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#clinical-data

@MaziyarPanahi: We got 755 tokens per second! That's OpenMed privacy-filter v2 (nemotron, MLX 8-bit) reading a 13,000-token clinical fi…

X AI KOLs Timeline · 2026-07-04 Cached

OpenMed privacy-filter v2 using nemotron and MLX 8-bit achieves 755 tokens per second on a Mac, redacting 1,152 PII identifiers across 22 categories from a 13,000-token clinical file without data leaving the machine.

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#clinical-data

A Filtered Mixture-of-Generators for Fully Synthetic Survival Training

arXiv cs.LG · 2026-07-02 Cached

This paper introduces FoGS, a filtered mixture-of-generators pipeline that selects synthetic samples from multiple generative models to improve survival analysis training, outperforming real-data training on many datasets while preserving privacy.

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#clinical-data

LLM Doesn't Know What It Doesn't Know: Detecting Epistemic Blind Spots via Cross-Model Attribution Divergence on Clinical Tabular Data

arXiv cs.AI · 2026-06-20 Cached

This paper explores Large Language Models' inability to recognize their knowledge limits on structured clinical data, proposing a cross-model attribution divergence method to detect epistemic blind spots. The approach improves calibration and accuracy without training by combining few-shot examples and SHAP-derived feature evidence.

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#clinical-data

PSyGenTAB: A Privacy-Preserving Framework for Synthetic Clinical Tabular Data Generation via Constrained Optimization

arXiv cs.LG · 2026-06-18 Cached

PSyGenTAB is a privacy-preserving framework that uses constrained optimization to generate synthetic clinical tabular data, balancing privacy and utility while preserving clinical relationships and minority-class patterns.

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#clinical-data

Multi-Modal Machine Learning for Breast Cancer Recurrence Prediction

arXiv cs.LG · 2026-06-03 Cached

This paper examines the integration of multi-modal clinical data, including treatment records, pathology reports, and clinician notes, using rule-based extraction and machine learning to improve breast cancer recurrence prediction compared to single-modal approaches.

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#clinical-data

Parallel Adaptive Multi-Objective Evolutionary Learning of Discretized Bayesian Network Classifiers for Clinical Data

arXiv cs.LG · 2026-05-29 Cached

This paper introduces a parallelization strategy and adaptive steering mechanism for the Baymex algorithm to efficiently learn discretized Bayesian network classifiers for clinical data, achieving speedups over 54x on a 16-core CPU and comparable or better predictive performance than traditional models while maintaining explainability.

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#clinical-data

Knowledge Graph Modulated Deep Learning for Limited-Sample Clinical Data Analysis

arXiv cs.LG · 2026-05-26 Cached

GiG is a knowledge graph-modulated deep learning framework that integrates biological knowledge graphs as edges and patient-specific data as node features, outperforming SOTA by up to 49% in limited-sample clinical tasks.

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#clinical-data

Evaluating the Utility of Personal Health Records in Personalized Health AI

arXiv cs.AI · 2026-05-20 Cached

This study evaluates the use of large language models (Gemini 3.0 Flash) with personal health records to answer patient health queries, finding significant improvements in helpfulness, safety, and personalization when PHR context is provided.

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