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RNSQL:融合逆规范化的Text2SQL生成
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作者 帖军 范子琪 +2 位作者 孙翀 郑禄 朱柏尔 《计算机应用与软件》 北大核心 2025年第9期31-37,86,共8页
Text2SQL是自然语言处理科研领域中的一项重要任务,在研究智能问答系统中发挥关键性的作用,其核心任务是将自然语言描述的问题自动转换为SQL查询语句。当前研究重点为提高SQL子句任务的匹配准确率,但忽略了SQL的句法生成的正确性,涉及... Text2SQL是自然语言处理科研领域中的一项重要任务,在研究智能问答系统中发挥关键性的作用,其核心任务是将自然语言描述的问题自动转换为SQL查询语句。当前研究重点为提高SQL子句任务的匹配准确率,但忽略了SQL的句法生成的正确性,涉及多表连接的SQL生成仍存在大量错误。因此,提出一种基于神经网络的Text2SQL方法,该方法通过逆规范化技术,对数据库模式进行重构,关注SQL句法生成的正确性,称为逆规范化网络(Reverse Normalization SQL,RNSQL)。经理论分析和在公共数据集Spider上实验验证,RNSQL能有效提升Text2SQL任务的质量。 展开更多
关键词 逆规范化 语义解析 text2SQL 槽填充
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中文Web文本挖掘系统WebTextMiner开发 被引量:1
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作者 魏松 钟义信 王翔英 《计算机应用研究》 CSCD 北大核心 2006年第6期211-213,共3页
W eb文本挖掘系统的开发对W eb文本挖掘的研究有着很大的推进作用。因此在对基于SVM的中文网页分类器性能研究的基础上,根据研究和实用的需要,实现了一个性能较好的中文W eb文本挖掘系统。
关键词 WEB文本挖掘 支持向量机 K-最近邻
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基于Text2Vec_AE_KMeans的微博话题聚类分析方法
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作者 万文桐 黄润才 《智能计算机与应用》 2025年第5期82-89,共8页
传统的话题聚类分析方法使用静态词向量对微博文本进行建模,对微博文本不规范表达、一词多义等特点应对不佳,从而影响聚类效果与话题表述。针对此,提出了一种基于Text2Vec_AE_KMeans的深度文本特征提取与聚类的微博话题聚类分析方法。首... 传统的话题聚类分析方法使用静态词向量对微博文本进行建模,对微博文本不规范表达、一词多义等特点应对不佳,从而影响聚类效果与话题表述。针对此,提出了一种基于Text2Vec_AE_KMeans的深度文本特征提取与聚类的微博话题聚类分析方法。首先,使用基于MacBert预训练模型与CoSENT文本语句建模方法设计的Text2Vec预训练模型,对微博话题文本进行文本语义表示,从而改进静态词向量在文本特征建模方面的不足;然后,通过带有非线性激活函数的AutoEncoder降维网络对高维非线性文本特征进行降维;最后,在话题聚类分析的过程中采用KMeans_C-TF-IDF算法进行面向微博文本的聚类分析,从聚类簇的角度把握话题分布信息。在真实微博话题数据集上,相较于传统静态词向量建模方法,本文提出的方法在聚类评价指标上表现优异,生成的话题信息可识别性较好。 展开更多
关键词 话题聚类分析 CoSENT text2Vec 自编码器
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全球家纺行业的韧性:Heimtextil 2025展览规模创新高 被引量:1
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作者 钟梦夏 《中国纺织》 2025年第1期96-97,共2页
1月14日至17日,Heimtextil 2025法兰克福国际家用及商用纺织品展览会(以下简称“Heimtextil 2025”)在德国法兰克福展览中心隆重举行。这场为期四天的展会,来自全球142个国家和地区的3000多家展商聚集于此,50000多名观众参与其中,展商... 1月14日至17日,Heimtextil 2025法兰克福国际家用及商用纺织品展览会(以下简称“Heimtextil 2025”)在德国法兰克福展览中心隆重举行。这场为期四天的展会,来自全球142个国家和地区的3000多家展商聚集于此,50000多名观众参与其中,展商数量、观众数量、观众满意度等多项数据再创新记录。 展开更多
关键词 展览规模 家纺行业 法兰克福展览 观众满意度 text 纺织品 He
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From text to image:challenges in integrating vision into ChatGPT for medical image interpretation
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作者 Shunsuke Koga Wei Du 《Neural Regeneration Research》 SCIE CAS 2025年第2期487-488,共2页
Large language models(LLMs),such as ChatGPT developed by OpenAI,represent a significant advancement in artificial intelligence(AI),designed to understand,generate,and interpret human language by analyzing extensive te... Large language models(LLMs),such as ChatGPT developed by OpenAI,represent a significant advancement in artificial intelligence(AI),designed to understand,generate,and interpret human language by analyzing extensive text data.Their potential integration into clinical settings offers a promising avenue that could transform clinical diagnosis and decision-making processes in the future(Thirunavukarasu et al.,2023).This article aims to provide an in-depth analysis of LLMs’current and potential impact on clinical practices.Their ability to generate differential diagnosis lists underscores their potential as invaluable tools in medical practice and education(Hirosawa et al.,2023;Koga et al.,2023). 展开更多
关键词 IMAGE DIAGNOSIS text
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Text Structured Algorithm of Lung Cancer Cases Based on Deep Learning
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作者 MI Linhui YUAN Junyi +1 位作者 ZHOU Yankang HOU Xumin 《Journal of Shanghai Jiaotong university(Science)》 2025年第4期778-789,共12页
Surgical site infections(SSIs)are the most common healthcare-related infections in patients with lung cancer.Constructing a lung cancer SSI risk prediction model requires the extraction of relevant risk factors from l... Surgical site infections(SSIs)are the most common healthcare-related infections in patients with lung cancer.Constructing a lung cancer SSI risk prediction model requires the extraction of relevant risk factors from lung cancer case texts,which involves two types of text structuring tasks:attribute discrimination and attribute extraction.This article proposes a joint model,Multi-BGLC,around these two types of tasks,using bidirectional encoder representations from transformers(BERT)as the encoder and fine-tuning the decoder composed of graph convolutional neural network(GCNN)+long short-term memory(LSTM)+conditional random field(CRF)based on cancer case data.The GCNN is used for attribute discrimination,whereas the LSTM and CRF are used for attribute extraction.The experiment verified the effectiveness and accuracy of the model compared with other baseline models. 展开更多
