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浅议餐饮服务食品操作专间设置预进间的必要性与合理性 被引量:1
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作者 童英 张军 +3 位作者 杨基成 许菲 李玉芝 王健 《中国卫生监督杂志》 2018年第2期188-192,共5页
餐饮服务食品操作专间属于对清洁要求较高的食品操作场所。本文旨在通过对近年来合肥市开展餐饮服务经营单位预防性审查和日常监管等资料的总结和分析,对餐饮服务食品操作专间设置预进间的必要性与合理性进行探讨,以期对餐饮服务食品安... 餐饮服务食品操作专间属于对清洁要求较高的食品操作场所。本文旨在通过对近年来合肥市开展餐饮服务经营单位预防性审查和日常监管等资料的总结和分析,对餐饮服务食品操作专间设置预进间的必要性与合理性进行探讨,以期对餐饮服务食品安全监管有关规范的修订有所助益。作者认为:在餐饮服务业进行预防性审查很有必要;在幼儿园食堂备餐间入口处设置预进间既无必要也不合理;在学校和职工食堂严格就餐场所门窗防蝇防尘设施的设置和使用管理,加强对就餐场所防护措施的日常监管更有意义。建议将餐馆食品处理区面积与就餐场所面积之比改为适当比例的强制执行指标。 展开更多
关键词 餐饮服务 预进间 必要性 合理性
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Study and Application of Fault Prediction Methods with Improved Reservoir Neural Networks 被引量:2
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作者 朱群雄 贾怡雯 +1 位作者 彭荻 徐圆 《Chinese Journal of Chemical Engineering》 SCIE EI CAS CSCD 2014年第7期812-819,共8页
Time-series prediction is one of the major methodologies used for fault prediction. The methods based on recurrent neural networks have been widely used in time-series prediction for their remarkable non-liner mapping... Time-series prediction is one of the major methodologies used for fault prediction. The methods based on recurrent neural networks have been widely used in time-series prediction for their remarkable non-liner mapping ability. As a new recurrent neural network, reservoir neural network can effectively process the time-series prediction. However, the ill-posedness problem of reservoir neural networks has seriously restricted the generalization performance. In this paper, a fault prediction algorithm based on time-series is proposed using improved reservoir neural networks. The basic idea is taking structure risk into consideration, that is, the cost function involves not only the experience risk factor but also the structure risk factor. Thus a regulation coefficient is introduced to calculate the output weight of the reservoir neural network. As a result, the amplitude of output weight is effectively controlled and the ill-posedness problem is solved. Because the training speed of ordinary reservoir networks is naturally fast, the improved reservoir networks for time-series prediction are good in speed and generalization ability. Experiments on Mackey–Glass and sunspot time series prediction prove the effectiveness of the algorithm. The proposed algorithm is applied to TE process fault prediction. We first forecast some timeseries obtained from TE and then predict the fault type adopting the static reservoirs with the predicted data.The final prediction correct rate reaches 81%. 展开更多
关键词 Fault prediction Time series Reservoir neural networks Tennessee Eastman process
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