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  1. 921

    YOLOv8-SC: an improved seafood target-detection model by Zhaofeng Cong, Fusheng Yu

    Published 2025-12-01
    “…It replaces the traditional C2f module with the Sequential Optimized Squeeze Excitation (SOSE) module to streamline the structure and reduce parameters. The model adopts a Bi-directional Feature Pyramid Network (BiFPN)-based architecture to improve accuracy without adding detection heads. …”
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  2. 922

    RDM-YOLO: A Lightweight Multi-Scale Model for Real-Time Behavior Recognition of Fourth Instar Silkworms in Sericulture by Jinye Gao, Jun Sun, Xiaohong Wu, Chunxia Dai

    Published 2025-07-01
    “…Methodologically, Res2Net blocks are first integrated into the backbone network to enable hierarchical residual connections, expanding receptive fields and improving multi-scale feature representation. Second, standard convolutional layers are replaced with distribution shifting convolution (DSConv), leveraging dynamic sparsity and quantization mechanisms to reduce computational complexity. …”
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  3. 923

    Clinical case of a patient with pulmonary capillary hemangiomatosis: rapid progression or lost time? by E. A. Devetyarova, T. V. Martynyuk, A. A. Dyuzhikov, E. V. Paschenko, A. V. Dyuzhikova

    Published 2021-11-01
    “…The article describes a clinical case of a 37-year-old patient with pulmonary capillary hemangiomatosis of functional class IV according to the WHO classification with difficulties of diagnostic search and features of PAH-specific therapy.Pulmonary arterial hypertension - group 1 in the clinical classification is represented by several forms of pathology, including very rare diseases such as pulmonary veno-occlusive disease and pulmonary capillary hemangiomatosis.The difficulties of diagnostic search consist in the absence of specific symptoms, a variety of interstitial or focal changes according to spiral computed tomography, and the final diagnosis can be made only after performing a lung biopsy, which is associated with a high risk of possible complications. …”
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  4. 924

    PONet: A Compact RGB-IR Fusion Network for Vehicle Detection on OrangePi AIpro by Junyu Huang, Jialing Lian, Fangyu Cao, Jiawei Chen, Renbo Luo, Jinxin Yang, Qian Shi

    Published 2025-07-01
    “…PONet incorporates Polarized Self-Attention to improve feature adaptability and representation with minimal computational overhead. …”
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  5. 925

    Deep Learning Innovations for Underwater Waste Detection: An In-Depth Analysis by Jaskaran Singh Walia, Kavietha Haridass, L. K. Pavithra

    Published 2025-01-01
    “…We investigate multiple architectures, including YOLOv8n, YOLOv7, YOLOv6s, YOLOv5s, Faster R-CNN, and Mask R-CNN, analyzing key parameters such as mean average precision (mAP), inference speed, and computational efficiency. …”
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  6. 926
  7. 927

    Exploration of geo-spatial data and machine learning algorithms for robust wildfire occurrence prediction by Svetlana Illarionova, Dmitrii Shadrin, Fedor Gubanov, Mikhail Shutov, Usman Tasuev, Ksenia Evteeva, Maksim Mironenko, Evgeny Burnaev

    Published 2025-03-01
    “…Conventional approaches primarily rely on the computation of fire indices based on weather conditions. …”
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  8. 928

    Identification and authentication of additively manufactured components using their microstructural fingerprint by Kanhaiya Gupta, Konstantin Poka, Alexander Ulbricht, Anja Waske

    Published 2025-06-01
    “…This study introduces a novel methodology that leverages the intrinsic microstructural features of additively manufactured components for their identification, authentication, and traceability. …”
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  9. 929

    AHP-based multi-criteria analysis of multi-cloud data management techniques by Anton Caceres, Larysa Globa

    Published 2025-02-01
    “…Their main advantages, disadvantages, and features of use are given. The research tasks are formalizing the problem, defining cost, performance, security, and implementation effort parameters for each approach, and developing a multi-criteria decision analysis (MCDA) model using the Analytical Hierarchy Process (AHP) method. …”
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  10. 930

    Parametric analysis of venturi-type microbubble generator and the bubble fragmentation dynamics by Yi Zhou, Jingyu Cui, Zhen Chen, Jiancong Liu, Lipeng He, Wei Fan, Mingxin Huo

