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社会团结的先声:皮埃尔·勒鲁的贫困治理思想 被引量:1
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作者 张柏榕 《学海》 北大核心 2023年第4期88-96,共9页
19世纪中期,产业工人贫困问题在法国社会凸显,社会主义者纷纷提出改革方案,限制自由市场竞争产生的破坏性影响。皮埃尔·勒鲁认为,贫困现象源于19世纪法国社会道德的衰落与统一共识的破碎;治理贫困不仅需要从实践上变革劳动组织和... 19世纪中期,产业工人贫困问题在法国社会凸显,社会主义者纷纷提出改革方案,限制自由市场竞争产生的破坏性影响。皮埃尔·勒鲁认为,贫困现象源于19世纪法国社会道德的衰落与统一共识的破碎;治理贫困不仅需要从实践上变革劳动组织和所有权,更要在社会智识中建设稳定的道德秩序,以个体间的世俗团结重塑慈善伦理。这一思想开启了法国社会团结理论的先声,促使19世纪法国慈善话语从以教会救济为主的慈善伦理,向以社会责任为主的世俗团结原则转换,对法国社会福利体系的构建产生深刻影响。 展开更多
关键词 皮埃尔·勒鲁 贫困 社会团结 社会主义 慈善
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论皮埃尔·勒鲁的平等观 被引量:2
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作者 喻名峰 毕金华 《湖南大众传媒职业技术学院学报》 2001年第2期81-85,共5页
皮埃尔·勒鲁,十九世纪法国著名小资产阶级空想社会主义者,希望以宗教社会主义走向人类平等。他不仅对法国革命三人政治口号见解独特,而且对平等进行全面诠释。他认为平等无时不在,包含种族、民族、男女平等等。他的理论,特别是他... 皮埃尔·勒鲁,十九世纪法国著名小资产阶级空想社会主义者,希望以宗教社会主义走向人类平等。他不仅对法国革命三人政治口号见解独特,而且对平等进行全面诠释。他认为平等无时不在,包含种族、民族、男女平等等。他的理论,特别是他对平等的诠释至今还闪耀着人类智慧的光辉,具有极高的理想价值。 展开更多
关键词 皮埃尔·勒鲁 平等观 平等同一原则 公共用膳 宗教社会主义
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Spatio-Temporal Variation of HIV Infection in Kenya
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作者 Benard Tonui Samuel Mwalili Anthony Wanjoya 《Open Journal of Statistics》 2018年第5期811-830,共20页
Disease mapping is the study of the distribution of disease relative risks or rates in space and time, and normally uses generalized linear mixed models (GLMMs) which includes fixed effects and spatial, temporal, and ... Disease mapping is the study of the distribution of disease relative risks or rates in space and time, and normally uses generalized linear mixed models (GLMMs) which includes fixed effects and spatial, temporal, and spatio-temporal random effects. Model fitting and statistical inference are commonly accomplished through the empirical Bayes (EB) and fully Bayes (FB) approaches. The EB approach usually relies on the penalized quasi-likelihood (PQL), while the FB approach, which has increasingly become more popular in the recent past, usually uses Markov chain Monte Carlo (McMC) techniques. However, there are many challenges in conventional use of posterior sampling via McMC for inference. This includes the need to evaluate convergence of posterior samples, which often requires extensive simulation and can be very time consuming. Spatio-temporal models used in disease mapping are often very complex and McMC methods may lead to large Monte Carlo errors if the dimension of the data at hand is large. To address these challenges, a new strategy based on integrated nested Laplace approximations (INLA) has recently been recently developed as a promising alternative to the McMC. This technique is now becoming more popular in disease mapping because of its ability to fit fairly complex space-time models much more quickly than the McMC. In this paper, we show how to fit different spatio-temporal models for disease mapping with INLA using the Leroux CAR prior for the spatial component, and we compare it with McMC using Kenya HIV incidence data during the period 2013-2016. 展开更多
关键词 HIV INLA McMC leroux CAR Prior DISEASE MAPPING SPATIO-TEMPORAL MODELS
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