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Optimised CNN Architectures for Handwritten Arabic Character Recognition
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作者 Salah Alghyaline 《Computers, Materials & Continua》 SCIE EI 2024年第6期4905-4924,共20页
Handwritten character recognition is considered challenging compared with machine-printed characters due to the different human writing styles.Arabic is morphologically rich,and its characters have a high similarity.T... Handwritten character recognition is considered challenging compared with machine-printed characters due to the different human writing styles.Arabic is morphologically rich,and its characters have a high similarity.The Arabic language includes 28 characters.Each character has up to four shapes according to its location in the word(at the beginning,middle,end,and isolated).This paper proposed 12 CNN architectures for recognizing handwritten Arabic characters.The proposed architectures were derived from the popular CNN architectures,such as VGG,ResNet,and Inception,to make them applicable to recognizing character-size images.The experimental results on three well-known datasets showed that the proposed architectures significantly enhanced the recognition rate compared to the baseline models.The experiments showed that data augmentation improved the models’accuracies on all tested datasets.The proposed model outperformed most of the existing approaches.The best achieved results were 93.05%,98.30%,and 96.88%on the HIJJA,AHCD,and AIA9K datasets. 展开更多
关键词 Optical character recognition(OCR) handwritten arabic characters deep learning
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Effect of Co on Solidification Characteristics and Microstructural Transformation of Non-equilibrium Solidified Cu-Ni Alloys
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作者 安红恩 Bih-Lii Chua +1 位作者 Ismail Saad Willey Yun Hsien Liew 《Journal of Wuhan University of Technology(Materials Science)》 SCIE EI CAS CSCD 2024年第2期444-453,共10页
Non-equilibrium solidification structures of Cu55Ni45 and Cu55Ni43Co2 alloys were prepared by the molten glass purification cycle superheating method.The variation of the recalescence phenomenon with the degree of und... Non-equilibrium solidification structures of Cu55Ni45 and Cu55Ni43Co2 alloys were prepared by the molten glass purification cycle superheating method.The variation of the recalescence phenomenon with the degree of undercooling in the rapid solidification process was investigated using an infrared thermometer.The addition of the Co element affected the evolution of the recalescence phenomenon in Cu-Ni alloys.The images of the solid-liquid interface migration during the rapid solidification of supercooled melts were captured by using a high-speed camera.The solidification rate of Cu-Ni alloys,with the addition of Co elements,was explored.Finally,the grain refinement structure with low supercooling was characterised using electron backscatter diffraction(EBSD).The effect of Co on the microstructural evolution during nonequilibrium solidification of Cu-Ni alloys under conditions of small supercooling is investigated by comparing the microstructures of Cu55Ni45 and Cu55Ni43Co2 alloys.The experimental results show that the addition of a small amount of Co weakens the recalescence behaviour of the Cu55Ni45 alloy and significantly reduces the thermal strain in the rapid solidification phase.In the rapid solidification phase,the thermal strain is greatly reduced,and there is a significant increase in the characteristic undercooling degree.Furthermore,the addition of Co and the reduction of Cu not only result in a lower solidification rate of the alloy,but also contribute to the homogenisation of the grain size. 展开更多