关键词 text structuring text classification sequence labeling data augmentation lung cancer electronic medical record
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Application of Legal Texts in the Migration from Analog to Digital Television in the Republic of Guinea
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作者 M’mahawa Bangoura Alsény Bangoura Mamadou Sanoussi Camara 《Journal of Energy and Power Engineering》 2025年第2期54-58,共5页
The application of legal texts in the context of digital television is a process that relies on several normative instruments,ranging from international treaties,such as those of the ITU(International Telecommunicatio... The application of legal texts in the context of digital television is a process that relies on several normative instruments,ranging from international treaties,such as those of the ITU(International Telecommunications Union),to national regulations defining the obligations of audiovisual operators and the modalities of consumer support.Many countries have introduced specific laws and regulations to organize the gradual switch-off of analog broadcasting and encourage the adoption of new digital standards.Consequently,the digitization of Guinea’s broadcasting network cannot be carried out without taking into account the legal framework:allocation of resources and broadcasting players.Analog and digital broadcasting,according to regulatory texts,shows the relationships between the different communication management structures.As for digital broadcasting,we note the appearance of a new service,multiplex. 展开更多
关键词 APPLICATION textS legal MIGRATION television ANALOG digital Republic Guinea
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GSPT-CVAE: A New Controlled Long Text Generation Method Based on T-CVAE
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作者 Tian Zhao Jun Tu +1 位作者 Puzheng Quan Ruisheng Xiong 《Computers, Materials & Continua》 2025年第7期1351-1377,共27页
Aiming at the problems of incomplete characterization of text relations,poor guidance of potential representations,and low quality of model generation in the field of controllable long text generation,this paper propo... Aiming at the problems of incomplete characterization of text relations,poor guidance of potential representations,and low quality of model generation in the field of controllable long text generation,this paper proposes a new GSPT-CVAE model(Graph Structured Processing,Single Vector,and Potential Attention Com-puting Transformer-Based Conditioned Variational Autoencoder model).The model obtains a more comprehensive representation of textual relations by graph-structured processing of the input text,and at the same time obtains a single vector representation by weighted merging of the vector sequences after graph-structured processing to get an effective potential representation.In the process of potential representation guiding text generation,the model adopts a combination of traditional embedding and potential attention calculation to give full play to the guiding role of potential representation for generating text,to improve the controllability and effectiveness of text generation.The experimental results show that the model has excellent representation learning ability and can learn rich and useful textual relationship representations.The model also achieves satisfactory results in the effectiveness and controllability of text generation and can generate long texts that match the given constraints.The ROUGE-1 F1 score of this model is 0.243,the ROUGE-2 F1 score is 0.041,the ROUGE-L F1 score is 0.22,and the PPL-Word score is 34.303,which gives the GSPT-CVAE model a certain advantage over the baseline model.Meanwhile,this paper compares this model with the state-of-the-art generative models T5,GPT-4,Llama2,and so on,and the experimental results show that the GSPT-CVAE model has a certain competitiveness. 展开更多
关键词 Controllable text generation textual graph structuring text relationships potential characterization
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Multilingual Text Summarization in Healthcare Using Pre-Trained Transformer-Based Language Models
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作者 Josua Käser Thomas Nagy +1 位作者 Patrick Stirnemann Thomas Hanne 《Computers, Materials & Continua》 2025年第4期201-217,共17页