    Published 2025-04-01
    “…Through a comprehensive analysis of suction performance, gas-phase transport modes, and bubble collapse kinetics, we analyzed structural parameters using computational fluid dynamics simulations. …”
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  11. 931

    Evaluation of Patients’ Received Doses in Chest CT Scan Protocols for COVID-19 Diagnosis by Sadegh Shurche, Tinoosh Almasi, Maryam Tima, Nima Rostampour

    Published 2025-01-01
    “… Purpose: This study aims to investigate and compare the doses received by Corona Virus Disease (Covid-19) patients on Computed Tomography (CT) scans by changing the scan parameters to diagnose the disease and evaluate its course and effects. …”
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  12. 932

    Design and Evaluation of Real-Time Data Storage and Signal Processing in a Long-Range Distributed Acoustic Sensing (DAS) Using Cloud-Based Services by Abdusomad Nur, Yonas Muanenda

    Published 2024-09-01
    “…Additionally, the impact of VM parameters on computation time is explored, highlighting the importance of resource optimization in the DAS system design for efficient performance. …”
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  13. 933

    Quantum chimp-enanced SqueezeNet for precise diabetic retinopathy classification by Anas Bilal, Muhammad Shafiq, Waeal J. Obidallah, Yousef A. Alduraywish, Alishba Tahir, Haixia Long

    Published 2025-04-01
    “…The novel methodology was divided into two main stages: feature extraction and classification. Firstly, SqueezeNet enables efficient feature extraction from segmented fundus images with minimal computational complexity, ensuring that critical retinal features are captured effectively. …”
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  14. 934

    Volume of Fluid (VOF) Method as a Suitable Method for Studying Droplet Formation in a Microchannel by Felipe Santos Paes da Silva, Paulo Noronha Lisboa-Filho

    Published 2025-06-01
    “…This study implements the Volume of Fluid (VOF) method to investigate key physical parameters, including droplet size and the effect of the capillary number on fluid regimes, in droplet generation within a microchannel featuring a T-junction geometry. …”
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  15. 935

    Classification of left and right-hand motor imagery in acute stroke patients using EEG microstate by Shiyang Lv, Xiangying Ran, Mengsheng Xia, Yehong Zhang, Ting Pang, Xuezhi Zhou, Zongya Zhao, Yi Yu, Zhixian Gao

    Published 2025-06-01
    “…Four EEG microstate (A, B, C, and D) were analyzed to extract temporal feature parameters, including Duration, Occurrence Coverage, and transition probabilities(TP). …”
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  16. 936

    Numerical Study of Optimal Temperature Sensor Placement in Multi-Apartment Buildings with Radiant Floor Heating by Guiqiang Wang, Shilu Li, Haiman Wang

    Published 2025-06-01
    “…Results indicate that the temperature sensors need to be placed on planes ranging from 1.0 m to 1.7 m, with each plane featuring a distinct optimal area. The RMSE analysis reveals that, despite obvious temperature variations across the residence, the root mean square errors (RMSEs) at the designated sensor locations remain consistently low, with a maximum of 0.35 °C and most values below 0.3 °C. …”
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  17. 937

    GaitCSF: Multi-Modal Gait Recognition Network Based on Channel Shuffle Regulation and Spatial-Frequency Joint Learning by Siwei Wei, Xiangyuan Xu, Dewen Liu, Chunzhi Wang, Lingyu Yan, Wangyu Wu

    Published 2025-06-01
    “…Subsequently, channel shuffling operations facilitate information exchange between different semantic groups, achieving adaptive enhancement and optimization of features with relatively low parameter overhead. The spatial-frequency joint learning module maps spatiotemporal features to the spectral domain through fast Fourier transform, effectively capturing inherent periodic patterns and long-range dependencies in gait sequences. …”
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  18. 938
  19. 939

    Research progress in globular fruit picking recognition algorithm based on deep learning by LI Hui, ZHANG Jun, YU Shuochen, LI Zhixin

    Published 2025-02-01
    “…Furthermore, with the increase of feature complexity and computation amount, the algorithm processing speed will be reduced. …”
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  20. 940

    Investigation of the profilogram structure of microstrip microwave modules manufactured using additive 3D-printing technology by D. S. Vorunichev, M. S. Kostin

    Published 2023-10-01
    “…The topological and radiophysical features of the additively formed upper and lower surface layers of experimental samples of boards of strip modules were studied. …”
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