关键词 non-equilibrium solidification recalescence effect solidification character microstructure
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Instance Segmentation of Characters Recognized in Palmyrene Aramaic Inscriptions
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作者 Adéla Hamplová Alexey Lyavdansky +3 位作者 TomášNovák Ondrej Svojše David Franc Arnošt Veselý 《Computer Modeling in Engineering & Sciences》 SCIE EI 2024年第9期2869-2889,共21页
This study presents a single-class and multi-class instance segmentation approach applied to ancient Palmyrene inscriptions,employing two state-of-the-art deep learning algorithms,namely YOLOv8 and Roboflow 3.0.The go... This study presents a single-class and multi-class instance segmentation approach applied to ancient Palmyrene inscriptions,employing two state-of-the-art deep learning algorithms,namely YOLOv8 and Roboflow 3.0.The goal is to contribute to the preservation and understanding of historical texts,showcasing the potential of modern deep learning methods in archaeological research.Our research culminates in several key findings and scientific contributions.We comprehensively compare the performance of YOLOv8 and Roboflow 3.0 in the context of Palmyrene character segmentation—this comparative analysis mainly focuses on the strengths and weaknesses of each algorithm in this context.We also created and annotated an extensive dataset of Palmyrene inscriptions,a crucial resource for further research in the field.The dataset serves for training and evaluating the segmentation models.We employ comparative evaluation metrics to quantitatively assess the segmentation results,ensuring the reliability and reproducibility of our findings and we present custom visualization tools for predicted segmentation masks.Our study advances the state of the art in semi-automatic reading of Palmyrene inscriptions and establishes a benchmark for future research.The availability of the Palmyrene dataset and the insights into algorithm performance contribute to the broader understanding of historical text analysis. 展开更多
关键词 Optical character recognition instance segmentation Palmyrene ancient languages computer vision
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A Method for Detecting and Recognizing Yi Character Based on Deep Learning
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作者 Haipeng Sun Xueyan Ding +2 位作者 Jian Sun HuaYu Jianxin Zhang 《Computers, Materials & Continua》 SCIE EI 2024年第2期2721-2739,共19页
Aiming at the challenges associated with the absence of a labeled dataset for Yi characters and the complexity of Yi character detection and recognition,we present a deep learning-based approach for Yi character detec... Aiming at the challenges associated with the absence of a labeled dataset for Yi characters and the complexity of Yi character detection and recognition,we present a deep learning-based approach for Yi character detection and recognition.In the detection stage,an improved Differentiable Binarization Network(DBNet)framework is introduced to detect Yi characters,in which the Omni-dimensional Dynamic Convolution(ODConv)is combined with the ResNet-18 feature extraction module to obtain multi-dimensional complementary features,thereby improving the accuracy of Yi character detection.Then,the feature pyramid network fusion module is used to further extract Yi character image features,improving target recognition at different scales.Further,the previously generated feature map is passed through a head network to produce two maps:a probability map and an adaptive threshold map of the same size as the original map.These maps are then subjected to a differentiable binarization process,resulting in an approximate binarization map.This map helps to identify the boundaries of the text boxes.Finally,the text