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EACNet:Ensemble adversarial co-training neural network for handling missing modalities in MRI images for brain tumor segmentation
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作者 RAMADHAN Amran Juma CHEN Jing peng junlan 《Journal of Measurement Science and Instrumentation》 2025年第1期11-25,共15页
Brain tumor segmentation is critical in clinical diagnosis and treatment planning.Existing methods for brain tumor segmentation with missing modalities often struggle when dealing with multiple missing modalities,a co... Brain tumor segmentation is critical in clinical diagnosis and treatment planning.Existing methods for brain tumor segmentation with missing modalities often struggle when dealing with multiple missing modalities,a common scenario in real-world clinical settings.These methods primarily focus on handling a single missing modality at a time,making them insufficiently robust for the additional complexity encountered with incomplete data containing various missing modality combinations.Additionally,most existing methods rely on single models,which may limit their performance and increase the risk of overfitting the training data.This work proposes a novel method called the ensemble adversarial co-training neural network(EACNet)for accurate brain tumor segmentation from multi-modal magnetic resonance imaging(MRI)scans with multiple missing modalities.The proposed method consists of three key modules:the ensemble of pre-trained models,which captures diverse feature representations from the MRI data by employing an ensemble of pre-trained models;adversarial learning,which leverages a competitive training approach involving two models;a generator model,which creates realistic missing data,while sub-networks acting as discriminators learn to distinguish real data from the generated“fake”data.Co-training framework utilizes the information extracted by the multimodal path(trained on complete scans)to guide the learning process in the path handling missing modalities.The model potentially compensates for missing information through co-training interactions by exploiting the relationships between available modalities and the tumor segmentation task.EACNet was evaluated on the BraTS2018 and BraTS2020 challenge datasets and achieved state-of-the-art and competitive performance respectively.Notably,the segmentation results for the whole tumor(WT)dice similarity coefficient(DSC)reached 89.27%,surpassing the performance of existing methods.The analysis suggests that the ensemble approach offers potential benefits,and the adversarial co-training contributes to the increased robustness and accuracy of EACNet for brain tumor segmentation of MRI scans with missing modalities.The experimental results show that EACNet has promising results for the task of brain tumor segmentation of MRI scans with missing modalities and is a better candidate for real-world clinical applications. 展开更多
关键词 deep learning magnetic resonance imaging(MRI) medical image analysis semantic segmentation segmentation accuracy image synthesis
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CO_(2)地质封存过程的取热-储能利用理论与技术进展 被引量:1
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作者 杨子江 石宇 +4 位作者 彭俊岚 宋先知 梁瑶 赵晓彦 吴兵 《成都理工大学学报(自然科学版)》 CAS CSCD 北大核心 2024年第6期913-926,共14页
经济效应不佳是阻碍CO_(2)地质封存大规模推广的因素之一,进行单一CO_(2)地质封存无法满足工程项目的经济需求。将CO_(2)地质封存与其他能源开采系统相结合,是提高封存技术的灵活性、经济性和安全性的必然趋势。为此,对当前典型CO_(2)... 经济效应不佳是阻碍CO_(2)地质封存大规模推广的因素之一,进行单一CO_(2)地质封存无法满足工程项目的经济需求。将CO_(2)地质封存与其他能源开采系统相结合,是提高封存技术的灵活性、经济性和安全性的必然趋势。为此,对当前典型CO_(2)地质封存与取热-储能利用的工作原理和基本特征进行梳理。目前,CO_(2)增强型地热系统、CO_(2)羽流地热系统均已开展试验性项目,在储层参数、井参数、封存潜力等方面进行了探索分析,但地热系统经济性有待提高。压缩CO_(2)储能、CO_(2)地下储热仍处于理论研究阶段,以可行性和经济性分析为主。整体来看,CO_(2)能够有效提高系统取热储能效率,但CO_(2)在储层中的相互作用方式还不清楚,取热储能安全评价体系仍未建立,CO_(2)取热储能利用距离大规模应用还有一定差距。因此,未来可以从提高地热系统储热效率,发展能源开采联合系统,完善储能系统地下流动传热反应理论等方面推动CO_(2)地质封存与取热-储能利用的可行性。 展开更多
关键词 CO_(2)地质封存 地热开采 压缩CO_(2)储能 地下储热 碳中和
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不同油田废弃井型转地热开发规律与参数
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作者 石宇 彭俊岚 +3 位作者 孙文超 张宏源 刘斌 李冰 《华南师范大学学报(自然科学版)》 CAS 北大核心 2024年第4期27-38,共12页
为解决传统地下热水直接利用方式存在的潜在地质灾害和环境污染等问题,提出了一种“取热不取水”的、以同轴套管换热系统为关键系统的新型地热开发方式,建立了直井与多分支井同轴套管闭式换热系统数值模型,对比分析取热效果并开展了参... 为解决传统地下热水直接利用方式存在的潜在地质灾害和环境污染等问题,提出了一种“取热不取水”的、以同轴套管换热系统为关键系统的新型地热开发方式,建立了直井与多分支井同轴套管闭式换热系统数值模型,对比分析取热效果并开展了参数敏感性分析。结果表明:相同条件下,多分支井系统较直井系统具有更高的出口温度和取热功率,但导致注入压力显著上升。两种井型对于各参数的响应基本一致,仅程度不同,其中注入温度、流量、保温管长度、地层和水泥导热系数会显著影响系统的取热效果。该结果对深层地热开采的井型选择具有指导意义。 展开更多
关键词 地热能 同轴套管换热器 多分支井 数值模拟
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