We analyze the suitability of existing pre-trained transformer-based language models(PLMs)for abstractive text summarization on German technical healthcare texts.The study focuses on the multilingual capabilities of t... We analyze the suitability of existing pre-trained transformer-based language models(PLMs)for abstractive text summarization on German technical healthcare texts.The study focuses on the multilingual capabilities of these models and their ability to perform the task of abstractive text summarization in the healthcare field.The research hypothesis was that large language models could perform high-quality abstractive text summarization on German technical healthcare texts,even if the model is not specifically trained in that language.Through experiments,the research questions explore the performance of transformer language models in dealing with complex syntax constructs,the difference in performance between models trained in English and German,and the impact of translating the source text to English before conducting the summarization.We conducted an evaluation of four PLMs(GPT-3,a translation-based approach also utilizing GPT-3,a German language Model,and a domain-specific bio-medical model approach).The evaluation considered the informativeness using 3 types of metrics based on Recall-Oriented Understudy for Gisting Evaluation(ROUGE)and the quality of results which is manually evaluated considering 5 aspects.The results show that text summarization models could be used in the German healthcare domain and that domain-independent language models achieved the best results.The study proves that text summarization models can simplify the search for pre-existing German knowledge in various domains. 展开更多
关键词 text summarization pre-trained transformer-based language models large language models technical healthcare texts natural language processing
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A survey on textual emotion cause extraction in social networks
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作者 Sancheng Peng Lihong Cao +3 位作者 Guojun Wang Zhouhao Ouyang Yongmei Zhou Shui Yu 《Digital Communications and Networks》 2025年第2期524-536,共13页
With the rapid development of web technology,Social Networks(SNs)have become one of the most popular platforms for users to exchange views and to express their emotions.More and more people are used to commenting on a... With the rapid development of web technology,Social Networks(SNs)have become one of the most popular platforms for users to exchange views and to express their emotions.More and more people are used to commenting on a certain hot spot in SNs,resulting in a large amount of texts containing emotions.Textual Emotion Cause Extraction(TECE)aims to automatically extract causes for a certain emotion in texts,which is an important research issue in natural language processing.It is different from the previous tasks of emotion recognition and emotion classification.In addition,it is not limited to the shallow-level emotion classification of text,but to trace the emotion source.In this paper,we provide a survey for TECE.First,we introduce the development process and classification of TECE.Then,we discuss the existing methods and key factors for TECE.Finally,we enumerate the challenges and developing trend for TECE. 展开更多
关键词 text EMOTION Emotion cause Machine learning Deep learning
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Fostering Student Metaphorical Thinking in EFL Reading Classes Through the Method of Constructing a Text Associative-Semantic Field
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作者 Daria Zhgun 《Sino-US English Teaching》 2025年第3期67-81,共15页
The present study explores the importance of developing metaphorical thinking skills in students within the framework of English as a Foreign Language(EFL)reading courses at the tertiary educational level.Metaphorical... The present study explores the importance of developing metaphorical thinking skills in students within the framework of English as a Foreign Language(EFL)reading courses at the tertiary educational level.Metaphorical thinking is viewed as the ability to envisage the world figuratively,perceive associatively,and express oneself creatively.It is crucial to recognize metaphors in texts,interpret the complex images they evoke,and generate new metaphors.It is especially needful in the current era of clip thinking and fragmented information processing when students often approach content superficially rather than comprehensively,leading to decreased cognitive activity and a diminished capacity to understand literature.To foster metaphorical thinking,the paper suggests building a text associative-semantic field focusing on metaphors.Due to its hierarchical structure,which can be envisioned as a dense nucleus surrounded by a central region of synonyms and further enveloped by a periphery of more loosely associated linguistic units,the text associative-semantic field is seen as a potent solution for facilitating improved visualization and more holistic comprehension of information,allowing students for expanding their vocabulary and strengthening associative connections.Notably,the study highlights analyzing the metaphors of emotional states as they contribute significantly to a more profound interpretation of the text,understanding the writer’s unique style,deepening the students’engagement with the book,and expanding their emotional experiences. 展开更多