detection box is generated after the post-processing stage.In the recognition stage,an improved lightweight MobileNetV3 framework is used to recognize the detect character regions,where the original Squeeze-and-Excitation(SE)block is replaced by the efficient Shuffle Attention(SA)that integrates spatial and channel attention,improving the accuracy of Yi characters recognition.Meanwhile,the use of depth separable convolution and reversible residual structure can reduce the number of parameters and computation of the model,so that the model can better understand the contextual information and improve the accuracy of text recognition.The experimental results illustrate that the proposed method achieves good results in detecting and recognizing Yi characters,with detection and recognition accuracy rates of 97.5%and 96.8%,respectively.And also,we have compared the detection and recognition algorithms proposed in this paper with other typical algorithms.In these comparisons,the proposed model achieves better detection and recognition results with a certain reliability. 展开更多
关键词 Yi characters text detection text recognition attention mechanism deep neural network
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Fireworks Optimization with Deep Learning-Based Arabic Handwritten Characters Recognition Model
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作者 Abdelwahed Motwakel Badriyya B.Al-onazi +5 位作者 Jaber S.Alzahrani Ayman Yafoz Mahmoud Othman Abu Sarwar Zamani Ishfaq Yaseen Amgad Atta Abdelmageed 《Computer Systems Science & Engineering》 2024年第5期1387-1403,共17页
Handwritten character recognition becomes one of the challenging research matters.More studies were presented for recognizing letters of various languages.The availability of Arabic handwritten characters databases wa... Handwritten character recognition becomes one of the challenging research matters.More studies were presented for recognizing letters of various languages.The availability of Arabic handwritten characters databases was confined.Almost a quarter of a billion people worldwide write and speak Arabic.More historical books and files indicate a vital data set for many Arab nationswritten in Arabic.Recently,Arabic handwritten character recognition(AHCR)has grabbed the attention and has become a difficult topic for pattern recognition and computer vision(CV).Therefore,this study develops fireworks optimizationwith the deep learning-based AHCR(FWODL-AHCR)technique.Themajor intention of the FWODL-AHCR technique is to recognize the distinct handwritten characters in the Arabic language.It initially pre-processes the handwritten images to improve their quality of them.Then,the RetinaNet-based deep convolutional neural network is applied as a feature extractor to produce feature vectors.Next,the deep echo state network(DESN)model is utilized to classify handwritten characters.Finally,the FWO algorithm is exploited as a hyperparameter tuning strategy to boost recognition performance.Various simulations in series were performed to exhibit the enhanced performance of the FWODL-AHCR technique.The comparison study portrayed the supremacy of the FWODL-AHCR technique over other approaches,with 99.91%and 98.94%on Hijja and AHCD datasets,respectively. 展开更多
关键词 Arabic language handwritten character recognition deep learning CLASSIFICATION parameter tuning
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Audio2AB:Audio-driven collaborative generation of virtual character animation
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作者 Lichao NIU Wenjun XIE +2 位作者 Dong WANG Zhongrui CAO Xiaoping LIU 《虚拟现实与智能硬件(中英文)》 EI 2024年第1期56-70,共15页
