Region-Disentangled Diffusion Model for High-Fidelity PPG-to-ECG Translation
Debaditya Shome, Pritam Sarkar, Ali Etemad

TL;DR
This paper introduces RDDM, a novel diffusion model that selectively adds noise to specific regions of ECG signals to improve PPG-to-ECG translation, achieving high fidelity and efficiency.
Contribution
The paper presents the first diffusion model tailored for cross-modal bio-signal translation, with a region-disentangled process for improved ECG synthesis from PPG.
Findings
RDDM can generate high-fidelity ECG from PPG in as few as 10 diffusion steps.
RDDM achieves state-of-the-art performance on the CardioBench evaluation benchmark.
The model effectively disentangles ROI and non-ROI regions for better signal reconstruction.
Abstract
The high prevalence of cardiovascular diseases (CVDs) calls for accessible and cost-effective continuous cardiac monitoring tools. Despite Electrocardiography (ECG) being the gold standard, continuous monitoring remains a challenge, leading to the exploration of Photoplethysmography (PPG), a promising but more basic alternative available in consumer wearables. This notion has recently spurred interest in translating PPG to ECG signals. In this work, we introduce Region-Disentangled Diffusion Model (RDDM), a novel diffusion model designed to capture the complex temporal dynamics of ECG. Traditional Diffusion models like Denoising Diffusion Probabilistic Models (DDPM) face challenges in capturing such nuances due to the indiscriminate noise addition process across the entire signal. Our proposed RDDM overcomes such limitations by incorporating a novel forward process that selectively adds…
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Taxonomy
TopicsECG Monitoring and Analysis · Non-Invasive Vital Sign Monitoring · Heart Rate Variability and Autonomic Control
MethodsDiffusion