关键词 EFL reading FICTION clip thinking METAPHOR metaphorical thinking emotion FEAR text associative-semantic field
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Translation Strategies for Chinese Cultural Terms in Academic Texts:A Case Study of“Jade Myth Belief and Chinese Spirit”
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作者 WANG Han-qing ZHAO Meng-yuan 《Journal of Literature and Art Studies》 2025年第4期324-328,共5页
This study investigates translation strategies for Chinese cultural terms in academic texts through a case study of Chapter 7 from“Jade Myth Belief and Chinese Spirit”.Using a qualitative research approach based on ... This study investigates translation strategies for Chinese cultural terms in academic texts through a case study of Chapter 7 from“Jade Myth Belief and Chinese Spirit”.Using a qualitative research approach based on cultural context framework and cognitive model,the study analyzes translation challenges and solutions in rendering cultural terms related to jade mythology and archaeological concepts.The research identifies three primary translation strategies:transliteration with annotation,domestication with explanation,and cognitive-based translation.The findings reveal that effective translation requires a balanced approach between maintaining academic precision and preserving cultural authenticity.The study demonstrates that successful translation of cultural terms in academic contexts demands a sophisticated understanding of both source and target cultural contexts,along with careful consideration of the academic audience’s needs.This research contributes to the field by providing practical insights for translators working with Chinese cultural texts in academic settings and proposing an approach to handling complex cultural terminology. 展开更多
关键词 cultural terms translation strategies academic texts Chinese culture jade mythology
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Heimtextil grows and starts with over 3,000 exhibitors and design icon Patricia Urquiola
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《China Textile》 2025年第1期54-55,共2页
On January 14,Heimtextil kicked off the new trade fair year with over 3,000 exhibitors from 65 countries.With steady growth,the leading trade fair for home and contract textiles and textile design is strongly position... On January 14,Heimtextil kicked off the new trade fair year with over 3,000 exhibitors from 65 countries.With steady growth,the leading trade fair for home and contract textiles and textile design is strongly positioned. This makes it a reliable platform for international participants.At the opening,architect and designer Patricia Urquiola presented her installation 'among-us' at Heimtextil. 展开更多
关键词 textiles EXHIBITOR text
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Heimtextil 2025:以纺织连接世界
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作者 张娜 《纺织导报》 2025年第2期79-82,共4页
2025年法兰克福国际家用及商用纺织品展览会(Heimtextil 2025)于1月14—17日在德国法兰克福举行,在为期4天的展会期间,来自全球142个国家及地区的展商与观众到场参与,进一步巩固了Heimtextil作为全球首屈一指的家用及商用纺织品与纺织... 2025年法兰克福国际家用及商用纺织品展览会(Heimtextil 2025)于1月14—17日在德国法兰克福举行,在为期4天的展会期间,来自全球142个国家及地区的展商与观众到场参与,进一步巩固了Heimtextil作为全球首屈一指的家用及商用纺织品与纺织设计展会的地位。 展开更多
关键词 德国法兰克福 text 纺织品 展会 HE
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Automatic Generation Method of Knowledge Graph for Complex Product Assembly Processes Based on Text Mining
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作者 Kunping Li Jianhua Liu +2 位作者 Sikuan Zhai Cunbo Zhuang Fengque Pei 《Chinese Journal of Mechanical Engineering》 2025年第6期256-271,共16页