Background Considerable research has been conducted in the areas of audio-driven virtual character gestures and facial animation with some degree of success.However,few methods exist for generating full-body animation... Background Considerable research has been conducted in the areas of audio-driven virtual character gestures and facial animation with some degree of success.However,few methods exist for generating full-body animations,and the portability of virtual character gestures and facial animations has not received sufficient attention.Methods Therefore,we propose a deep-learning-based audio-to-animation-and-blendshape(Audio2AB)network that generates gesture animations and ARK it's 52 facial expression parameter blendshape weights based on audio,audio-corresponding text,emotion labels,and semantic relevance labels to generate parametric data for full-body animations.This parameterization method can be used to drive full-body animations of virtual characters and improve their portability.In the experiment,we first downsampled the gesture and facial data to achieve the same temporal resolution for the input,output,and facial data.The Audio2AB network then encoded the audio,audio-corresponding text,emotion labels,and semantic relevance labels,and then fused the text,emotion labels,and semantic relevance labels into the audio to obtain better audio features.Finally,we established links between the body,gestures,and facial decoders and generated the corresponding animation sequences through our proposed GAN-GF loss function.Results By using audio,audio-corresponding text,and emotional and semantic relevance labels as input,the trained Audio2AB network could generate gesture animation data containing blendshape weights.Therefore,different 3D virtual character animations could be created through parameterization.Conclusions The experimental results showed that the proposed method could generate significant gestures and facial animations. 展开更多
关键词 Audio-driven Virtual character Full-body animation Audio2AB Blendshape GAN-GF
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A Novel 6G Scalable Blockchain Clustering-Based Computer Vision Character Detection for Mobile Images
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作者 Yuejie Li Shijun Li 《Computers, Materials & Continua》 SCIE EI 2024年第3期3041-3070,共30页
6G is envisioned as the next generation of wireless communication technology,promising unprecedented data speeds,ultra-low Latency,and ubiquitous Connectivity.In tandem with these advancements,blockchain technology is... 6G is envisioned as the next generation of wireless communication technology,promising unprecedented data speeds,ultra-low Latency,and ubiquitous Connectivity.In tandem with these advancements,blockchain technology is leveraged to enhance computer vision applications’security,trustworthiness,and transparency.With the widespread use of mobile devices equipped with cameras,the ability to capture and recognize Chinese characters in natural scenes has become increasingly important.Blockchain can facilitate privacy-preserving mechanisms in applications where privacy is paramount,such as facial recognition or personal healthcare monitoring.Users can control their visual data and grant or revoke access as needed.Recognizing Chinese characters from images can provide convenience in various aspects of people’s lives.However,traditional Chinese character text recognition methods often need higher accuracy,leading to recognition failures or incorrect character identification.In contrast,computer vision technologies have significantly improved image recognition accuracy.This paper proposed a Secure end-to-end recognition system(SE2ERS)for Chinese characters in natural scenes based on convolutional neural networks(CNN)using 6G technology.The proposed SE2ERS model uses the Weighted Hyperbolic Curve Cryptograph(WHCC)of the secure data transmission in the 6G network