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整党文件学习问答(二则)
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作者 余汉康 《学习与实践》 1984年第4期44-45,共2页
问:为什么有的党员在学习整党文件时有信心,看到不正之风时又没有信心?答:这些同志所以从有信心变成没有信心,很重要的原因是,在“看”字上出了毛病。何以见得?
关键词 学习问答 文件 不正之风 信心 “看”
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整党文件学习问答(三则)
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《学习与实践》 1984年第2期53-55,共3页
问;有的党员说:“我一不反对中央。二不贪污盗窃,三不违法乱纪,整不整党与我关系不大。”整党果真与这些党员无关吗? 答。不是的。
关键词 学习问答 文件 违法乱纪 党员
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《商业企业经营管理学》学习问答
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作者 崔德邻 《远程教育杂志》 1991年第5期8-13,共6页
第一章商业企业一、什么是商业企业?商业企业是一种专门从事商品交换活动,并相应具有一定劳动力、生产资料和组织体系,享有自主经营、独立核算的权利,取得法人资格的经济组织。
关键词 商业企业 经营管理学 学习问答 交换活动 组织体系 生产资料 自主经营 独立核算
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A survey of deep learning-based visual question answering 被引量:1
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作者 HUANG Tong-yuan YANG Yu-ling YANG Xue-jiao 《Journal of Central South University》 SCIE EI CAS CSCD 2021年第3期728-746,共19页
With the warming up and continuous development of machine learning,especially deep learning,the research on visual question answering field has made significant progress,with important theoretical research significanc... With the warming up and continuous development of machine learning,especially deep learning,the research on visual question answering field has made significant progress,with important theoretical research significance and practical application value.Therefore,it is necessary to summarize the current research and provide some reference for researchers in this field.This article conducted a detailed and in-depth analysis and summarized of relevant research and typical methods of visual question answering field.First,relevant background knowledge about VQA(Visual Question Answering)was introduced.Secondly,the issues and challenges of visual question answering were discussed,and at the same time,some promising discussion on the particular methodologies was given.Thirdly,the key sub-problems affecting visual question answering were summarized and analyzed.Then,the current commonly used data sets and evaluation indicators were summarized.Next,in view of the popular algorithms and models in VQA research,comparison of the algorithms and models was summarized and listed.Finally,the future development trend and conclusion of visual question answering were prospected. 展开更多
关键词 computer vision natural language processing visual question answering deep learning attention mechanism
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