Search Results - ML: Deep Learning Algorithms

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  1. 1

    CT image reconstruction: integrating iterative methods with Ml-EM algorithm and deep learning models by Pham, Cong Thang, Tran, Thi Thu Thao, Huynh, Duc Anh Bao, Nguyen, Quoc Cuong, Nguyen, Tien Hung

    ISSN: 2226-4116, 2226-4116
    Published: 30.09.2024
    Published in Cybernetics and physics (30.09.2024)
    “… Sinograms represent X-ray absorption throughout the body, and sophisticated image reconstruction methods, including machine learning algorithms and generative adversarial networks (GANs…”
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    Journal Article
  2. 2

    Application of machine learning, deep learning and optimization algorithms in geoengineering and geoscience: Comprehensive review and future challenge by Zhang, Wengang, Gu, Xin, Tang, Libin, Yin, Yueping, Liu, Dongsheng, Zhang, Yanmei

    ISSN: 1342-937X, 1878-0571
    Published: Elsevier B.V 01.09.2022
    Published in Gondwana research (01.09.2022)
    “… On the other hand, Machine learning (ML), Deep Learning (DL) and Optimization Algorithm (OA) provide the ability to learn…”
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    Journal Article
  3. 3

    Machine learning and deep learning algorithms in stroke medicine: a systematic review of hemorrhagic transformation prediction models by Issaiy, Mahbod, Zarei, Diana, Kolahi, Shahriar, Liebeskind, David S.

    ISSN: 0340-5354, 1432-1459, 1432-1459
    Published: Berlin/Heidelberg Springer Berlin Heidelberg 01.01.2025
    Published in Journal of neurology (01.01.2025)
    “… Recent research has explored machine learning (ML) and deep learning (DL) algorithms for stroke management…”
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    Journal Article
  4. 4

    Comparing machine and deep learning‐based algorithms for prediction of clinical improvement in psychosis with functional magnetic resonance imaging by Smucny, Jason, Davidson, Ian, Carter, Cameron S.

    ISSN: 1065-9471, 1097-0193, 1097-0193
    Published: Hoboken, USA John Wiley & Sons, Inc 01.03.2021
    Published in Human brain mapping (01.03.2021)
    “…) algorithms and deep learning (DL) to predict “Improver” status (>20% improvement on Brief Psychiatric Rating Scale [BPRS] total score at 1‐year follow‐up vs. baseline…”
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    Journal Article
  5. 5

    Glaucoma diagnosis using multi-feature analysis and a deep learning technique by Akter, Nahida, Fletcher, John, Perry, Stuart, Simunovic, Matthew P., Briggs, Nancy, Roy, Maitreyee

    ISSN: 2045-2322, 2045-2322
    Published: London Nature Publishing Group UK 16.05.2022
    Published in Scientific reports (16.05.2022)
    “…) were collected based on structural, functional, demographic and risk factors. The features were statistically analyzed, and the most significant four features were used to train machine learning (ML) algorithms. Two ML algorithms: deep learning (DL…”
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  6. 6

    SLAM in Dynamic Environments: A Deep Learning Approach for Moving Object Tracking Using ML-RANSAC Algorithm by Bahraini, Masoud S., Rad, Ahmad B., Bozorg, Mohammad

    ISSN: 1424-8220, 1424-8220
    Published: Switzerland MDPI AG 26.08.2019
    Published in Sensors (Basel, Switzerland) (26.08.2019)
    “… We propose an algorithm that integrates SLAM with multi-target tracking (SLAMMTT) using a robust feature-tracking algorithm for dynamic environments…”
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    Journal Article
  7. 7

    Comparison of various machine learning algorithms used for compressive strength prediction of steel fiber-reinforced concrete by Pakzad, Seyed Soroush, Roshan, Naeim, Ghalehnovi, Mansour

    ISSN: 2045-2322, 2045-2322
    Published: London Nature Publishing Group UK 04.03.2023
    Published in Scientific reports (04.03.2023)
    “… The presented paper aims to use machine learning (ML) and deep learning (DL) algorithms to predict the CS of steel fiber reinforced concrete (SFRC…”
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  8. 8

    Benchmarking Machine Learning Algorithms on Blood Glucose Prediction for Type I Diabetes in Comparison With Classical Time-Series Models by Xie, Jinyu, Wang, Qian

    ISSN: 0018-9294, 1558-2531, 1558-2531
    Published: United States IEEE 01.11.2020
    “…) levels using time-series data of patients with Type 1 diabetes (T1D). Methods: The ML algorithms include ML-based regression models and deep learning models such as a vanilla Long-Short-Term-Memory (LSTM…”
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  9. 9

    Artificial intelligence and machine learning in design of mechanical materials by Guo, Kai, Yang, Zhenze, Yu, Chi-Hua, Buehler, Markus J

    ISSN: 2051-6355, 2051-6355
    Published: England 01.04.2021
    Published in Materials horizons (01.04.2021)
    “…Artificial intelligence, especially machine learning (ML) and deep learning (DL) algorithms, is becoming an important tool in the fields of materials…”
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  10. 10

    Mapping wetland habitat health in moribund deltaic India using machine learning and deep learning algorithms by Paul, Satyajit, Pal, Swades

    ISSN: 1642-3593
    Published: Elsevier B.V 01.07.2024
    Published in Ecohydrology & Hydrobiology (01.07.2024)
    “…Researchers have increasingly integrated machine learning (ML) and deep learning (DL) algorithms to forecast the risk, vulnerability, and susceptibility of various geo-environmental challenges…”
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  11. 11