with the blockchain model.The data transmission within the computer vision system,with a 6G gradient directional histogram(GDH),is employed for character estimation.With the deployment of WHCC and GDH in the constructed SE2ERS model,secure communication is achieved for the data transmission with the 6G network.The proposed SE2ERS compares the performance of traditional Chinese text recognition methods and data transmission environment with 6G communication.Experimental results demonstrate that SE2ERS achieves an average recognition accuracy of 88%for simple Chinese characters,compared to 81.2%with traditional methods.For complex Chinese characters,the average recognition accuracy improves to 84.4%with our system,compared to 72.8%with traditional methods.Additionally,deploying the WHCC model improves data security with the increased data encryption rate complexity of∼12&higher than the traditional techniques. 展开更多
关键词 6G technology blockchain end-to-end recognition Chinese characters natural scene computer vision algorithms convolutional neural network
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Frontier Progress of Landscape Character Assessment in China
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作者 LI Sha XIE Wanyu +2 位作者 HUANG Tingting YANG Xin ZHU Jianning 《Journal of Landscape Research》 2024年第1期1-6,共6页
The role of Landscape Character Assessment(LCA)at the level of territorial landscape governance spans both natural and social sciences.By analyzing the development history,research distribution,methods and application... The role of Landscape Character Assessment(LCA)at the level of territorial landscape governance spans both natural and social sciences.By analyzing the development history,research distribution,methods and applications of cutting-edge cases of LCA in China,the following conclusions are drawn:①the LCA research in China originated earlier than that in Europe,but has not yet been systematically applied to the implementation of urban and rural planning at all levels;②the fundamental theory of LCA in China has been well constructed,with three main research directions:technologyled,assessment-led,and assessment combined with other theories;③the development of LCA in rural areas is more mature than in urban areas,but the progress of research is uneven across regions;④the current research presents significant“bottom-up”academic characteristics,and there is an urgent need for government decision-making authorities and academia to jointly promote a“top-down”standardized governance mechanism to comprehensively promote the modernization of territorial landscape governance. 展开更多
关键词 Landscape character assessment Territorial landscape Spatial planning Standardized mechanism Landscape governance modernization
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Progress in the evaluation tool of Character Strengths and its application in nursing staff
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作者 Ming-Hui Ning Gui-Hong Yan 《Nursing Communications》 2024年第16期1-6,共6页
Character Strengths is a group of positive personality traits reflected through cognition,behavior,and emotion,which play a positive role in improving happiness,alleviating negative emotions,and maintaining physical a... Character Strengths is a group of positive personality traits reflected through cognition,behavior,and emotion,which play a positive role in improving happiness,alleviating negative emotions,and maintaining physical and mental health.This article reviews the concept,content,methods,evaluation tools,and application progress of Character Strengths in nurses,so as to provide a reference for clinical managers and improve the quality of life,mental health,and professional satisfaction of n urses. 展开更多
关键词 character strengths nurses REVIEW
