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A mathematical model for predicting the spatiotemporal response of breast cancer cells treated with doxorubicin
Published 2024-12-01“…To better personalize therapies, it is essential to develop tools capable of identifying and predicting intra- and inter-tumor heterogeneities. Biology-inspired mathematical models are capable of attacking this problem, but tumor heterogeneity is often overlooked in in-vivo modeling studies, while phenotypic considerations capturing spatial dynamics are not typically included in in-vitro modeling studies. …”
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542
Simulation and Prediction of Spring Snow Cover in Northern Hemisphere by CMIP6 Model
Published 2024-12-01“…As one of the most sensitive natural elements in response to climate change, snow cover has a significant effect on the Earth's surface radiation balance and water cycle.The global snow cover area is approximately 46×106 km2 and 98% of the snow cover distributed in the Northern Hemisphere.Due to its distinctive radiative properties (high surface albedo) and thermal characteristics (low thermal conductivity), changes in snow cover play a crucial role in the energy balance and water cycle between land and the atmosphere.In the context of global warming, the snow cover in the Northern Hemisphere has been decreasing in recent decades, especially in the spring.Therefore, the capabilities of CMIP6 (Coupled Model Intercomparison Project Phase 6) data to simulate the snow cover area were evaluated based on observational data and the future changes in snow cover were also assessed using a multi-model average in this study.By using the snow cover products from the National Oceanic and Atmospheric Administration/National Climatic Data Center (NOAA/NCDC) as reference data, the Taylor skill scoring, relative deviation, and other methods were applied to evaluate the spring snow cover (SCF) data in the Northern Hemisphere from the International Coupled Model Comparison Project Phase 6 (CMIP6) during 1982 -2014.The ensemble average of the top three models was further selected to predict the spatiotemporal variation characteristics of SCF under different emission scenarios from 2015 to 2099, providing insights into the modeling capabilities of CMIP6 and future changes in SCF.During the historical period (1982 -2014), SCF was characterized by high coverage at high latitudes and low coverage at low latitudes, with high-altitude regions such as Tibetan Plateau and eastern Asia having higher snow coverage than those at the same latitudes.Overall, 68.37% of the regions in the Northern Hemisphere showed a decreasing trend in SCF, while 31.63% of the regions showed an increasing trend in SCF.Most CMIP6 models overestimated SCF in the Tibetan Plateau region compared to the reference data.In addition, most models simulated larger areas with a decreasing trend in SCF than those evaluated by the reference data and underestimated SCF in March, April, and May.Various models exhibited differing abilities to simulate SCF, with NorESM2-MM, CESM2, BBC-CSM2-MR, NorESM2-LM, and CESM2-WACCM demonstrating superior capabilities.The Multi-Model Ensemble Mean (MME) consistently outperformed individual models, closely aligning with observational data.There were significant differences in the ability of the CMIP6 models to simulate the spatial distribution, inter-annual variation trends, and intra-annual variations of SCF in the Northern Hemisphere.At the end of the 21st-century (2067 -2099), SCF in the Northern Hemisphere exhibited a decreasing trend in most areas, which intensifies with increasing emission intensity.The changes in SCF were relatively consistent under different emission scenarios before 2040.SCF maintains a steady state under the SSP1-2.6 scenario, showed a slight decreasing trend under the SSP2-4.5 scenario, and showed a significant decreasing trend under the SSP5-8.5 scenario after 2040.…”
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543
Comparision of Kernel Functions in Geographically Weighted Regression Model: Suicide Data as an Application
Published 2021-12-01“…In this study, the number of suicides data was used for Turkey’s 81 provinces in 2019.The effects of factors affecting suicide and spatial differences on suicide were analyzed and predicted with geographically weighted regression models (GWR). …”
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544
PVD-GSTPS: design of an efficient parallel vehicle detection based green signal time prediction system
Published 2025-07-01“…These advancements are essential for effectively predicting vehicle Green Signal Time by considering accurate detection and tracking, Spatial Occupancy calculation, long-term dependencies, and non-linear relationships in traffic data. …”
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545
Federated Learning Enhanced MLP–LSTM Modeling in an Integrated Deep Learning Pipeline for Stock Market Prediction
Published 2024-10-01“…The research intends to use the LSTM networks extensively that are proficient in spatial dependence capturing and integrate them with the collaborative learning framework of Federated Learning in an endeavor to augment the predictive competency. …”
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546
NDVI Prediction with RGB UAV Imagery Utilizing Advanced Machine Learning Regression Models
Published 2025-05-01Get full text
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547
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548
A framework for continual learning in real-time traffic forecasting utilizing spatial–temporal graph convolutional recurrent networks
Published 2025-08-01“…Extensive experiments conducted on the PeMSD3, PeMSD4, PeMSD7, and PeMSD8 datasets reveal the superiority of the proposed models, STGCN-EWC, STGCN-MAS, and STGCN-SI models achieve significant reductions in error rates compared to baseline methodologies. …”
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549
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550
EMGP-Net: A Hybrid Deep Learning Architecture for Breast Cancer Gene Expression Prediction
Published 2025-06-01“…Recent studies have used whole-slide images combined with spatial transcriptomics data to predict breast cancer gene expression. …”
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551
Intelligent prediction method of virtual network function resource capacity for polymorphic network service slicing
Published 2022-06-01“…First, the time series of data stream used for prediction is subjected to two-stage weighting processing,and then the processed time series and its dependent spatial topology information are input into the network model for spatiotemporal feature extraction. …”
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552
Nonlinear prediction model of vehicle network traffic management based on the internet of things
Published 2025-12-01“…This research presents a novel nonlinear prediction model for Internet of Things (IoT) driven vehicle network traffic management. …”
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553
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Spatial and temporal evolution of carbon stocks in Yulin City under changing environments
Published 2025-04-01“…It then applies the PLUS model to predict the land use of Yulin City under different scenarios in 2030 and forecasts the future carbon stock, providing a theoretical basis for the city’s future development planning. …”
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555
Study on load reduction and vibration control strategies for semi-submersible offshore wind turbines
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556
Research Status and Development Direction of Formation Damage Prediction and Diagnosis Technologies
Published 2025-01-01“…This study systematically reviews advancements in formation damage prediction and diagnostics, focusing on wellsite diagnosis, experimental methods, imaging techniques, analytical approaches, numerical modeling, and artificial intelligence applications. …”
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557
CNN-based salient features in HSI image semantic target prediction
Published 2020-04-01Get full text
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558
Expanding cryospheric landform inventories – quantitative approaches for underestimated periglacial block- and talus slopes in the Dry Andes of Argentina
Published 2025-05-01“…Random forest models produce robust and transferable predictions of both target landforms, demonstrating a high predictive power (mean AUROC values ≥0.95 using non-spatial validation and ≥0.83 using spatial validation). …”
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559
USING THE SLEUTH MODEL TO SIMULATE FUTURE URBAN GROWTH IN THE GREATER EASTERN ATTICA AREA, GREECE
Published 2017-01-01Get full text
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560
USING THE SLEUTH MODEL TO SIMULATE FUTURE URBAN GROWTH IN THE GREATER EASTERN ATTICA AREA, GREECE
Published 2017-01-01Get full text
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