    Advanced Deep Learning and Machine Learning Techniques for MRI Brain Tumor Analysis: A Review by Missaoui, Rim, Hechkel, Wided, Saadaoui, Wajdi, Helali, Abdelhamid, Leo, Marco

    ISSN: 1424-8220, 1424-8220
    Published: Switzerland MDPI AG 26.04.2025
    Published in Sensors (Basel, Switzerland) (26.04.2025)
    “…), and how machine learning (ML) and deep learning (DL) algorithms might be combined with clinical assessments to improve brain tumor diagnosis…”
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  12. 12

    Predicting sex, age, general cognition and mental health with machine learning on brain structural connectomes by Yeung, Hon Wah, Stolicyn, Aleks, Buchanan, Colin R., Tucker‐Drob, Elliot M., Bastin, Mark E., Luz, Saturnino, McIntosh, Andrew M., Whalley, Heather C., Cox, Simon R., Smith, Keith

    ISSN: 1065-9471, 1097-0193, 1097-0193
    Published: Hoboken, USA John Wiley & Sons, Inc 01.04.2023
    Published in Human brain mapping (01.04.2023)
    “… algorithms from deep learning (DL) model (BrainNetCNN) to classical ML methods. We modelled N = 8183 structural connectomes from UK Biobank using six different structural network weightings obtained from diffusion MRI…”
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  13. 13

    Review of Machine Learning Algorithms for Diagnosing Mental Illness by Cho, Gyeongcheol, Yim, Jinyeong, Choi, Younyoung, Ko, Jungmin, Lee, Seoung-Hwan

    ISSN: 1738-3684
    Published: Korea (South) 01.04.2019
    Published in Psychiatry investigation (01.04.2019)
    “…, ML techniques can settle a problem of small sample size, or deep learning is the ML algorithm…”
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  14. 14

    Applications of machine and deep learning to patient‐specific IMRT/VMAT quality assurance by Osman, Alexander F. I., Maalej, Nabil M.

    ISSN: 1526-9914, 1526-9914
    Published: Malden Massachusetts John Wiley & Sons, Inc 01.09.2021
    “… Over the past 5 years, machine learning (ML) and deep learning (DL) algorithms for predictions of IMRT/VMAT QA outcome have been investigated…”
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  15. 15

    Diagnostic accuracy of machine learning algorithms in electrocardiogram-based sleep apnea detection: A systematic review and meta-analysis by Kilic, Mustafa Eray, Arayici, Mehmet Emin, Turan, Oguzhan Ekrem, Yilancioglu, Yigit Resit, Ozcan, Emin Evren, Yilmaz, Mehmet Birhan

    ISSN: 1087-0792, 1532-2955, 1532-2955
    Published: England Elsevier Ltd 01.06.2025
    Published in Sleep medicine reviews (01.06.2025)
    “… This meta-analysis aims to evaluate the diagnostic accuracy of machine learning (ML) and deep learning (DL) algorithms in detecting sleep apnea patterns from single-lead ECG data…”
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    Journal Article
  16. 16

    Artificial intelligence in liver cancers: Decoding the impact of machine learning models in clinical diagnosis of primary liver cancers and liver cancer metastases by Bakrania, Anita, Joshi, Narottam, Zhao, Xun, Zheng, Gang, Bhat, Mamatha

    ISSN: 1043-6618, 1096-1186, 1096-1186
    Published: Netherlands Elsevier Ltd 01.03.2023
    Published in Pharmacological research (01.03.2023)
    “… A growing body of recent studies have evaluated machine learning (ML) and deep learning (DL) algorithms for pre-screening, diagnosis and management of liver cancer…”
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  17. 17

    Artificial intelligence in the prediction of protein–ligand interactions: recent advances and future directions by Dhakal, Ashwin, McKay, Cole, Tanner, John J, Cheng, Jianlin

    ISSN: 1467-5463, 1477-4054, 1477-4054
    Published: England Oxford University Press 17.01.2022
    Published in Briefings in bioinformatics (17.01.2022)
    “… Next, we review databases that are commonly used in the domain of protein–ligand interactions. Finally, we survey and analyze the machine learning…”
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  18. 18

    A review of vibration-based damage detection in civil structures: From traditional methods to Machine Learning and Deep Learning applications by Avci, Onur, Abdeljaber, Osama, Kiranyaz, Serkan, Hussein, Mohammed, Gabbouj, Moncef, Inman, Daniel J.

    ISSN: 0888-3270, 1096-1216, 1096-1216
    Published: Berlin Elsevier Ltd 15.01.2021
    Published in Mechanical systems and signal processing (15.01.2021)
    “…•The transition from traditional methods to ML and DL has never been discussed for vibration-based SDD…”
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  19. 19

    Drone Image Segmentation Using Machine and Deep Learning for Mapping Raised Bog Vegetation Communities by Bhatnagar, Saheba, Gill, Laurence, Ghosh, Bidisha

    ISSN: 2072-4292, 2072-4292
    Published: Basel MDPI AG 01.08.2020
    Published in Remote sensing (Basel, Switzerland) (01.08.2020)
    “… The mapping, carried out through image segmentation or semantic segmentation, was performed using machine learning (ML) and deep learning (DL) algorithms…”
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  20. 20

    Recent applications of machine learning and deep learning models in the prediction, diagnosis, and management of diabetes: a comprehensive review by Afsaneh, Elaheh, Sharifdini, Amin, Ghazzaghi, Hadi, Ghobadi, Mohadeseh Zarei

    ISSN: 1758-5996, 1758-5996
    Published: London BioMed Central 27.12.2022
    Published in Diabetology and metabolic syndrome (27.12.2022)
    “… This review surveys the recently proposed machine learning (ML) and deep learning (DL) models for the objectives mentioned earlier…”
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