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Chip Surface Character Recognition Based on OpenCV
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作者 Lihang Yin 《Journal of Electronic Research and Application》 2024年第4期161-167,共7页
Chip surface character recognition is an important part of quality inspection in the field of microelectronics manufacturing.By recognizing the character information on the chip,automated production,quality control,an... Chip surface character recognition is an important part of quality inspection in the field of microelectronics manufacturing.By recognizing the character information on the chip,automated production,quality control,and data collection and analysis can be achieved.This article studies a chip surface character recognition method based on the OpenCV vision library.Firstly,the obtained chip images are preprocessed.Secondly,the template matching method is used to locate the chip position.In addition,the surface characters on the chip are individually segmented,and each character image is extracted separately.Finally,a Support Vector Machine(SVM)is used to classify and recognize characters.The results show that this method can accurately recognize the surface characters of chips and meet the requirements of chip quality inspection. 展开更多
关键词 Template matching character recognition SVM OPENCV
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A Review of Research on Handwritten Chinese Character Recognition with Multi-Feature Fusion
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作者 Peng Deng Guiying Yang 《Journal of Electronic Research and Application》 2024年第5期109-117,共9页
This paper analyzes the progress of handwritten Chinese character recognition technology,from two perspectives:traditional recognition methods and deep learning-based recognition methods.Firstly,the complexity of Chin... This paper analyzes the progress of handwritten Chinese character recognition technology,from two perspectives:traditional recognition methods and deep learning-based recognition methods.Firstly,the complexity of Chinese character recognition is pointed out,including its numerous categories,complex structure,and the problem of similar characters,especially the variability of handwritten Chinese characters.Subsequently,recognition methods based on feature optimization,model optimization,and fusion techniques are highlighted.The fusion studies between feature optimization and model improvement are further explored,and these studies further enhance the recognition effect through complementary advantages.Finally,the article summarizes the current challenges of Chinese character recognition technology,including accuracy improvement,model complexity,and real-time problems,and looks forward to future research directions. 展开更多
关键词 Chinese character recognition Multi-feature fusion Machine learning
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加味寿胎贴脐片释药动力学与药效学研究
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作者 张琪 刘婧 +3 位作者 杨雪 李伟男 关枫 王艳宏 《特产研究》 2024年第5期36-41,47,共7页
本研究旨在通过体外透皮试验考察加味寿胎贴脐片的透皮效果,以大鼠先兆性流产模型的流产率、脏器指数、胚胎个数和血清激素水平为评价指标,进一步确定其疗效,以期为临床治疗先兆性流产提供疗效显著且使用方便的新制剂。试验采用Franz扩... 本研究旨在通过体外透皮试验考察加味寿胎贴脐片的透皮效果,以大鼠先兆性流产模型的流产率、脏器指数、胚胎个数和血清激素水平为评价指标,进一步确定其疗效,以期为临床治疗先兆性流产提供疗效显著且使用方便的新制剂。试验采用Franz扩散池法进行体外透皮试验,考察贴脐片中金丝桃苷、槲皮素、大黄素和川续断皂苷Ⅵ的透皮吸收情况,以评价经皮渗透效果。建立大鼠先兆性流产模型,动物随机分为4组,即空白组、空白贴脐片对照组(只含辅料,不含药)、阳性组及加味寿胎贴脐片组,以流产率、脏器指数、胚胎个数、雌二醇(E2)、孕酮(P)、人绒毛膜促性腺激素(β-HCG)、前列腺素(PGF-2α)水平考察加味寿胎贴脐片对模型动物先兆性流产的影响。结果表明,加味寿胎贴脐片中4种指标成分24h累计透过量为142.68μg/cm^(2)、3.44μg/cm^(2)、3.78μg/cm^(2)、718.77μg/cm^(2),累计透过速率分别为0.0497μg/(cm^(2)·h)、0.0485μg/(cm^(2)·h)、0.0544μg/(cm^(2)·h)、0.045μg/(cm^(2)·h)。4种指标成分的透过率规律均符合一级动力学方程。金丝桃苷透过百分率为23.9%、槲皮素透过百分率为17.6%、大黄素透过百分率为27.7%、川续断皂苷Ⅵ透过百分率为27.1%。药效学试验结果显示,与空白贴脐片对照组相比,各给药组大鼠血清中E2、P、β-HCG的含量均有上调,PGF-2α的含量均有下调,贴脐片组在治疗先兆流产的作用上疗效显著,保胎效果更优。加味寿胎贴脐片具有体外经皮渗透的特性,对大鼠先兆性流产的治疗具有一定的改善作用,说明该制剂具有一定的临床开发价值。 展开更多