Efficient preparation and assembly guidance for complex products relies heavily on semantic information in assembly process documents.This information encompasses various levels of elements and complex semantic relati... Efficient preparation and assembly guidance for complex products relies heavily on semantic information in assembly process documents.This information encompasses various levels of elements and complex semantic relationships.However,there is currently a scarcity of effective modeling techniques to express these documents'inherent assembly process knowledge.This study introduces a method for constructing an Assembly Process Knowledge Graph of Complex Products(APKG-CP)utilizing text mining techniques to tackle the challenges of high costs,low efficiency,and difficulty reusing process knowledge.Developing the assembly process knowledge graph involves categorizing entity and relationship classes from multiple levels.The Bert-BiLSTM-CRF model integrates BERT(bidirectional encoder representations from transformers),BiLSTM(bidirectional long short-term memory),and CRF(conditional random field)to extract knowledge entities and relationships in assembly process documents automatically.Furthermore,the knowledge fusion method automatically instantiates the assembly process knowledge graph.The proposed construction method is validated by constructing and visualizing an assembly process knowledge graph using data from an aerospace enterprise as an example.Integrating the knowledge graph with the assembly process preparation system demonstrates its effectiveness for process design. 展开更多
关键词 Complex Product Bert-BiLSTM-CRF Semantic information text mining Knowledge representation Multilevel ontology modeling
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English Translation of Tourism Text from a Perspective of Cognitive Construal
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作者 WANG Xin-ru GAO Wen-cheng 《Journal of Literature and Art Studies》 2025年第11期837-841,共5页
With the booming growth of global tourism, more and more tourist attractions and cultural heritage attract international tourists through different forms. As an important bridge for cultural communication, the transla... With the booming growth of global tourism, more and more tourist attractions and cultural heritage attract international tourists through different forms. As an important bridge for cultural communication, the translation of tourism texts not only needs to convey information accurately, but also needs to take into account cultural differences and cognitive characteristics. Cognitive construal theory, as an emerging theoretical framework for translation, provides an understanding and explanation of different dimensions in translation practice by focusing on human cognitive processes. This paper investigates the English translation of several tourism texts based on the cognitive construal theory and examines the cognitive mechanisms reflected in the translated texts. The study shows that the four dimensions of the cognitive construal all have an important impact on the English translation of tourism texts;people from different countries or ethnic backgrounds have different cognitive construals, so translators should flexibly adjust their cognitive construals in order to achieve a specific translation purpose. This study helps people to understand translation activities from the perspective of cognitive construal and provides a reference for the practice of translating tourism texts. 展开更多
关键词 cognitive construal tourism text translation study cognitive construal transformation
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Gaps in science-policy interface:textual analysis of scientific insights overlooked by policies during COVID-19
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作者 Chao Ren Menghui Yang 《Journal of Data and Information Science》 2025年第3期92-118,共27页
Purpose:Policies have often,albeit inadvertently,overlooked certain scientific insights,especially in the handling of complex events.This study aims to systematically uncover and evaluate pivotal scientific insights t... Purpose:Policies have often,albeit inadvertently,overlooked certain scientific insights,especially in the handling of complex events.This study aims to systematically uncover and evaluate pivotal scientific insights that have been underrepresented in policy documents by leveraging extensive datasets from policy texts and scholarly publications.Design/methodology/approach:This article introduces a research framework aimed at excavating scientific insights that have been overlooked by policy,encompassing four integral parts:data acquisition and preprocessing,the identification of overlooked content through thematic analysis,the discovery of overlooked content via keyword analysis,and a comprehensive analysis and discussion of the overlooked content.Leveraging this framework,the research conducts an in-depth exploration of the scientific content overlooked by policies during the COVID-19 pandemic.Findings:During the COVID-19 pandemic,scientific