799 research outputs found
Self-adjustable domain adaptation in personalized ECG monitoring integrated with IR-UWB radar
To enhance electrocardiogram (ECG) monitoring systems in personalized detections, deep neural networks (DNNs) are applied to overcome individual differences by periodical retraining. As introduced previously [4], DNNs relieve individual differences by fusing ECG with impulse radio ultra-wide band (IR-UWB) radar. However, such DNN-based ECG monitoring system tends to overfit into personal small datasets and is difficult to generalize to newly collected unlabeled data. This paper proposes a self-adjustable domain adaptation (SADA) strategy to prevent from overfitting and exploit unlabeled data. Firstly, this paper enlarges the database of ECG and radar data with actual records acquired from 28 testers and expanded by the data augmentation. Secondly, to utilize unlabeled data, SADA combines self organizing maps with the transfer learning in predicting labels. Thirdly, SADA integrates the one-class classification with domain adaptation algorithms to reduce overfitting. Based on our enlarged database and standard databases, a large dataset of 73200 records and a small one of 1849 records are built up to verify our proposal. Results show SADA\u27s effectiveness in predicting labels and increments in the sensitivity of DNNs by 14.4% compared with existing domain adaptation algorithms
Atomic-resolution imaging of magnetism via ptychographic phase retrieval
Atomic-scale characterization of spin textures in solids is essential for
understanding and tuning properties of magnetic materials and devices. While
high-energy electrons are employed for atomic-scale imaging of materials, they
are insensitive to the spin textures. In general, the magnetic contribution to
the phase of high-energy electron wave is 1000 times weaker than the
electrostatic potential. Via accurate phase retrieval through electron
ptychography, here we show that the magnetic phase can be separated from the
electrostatic one, opening the door to atomic-resolution characterization of
spin textures in magnetic materials and spintronic devices.Comment: 20 pages, 9 figure
Deep Joint Source-Channel Coding for DNA Image Storage: A Novel Approach with Enhanced Error Resilience and Biological Constraint Optimization
In the current era, DeoxyriboNucleic Acid (DNA) based data storage emerges as
an intriguing approach, garnering substantial academic interest and
investigation. This paper introduces a novel deep joint source-channel coding
(DJSCC) scheme for DNA image storage, designated as DJSCC-DNA. This paradigm
distinguishes itself from conventional DNA storage techniques through three key
modifications: 1) it employs advanced deep learning methodologies, employing
convolutional neural networks for DNA encoding and decoding processes; 2) it
seamlessly integrates DNA polymerase chain reaction (PCR) amplification into
the network architecture, thereby augmenting data recovery precision; and 3) it
restructures the loss function by targeting biological constraints for
optimization. The performance of the proposed model is demonstrated via
numerical results from specific channel testing, suggesting that it surpasses
conventional deep learning methodologies in terms of peak signal-to-noise ratio
(PSNR) and structural similarity index (SSIM). Additionally, the model
effectively ensures positive constraints on both homopolymer run-length and GC
content
Information limit of 15 pm achieved with bright-field ptychography
It is generally assumed that a high spatial resolution of a microscope
requires a large numerical aperture of the imaging lens or detector. In this
study, the information limit of 15 pm is achieved in transmission electron
microscopy using only the bright-field disk (small numerical aperture) via
multislice ptychography. The results indicate that high-frequency information
has been encoded in the electrons scattered to low angles due to the multiple
scattering of electrons in the objects, making it possible to break the
diffraction limit of imaging via bright-field ptychography.Comment: 10 pages, 4 figure
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