关键词 先兆流产 加味寿胎贴脐片 经皮渗透 药效学
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寿胎丸加减治疗复发性流产的疗效及对患者凝血功能、Th17细胞相关因子的影响
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作者 张燕 邵岚 +3 位作者 范红芳 吕克蔺 赵青 蒋蕾 《中医药学报》 CAS 2024年第8期61-66,共6页
目的:探究寿胎丸加减治疗复发性流产的疗效及其对患者凝血功能、辅助T淋巴细胞17(Th17)细胞相关因子的影响。方法:对2021年3月—2022年3月石家庄市第六医院收治的120例复发性流产患者相关资料予以回顾性分析,按治疗方式将患者分为对照... 目的:探究寿胎丸加减治疗复发性流产的疗效及其对患者凝血功能、辅助T淋巴细胞17(Th17)细胞相关因子的影响。方法:对2021年3月—2022年3月石家庄市第六医院收治的120例复发性流产患者相关资料予以回顾性分析,按治疗方式将患者分为对照组与研究组,对照组57例接受黄体酮治疗,研究组63例在对照组基础上加用寿胎丸加减治疗。比较两组临床疗效,治疗前后中医证候积分、凝血功能、Th17与调节性T细胞(Treg)水平、Th17/Treg细胞相关因子,以及不良反应发生率。结果:研究组患者临床总有效率90.48%高于对照组75.44%(P<0.05);两组患者治疗后中医证候积分、凝血功能、Th17与Treg水平、Th17/Treg细胞相关因子均明显改善(P<0.01),研究组患者治疗后中医证候积分均明显低于对照组(P<0.01),研究组患者治疗后中医证候积分、凝血功能、Th17与Treg水平、Th17/Treg细胞相关因子等改善均优于对照组(P<0.01);研究组患者治疗期间不良反应发生率7.94%低于对照组12.28%,但差异无统计学意义(P>0.05)。结论:应用寿胎丸加减治疗复发性流产疗效显著,有助于减轻患者凝血功能障碍,纠正患者Th17细胞相关因子水平异常,临床应用效果良好。 展开更多
关键词 寿胎丸加减 复发性流产 凝血功能 Th17细胞相关因子
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抵挡汤合寿胎丸加减治疗不全流产临床观察
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作者 康丽 陈敏 +3 位作者 覃海知 王欣欣 孙利娟 余自淑 《河北中医》 2024年第3期405-409,414,共6页
目的观察抵挡汤合寿胎丸加减治疗不全流产的临床疗效。方法将60例不全流产患者按照随机数字表法分为2组,对照组30例予米非司酮片联合产妇安颗粒治疗,治疗组30例予米非司酮片联合抵挡汤合寿胎丸加减治疗,2组均连用2周,随访3个月经周期。... 目的观察抵挡汤合寿胎丸加减治疗不全流产的临床疗效。方法将60例不全流产患者按照随机数字表法分为2组,对照组30例予米非司酮片联合产妇安颗粒治疗,治疗组30例予米非司酮片联合抵挡汤合寿胎丸加减治疗,2组均连用2周,随访3个月经周期。比较2组治疗1、2周疗效;比较2组阴道出血时间、月经复潮时间;比较2组治疗1周后血清人绒毛膜促性腺激素(β-HCG)水平变化;比较2组治疗前后子宫内膜厚度、子宫动脉血流参数变化;比较2组治疗前、随访时月经量评分、症状评分变化。结果治疗组治疗1周有效率86.7%(26/30),对照组治疗1周有效率70.0%(21/30),治疗组治疗1周疗效优于对照组(P<0.05)。治疗组治疗2周总有效率100%(30/30),对照组治疗2周总有效率96.7%(29/30),2组治疗2周疗效比较差异无统计学意义(P>0.05)。治疗组阴道出血时间少于对照组(P<0.05);2组月经复潮时间均推后,比较差异无统计学意义(P>0.05)。2组平均血清β-HCG水平比较差异无统计学意义(P>0.05)。治疗1周后2组子宫内膜厚度比较差异无统计学意义(P>0.05);治疗2周后2组子宫内膜厚度均较本组治疗1周后增加(P<0.05),治疗组治疗2周后子宫内膜厚度大于对照组(P<0.05)。2组治疗后子宫动脉血流阻力指数(RI)、子宫动脉搏动指数(PI)、螺旋动脉收缩期峰值流速/舒张末期峰值流速(S/D)水平均较本组治疗前改善(P<0.05);治疗后治疗组RI、PI、S/D改善均优于对照组(P<0.05)。治疗组治疗前与随访时月经量评分比较差异无统计学意义(P>0.05);对照组随访时月经量评分较本组治疗前减少(P<0.05);2组随访时月经量评分比较差异有统计学意义(P<0.05)。与本组治疗前比较,随访时治疗组小腹胀痛、腰骶酸痛、乳房胀痛评分和总评分降低(P<0.05),对照组小腹胀痛、腰骶酸痛、月经后期评分和总评分升高(P<0.05);2组随访时小腹胀痛、腰骶酸痛、月经后期评分和总评分比较差异均有统计学意义(P<0.05)。结论抵挡汤合寿胎丸加减治疗不全流产,可缩短阴道出血时间,降低血清β-HCG水平,促进子宫内膜修复,改善子宫动脉血流参数。 展开更多
关键词 流产 人工 中药疗法 抵挡汤 寿胎丸
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寿胎丸合当归散治疗非典型产科抗磷脂综合征对妊娠结局及抗磷脂抗体、血栓弹力图指标的影响
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作者 陈祥艳 胡欣欣 +3 位作者 高楚楚 林超 李鹏 孙云 《浙江中医杂志》 2024年第1期29-31,共3页
目的:研究寿胎丸合当归散治疗非典型产科抗磷脂综合征对妊娠结局及抗磷脂抗体、血栓弹力图指标的影响,为临床治疗提供理论基础。方法:将温州市中医院2020年5月~2022年5月收治的74例非典型产科抗磷脂综合征患者纳入研究,通过随机数字表... 目的:研究寿胎丸合当归散治疗非典型产科抗磷脂综合征对妊娠结局及抗磷脂抗体、血栓弹力图指标的影响,为临床治疗提供理论基础。方法:将温州市中医院2020年5月~2022年5月收治的74例非典型产科抗磷脂综合征患者纳入研究,通过随机数字表法分为观察组与对照组,各37例。对照组给予低分子肝素治疗,观察组给予低分子肝素+寿胎丸合当归散治疗,两组疗程均为孕5~11周,共7周。观察记录两组临床疗效、治疗前后中医症状积分以及妊娠结局等。比较两组治疗前后抗磷脂抗体[抗心磷脂抗体免疫球蛋白A(ACA-IgA)、ACA-IgG、ACA-IgM、抗β2蛋白I抗体-IgM(β2GPI-IgM)]水平、血栓弹力图指标[反应时间(R值)、凝血时间(K值)、血栓最大弹力度(MA)、凝固角(α角)]以及凝血-纤溶指标[凝血酶原时间(PT)、活化部分凝血活酶时间(APTT)、纤维蛋白原(FIB)、D-二聚体(D-D)]水平,观察两组不良反应。结果:观察组疗效优于对照组。治疗后,两组各项中医症状积分均低于治疗前(P<0.05),且观察组各项症状积分均低于对照组(P<0.05);其良好妊娠结局人数比例也高于对照组(P<0.05)。治疗后,观察组ACA-IgA、ACA-IgG、β2GPI-IgM水平均低于治疗前(P<0.05),而其ACA-IgM水平无明显差异(P>0.05);对照组ACAIgA水平低于治疗前(P<0.05),而ACA-IgC、ACA-IgM、β2GPI-IgM水平无明显差异(P>0.05);观察组ACAIgA、ACA-IgC、β2GPI-IgM水平低于对照组(P<0.05),ACA-IgM水平组间比较无明显变化(P>0.05);观察组R值、K值水平高于治疗前(P<0.05),α角水平低于治疗前(P<0.05),MA水平无差异(P>0.05);对照组R值水平高于治疗前(P<0.05),K值、MA、α角水平无差异(P>0.05),且治疗后观察组R值、K值水平高于对照组(P<0.05),α角水平低于对照组(P<0.05),两组MA水平比较无差异(P>0.05)。治疗后,观察组与对照组PT、APTT水平均高于治疗前(P<0.05),FIB、D-D水平均低于治疗前(P<0.05),观察组PT、APTT水平均高于对照组(P<0.05),FIB、D-D水平均低于对照组(P<0.05)。两组不良反应比较无差异(P>0.05)。结论:寿胎丸合当归散对非典型产科抗磷脂综合征有较好疗效,能够明显减轻患者症状,改善妊娠结局、抗磷脂抗体、血栓弹力图指标水平及凝血功能,同时安全性较高,能够用于治疗非典型产科抗磷脂综合征。 展开更多
关键词 非典型产科抗磷脂综合征 寿胎丸 当归散 抗磷脂抗体 血栓弹力图
