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541
Optimal Res-UNET architecture with deep supervision for tumor segmentation
Published 2025-05-01Get full text
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542
Automatic Tissue Differentiation in Parotidectomy using Hyperspectral Imaging
Published 2024-12-01“…In head and neck surgery, continuous intraoperative tissue differentiation is of great importance to avoid injury to sensitive structures such as nerves and vessels. Hyperspectral imaging (HSI) with neural network analysis could support the surgeon in tissue differentiation. …”
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543
Comparative geographical analysis of student mental maps of Stavropol and Pyatigorsk
Published 2024-06-01Get full text
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544
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545
Achieving flexible fairness metrics in federated medical imaging
Published 2025-04-01Get full text
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546
Advancements in image classification for environmental monitoring using AI
Published 2025-03-01“…IntroductionAccurate environmental image classification is essential for ecological monitoring, climate analysis, disaster detection, and sustainable resource management. …”
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547
Functional network reorganization and memory impairment in unruptured brain arteriovenous malformations
Published 2025-04-01Get full text
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548
Aberrant dynamic functional network connectivity in patients with diffuse axonal injury
Published 2024-11-01“…This study aimed to examine the characteristics of static and dynamic functional network connectivity (FNC) in patients with DAI. Resting-state functional magnetic resonance imaging data were collected from 26 patients with DAI and 27 healthy controls. …”
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549
Developing an artificial intelligence-based progressive growing GAN for high-quality facial profile generation and evaluation through turing test and aesthetic analysis
Published 2025-07-01“…Abstract This study aimed to develop a Progressive Growing Generative Adversarial Network with Gradient Penalty (WPGGAN-GP) to generate high-quality facial profile images, addressing the scarcity of diverse training data in orthodontics. …”
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550
AI-Powered Spectral Imaging for Virtual Pathology Staining
Published 2025-06-01“…Unstained human biopsy samples are scanned, and a Pix2Pix-based neural network generates realistic H&E-equivalent images. …”
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551
Automating field‐based floral surveys with machine learning
Published 2024-10-01Get full text
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552
YOLOv8 with Post-Processing for Small Object Detection Enhancement
Published 2025-06-01Get full text
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553
Advancing Progressive Web Applications to Leverage Medical Imaging for Visualization of Digital Imaging and Communications in Medicine and Multiplanar Reconstruction: Software Deve...
Published 2024-12-01“… BackgroundIn medical imaging, 3D visualization is vital for displaying volumetric organs, enhancing diagnosis and analysis. …”
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554
NEW EVALUATION METHOD FOR EFFICACY OF HYPOTENSIVE TREATMENT WITH ACE INHIBITORS
Published 2003-06-01“…The method is based upon primary analysis of daily blood pressure monitoring data with subsequent transformation into a graphic form of BP values likelihood distribution over a plane. …”
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555
Multi-modal denoised data-driven milling chatter detection using an optimized hybrid neural network architecture
Published 2025-01-01“…To address the low accuracy in chatter detection caused by the limitations of both one-dimensional temporal and two-dimensional image modal information, this study proposes a multi-modal denoised data-driven milling chatter detection method using an optimized hybrid neural network architecture. …”
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556
Image recoloring detection based on inter-channel correlation
Published 2022-10-01“…Image recoloring is an emerging editing technique that can change the color style of an image by modifying pixel values.With the rapid proliferation of social networks and image editing techniques, recolored images have seriously hampered the authenticity of the communicated information.However, there are few works specifically designed for image recoloring.Existing recoloring detection methods still have much improvement space in conventional recoloring scenarios and are ineffective in dealing with hand-crafted recolored images.For this purpose, a recolored image detection method based on inter-channel correlation was proposed for conventional recoloring and hand-crafted recoloring scenarios.Based on the phenomenon that there were significant disparities between camera imaging and recolored image generation methods, the hypothesis that recoloring operations might destroy the inter-channel correlation of natural images was proposed.The numerical analysis demonstrated that the inter-channel correlation disparities can be used as an important discriminative metric to distinguish between recolored images and natural images.Based on such new prior knowledge, the proposed method obtained the inter-channel correlation feature set of the image.The feature set was extracted from the channel co-occurrence matrix of the first-order differential residuals of the differential image.In addition, three detection scenarios were assumed based on practical situations, including scenarios with matching and mismatching between training-testing data, and scenario with hand-crafted recoloring.Experimental results show that the proposed method can accurately identify recolored images and outperforms existing methods in all three hypothetical scenarios, achieving state-of-the-art detection accuracy.In addition, the proposed method is less dependent on the amount of training data and can achieve fairly accurate prediction results with limited training data.…”
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557
The TESS Ten Thousand Catalog: 10,001 Uniformly Vetted and Validated Eclipsing Binary Stars Detected in Full-frame Image Data by Machine Learning and Analyzed by Citizen Scientists
Published 2025-01-01“…We combed Sectors 1–82 of the TESS full-frame image data searching for eclipsing binary stars using a neural network that identified ∼1.2 million stars with eclipse-like features. …”
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558
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559
Development and evaluation of machine learning models for premixed flame classification in different hydrogen-natural gas proportions using images and audio
Published 2025-09-01“…A comprehensive analysis was conducted using audio signals, which were converted into Mel spectrograms, alongside image data. …”
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560
Enhancing Diabetic Foot Ulcer Classification Through Fine-Tuned Multilevel CNN
Published 2025-01-01Get full text
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