information in four domains was overlooked by policy:psychological state of the populace,environmental issues,the role of computer technology,and public relations.These findings indicate a systematic underrepresentation of important scientific insights in policy.Research limitations:This study is subject to two key limitations.Firstly,the text analysis method—relying on pre-extracted keywords and thematic structures—may not fully capture the nuanced context and complexity of scientific insights in policy documents.Secondly,the focus on a limited set of case studies restricts the broader applicability of the conclusions across diverse situations.Practical implications:The study introduces a quantitative framework using text analysis to identify overlooked scientific content in policy,bridging the gap between science and policy.It also highlights overlooked scientific information during COVID-19,promoting more evidence-based and robust policies through improved science-policy integration.Originality/value:This paper provides new ideas and methods for excavating scientific information that has been overlooked by policy,further deepens the understanding of the interaction between policy and science during the COVID-19 period,and lays the foundation for the more rational use of scientific information in policy-making. 展开更多
关键词 Science-policy interface COVID-19 policy Overlooked science text analysis
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Text Organisational Strategies in University Students’Letters of Complaint
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作者 Feuba Elvis Wanji 《Journal of Literature and Art Studies》 2025年第5期424-431,共8页
This paper examines how Francophone university learners of English make use of text organization strategies in their letters of complaint.Building on Connor et al(1995)Text Organization Model and Penelope Brown and Le... This paper examines how Francophone university learners of English make use of text organization strategies in their letters of complaint.Building on Connor et al(1995)Text Organization Model and Penelope Brown and Levinson(1987)Politeness theory,it was found out that these learners’scripts suffer from some text organization and politeness errors.These students face problems with their use of enclosures,buffers,addresses,complimentary close and signature.In fact,only 5(10%)of the letters had enclosures,none had buffer(00%)and 10(20%)had request for action.It was realized that though most of the letters had subjects,they were,however,wrongly placed above the salutation.As far as politeness strategy is concerned,most of the letters were void of polite language.This might be as a result of their linguistic background.We therefore suggest that to help solve the issue of linguistic interference and communicative competence,teachers teaching these students should employ the comparative and contrastive methods of language teaching highlighting the commonalities and dissimilarities between English and French grammar. 展开更多
关键词 text organizational strategy letters of complaint lettres modernes Francaise
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China Agriculture Develop from 2024 to 2025-A Text Research of Government Report
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作者 WANG Xin-xin 《Journal of Literature and Art Studies》 2025年第11期897-901,共5页
China agriculture encounters and achieves persistently develop,push and robust from 2024 to 2025,and achieve sustainable perfect,reshape and remold from closing years.China agriculture develop is a new start point of ... China agriculture encounters and achieves persistently develop,push and robust from 2024 to 2025,and achieve sustainable perfect,reshape and remold from closing years.China agriculture develop is a new start point of China agriculture,is China agriculture develop’s new orientation,new protect,and new orientation. 展开更多
关键词 China agriculture develop new orientation text research
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基于双向增强和多阶监督的Text2SQL训练语料生成
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作者 黄浩 《计算机科学与应用》 2025年第7期1-8,共8页
针对Text2SQL任务中训练语料人工标注成本高、场景覆盖有限的问题,本文提出一种基于双向增强与多阶监督的语料生成框架。该方法通过问题到SQL的正向增强与SQL到问题的逆向增强构建双向数据流,结合大语言模型的上下文理解与代码生成能力... 针对Text2SQL任务中训练语料人工标注成本高、场景覆盖有限的问题,本文提出一种基于双向增强与多阶监督的语料生成框架。该方法通过问题到SQL的正向增强与SQL到问题的逆向增强构建双向数据流,结合大语言模型的上下文理解与代码生成能力,创新性地引入四阶段监督审查机制(提问多样性扩充、提问质量审查、SQL自动生成、生成质量审查),极大地提高了低资源条件下训练语料生成的效率与质量。实验表明,该方法生成的语料所训练出来的模型执行准确率相较于传统人工标注语料微调模型提升了16.3%,相较于少样本提示学习方法提升了35.7%。其次,在语料的泛化迁移性方面,本文方法生成的语料对模型尺寸大小和提问难易程度的适应性都高于人工少量标注方式。 展开更多
关键词 双向增强 多阶监督 text2SQL 训练语料生成 低语言学习
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