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清宫寿戏《福寿延年》内廷演出考略
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作者 刘铁 《阴山学刊》 2024年第2期21-30,共10页
《福寿延年》为清宫常演的多本寿戏,现今可见的早期剧本有嘉庆年间所用串关、题纲。在内廷搬演过程中,全剧经历个别处文字微调后总体保持稳定,每次仅据承应对象的变化对颂词做调整,以适应实际表演的需要。自嘉庆朝以后,其于同治、光绪... 《福寿延年》为清宫常演的多本寿戏,现今可见的早期剧本有嘉庆年间所用串关、题纲。在内廷搬演过程中,全剧经历个别处文字微调后总体保持稳定,每次仅据承应对象的变化对颂词做调整,以适应实际表演的需要。自嘉庆朝以后,其于同治、光绪两朝接连上演,尤以光绪一朝为盛,一直延续至光绪末期。演出场合主要为万寿承应,具体包括皇帝万寿承应和皇太后万寿承应,在慈禧四旬、五旬、七旬万寿时均有演出。此外,偶尔在一些节令如除夕或元旦承应演出中出现。具体演出形式有两种,绝大多数时为全本演出,个别情况下挑演部分出目。 展开更多
关键词 《福寿延年》 清代 寿 演出
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低分子量肝素钙联合寿胎丸加减方治疗早期先兆流产合并绒毛膜下血肿的临床研究
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作者 方芳 陈晓勇 《上海医药》 CAS 2024年第9期29-32,36,共5页
目的:探讨低分子量肝素钙联合寿胎丸加减方治疗早期先兆流产合并绒毛膜下血肿(SCH)的临床疗效及其作用机制。方法:将早期先兆流产合并SCH患者60例随机分为对照组和治疗组,各30例。对照组采用寿胎丸加减方治疗,治疗组在对照组的基础上加... 目的:探讨低分子量肝素钙联合寿胎丸加减方治疗早期先兆流产合并绒毛膜下血肿(SCH)的临床疗效及其作用机制。方法:将早期先兆流产合并SCH患者60例随机分为对照组和治疗组,各30例。对照组采用寿胎丸加减方治疗,治疗组在对照组的基础上加用低分子量肝素钙治疗。比较两组治疗效果、症状缓解时间、血清指标以及药物安全性。结果:治疗组总有效率高于对照组,各项症状缓解时间短于对照组;血清指标改善情况优于对照组(P<0.05)。两组均未出现明显不良反应。结论:联合疗法效果确切,能够快速缓解患者症状,改善血清指标水平,且安全性较高。 展开更多
关键词 早期先兆流产 绒毛膜下血肿 低分子量肝素钙 寿胎丸加减方
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磺达肝癸钠联合寿胎丸加减方治疗肾虚血瘀型抗心磷脂抗体阳性复发性流产的临床效果
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作者 方芳 陈晓勇 《中国当代医药》 CAS 2024年第15期94-98,共5页
目的探讨磺达肝癸钠联合寿胎丸加减方治疗肾虚血瘀抗心磷脂抗体阳性复发性流产(RSA)的效果。方法选取2021年1月至12月江西省妇幼保健院收治的105例RSA患者作为研究对象,按随机数字表法分为单纯中药组、对照组和观察组,各35例。单纯中药... 目的探讨磺达肝癸钠联合寿胎丸加减方治疗肾虚血瘀抗心磷脂抗体阳性复发性流产(RSA)的效果。方法选取2021年1月至12月江西省妇幼保健院收治的105例RSA患者作为研究对象,按随机数字表法分为单纯中药组、对照组和观察组,各35例。单纯中药组用寿胎丸加减方,对照组用依诺肝素+寿胎丸加减方,观察组用磺达肝癸钠+寿胎丸加减方。观察三组的疗效、抗心磷脂抗体转阴率、凝血指标及不良反应。结果观察组和对照组患者孕12周时总有效率均高于单纯中药组,差异有统计学意义(P<0.017),但观察组和对照组患者总有效率比较,差异无统计学意义(P>0.017)。观察组和对照组抗心磷脂抗体转阴率高于单纯中药组,差异有统计学意义(P<0.017);观察组患者抗心磷脂抗体转阴率高于对照组,差异有统计学意义(P<0.017);三组抗心磷脂抗体转阴率比较,差异有统计学意义(P<0.05)。三组患者孕12周时血清D-二聚体水平、凝血指数和最大振幅均低于本组治疗前,且观察组和对照组患者指标低于单纯中药组,差异有统计学意义(P<0.05);但观察组和对照组患者凝血相关指标比较,差异无统计学意义(P>0.05)。治疗期间,单纯中药组无不良反应发生;观察组患者注射部位皮肤反应、转氨酶升高发生率低于对照组,差异有统计学意义(P<0.05)。结论磺达肝癸钠联合寿胎丸加减方治疗肾虚血瘀抗心磷脂抗体阳性RSA患者的效果显著,可有效改善临床症状、凝血状态,促进抗心磷脂抗体转阴,且安全性更好。 展开更多
关键词 复发性流产 寿胎丸加减方 磺达肝癸钠 肾虚血瘀 抗心磷脂抗体
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佛手散合寿胎丸加减方联合依诺肝素钠防治肾虚血瘀型复发性胎停育疗效观察
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作者 崔海峰 董娟娟 李昀筱 《广西中医药》 2024年第4期5-7,11,共4页
目的:观察佛手散合寿胎丸加减方联合依诺肝素钠防治肾虚血瘀型复发性胎停育的疗效。方法:选择符合纳入标准的胎停育后再孕患者108例,随机分为观察组和对照组,每组54例。对照组予依诺肝素钠注射液皮下注射,观察组在对照组用药基础上加用... 目的:观察佛手散合寿胎丸加减方联合依诺肝素钠防治肾虚血瘀型复发性胎停育的疗效。方法:选择符合纳入标准的胎停育后再孕患者108例,随机分为观察组和对照组,每组54例。对照组予依诺肝素钠注射液皮下注射,观察组在对照组用药基础上加用佛手散合寿胎丸加减方,连续治疗8周。观察两组疗效,治疗前后中医证候积分、孕激素三项[血清人绒毛膜促性腺激素(β-HCG)、孕酮(P)及雌二醇(E_(2))]水平和B超检查结果。结果:观察组总有效率为94.4%,对照组为79.6%,两组差异有统计学意义(P<0.05)。治疗后观察组中医证候积分下降,血清β-HCG、P、E_(2)水平上升,B超提示绒毛膜下血肿减少、孕囊增大,且观察组优于对照组(P<0.05)。结论:采用佛手散合寿胎丸加减方联合依诺肝素钠防治肾虚血瘀型复发性胎停育,能改善中医证候和体内激素水平,从而改善胎停育后再孕女性的妊娠结局。 展开更多
关键词 胎停育 复发性流产 佛手散 寿胎丸 活血保胎
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寿胎丸穴位贴敷联合中医情志护理治疗肾虚型先兆流产临床观察
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作者 孙利利 《中文科技期刊数据库(文摘版)医药卫生》 2024年第2期0048-0053,共6页
探讨寿胎丸穴位贴敷联合中医情志护理对肾虚型先兆流产患者血清激素值(P、E2、β-HCG),腰酸、腹痛、阴道出血、症状的影响及其临床疗效,为临床护理此类患者提供新的方案。方法 依照 SAS 随机化程序产生的随机表,将符合入组标准的80例患... 探讨寿胎丸穴位贴敷联合中医情志护理对肾虚型先兆流产患者血清激素值(P、E2、β-HCG),腰酸、腹痛、阴道出血、症状的影响及其临床疗效,为临床护理此类患者提供新的方案。方法 依照 SAS 随机化程序产生的随机表,将符合入组标准的80例患者均分为两组,对照组给与中药汤剂口服,观察组在对照组基础上给与寿胎丸穴位贴敷加中医情志护理,分别治疗2 周。治疗前后分别记录两组的血清激素(E2、P、β-HCG)变化值,阴道出血情况、腰腹酸痛程度。结果 除去脱落的病例,最终对其余76例患者的资料进行统计分析:(1)观察组和对照的总有效率分别为92.11%和78.95%,两者之间存在显著的差别,(P<0.05)。2)治疗前,2 组患者 P、E2 、β-HCG水平无显著差异 (P>0. 05);治疗后第 7、14 天,2 组三者水平显著升高 (P<0. 05),以观察组更明显 (P<0. 05)。(3)观察组腰痛、腹痛、阴道流血等症状的缓解时间明显缩短,与对照组相比,有显著性差异。(P<0.05)。结论 (1)寿胎丸穴位贴敷联合中医情志护理治疗肾虚型先兆流产改善症状疗效确切。(2)寿胎丸穴位贴敷联合中医情志护理对肾虚型先兆流产患者血清孕酮(P)、雌二醇(E2)、人绒毛膜促性腺激素(β-HCG)值有明显的促进作用。(3)寿胎丸穴位贴敷联合中医情志护理可改善肾虚型先兆流产患者的腰酸腹痛、阴道出血的症状。 展开更多
关键词 寿胎丸穴位贴敷 先兆流产 护理
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