learning for CSI Feedback in FDD mMIMO-OFDM Systems

arXiv:2511.19490v1 Announce Type: new Abstract: Deep autoencoder (DAE) frameworks have demonstrated their effectiveness in reducing channel state information (CSI) feedback overhead in massive multiple-input multiple-output (mMIMO) orthogonal frequency division multiplexing (OFDM) systems. However, existing CSI feedback models struggle to adapt…

Steganographic Backdoor Attacks in NLP: Ultra-Low Poisoning and Defense Evasion

arXiv:2511.14301v2 Announce Type: replace-cross Abstract: Transformer models are foundational to natural language processing (NLP) applications, yet remain vulnerable to backdoor attacks introduced through poisoned data, which implant hidden behaviors during training. To strengthen the ability to prevent such compromises, recent…

Modality-Balanced Collaborative Distillation for Multi-Modal Domain Generalization

arXiv:2511.20258v1 Announce Type: cross Abstract: Weight Averaging (WA) has emerged as a powerful technique for enhancing generalization by promoting convergence to a flat loss landscape, which correlates with stronger out-of-distribution performance. However, applying WA directly to multi-modal domain generalization (MMDG)…

RFX: High-Performance Random Forests with GPU Acceleration and QLORA Compression

arXiv:2511.19493v1 Announce Type: new Abstract: RFX (Random Forests X), where X stands for compression or quantization, presents a production-ready implementation of Breiman and Cutler’s Random Forest classification methodology in Python. RFX v1.0 provides complete classification: out-of-bag error estimation, overall and…

New York Smells: A Large Multimodal Dataset for Olfaction

arXiv:2511.20544v1 Announce Type: cross Abstract: While olfaction is central to how animals perceive the world, this rich chemical sensory modality remains largely inaccessible to machines. One key bottleneck is the lack of diverse, multimodal olfactory training data collected in natural…