【读书会】Python自然语言处理 #226
Replies: 23 comments
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笔记:https://www.jianshu.com/p/dba099750398 |
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第一天,40页 |
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目的是:机器学习实战基本看完了,了解机器学习可做的方向大概有nlp和推荐系统,想深入了解下nlp,主要是是nlp框架的使用,尤其是中文nlp框架。 |
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更新心得:https://apachecn.github.io/home/read/nlp-2-python-nltk 2018--8=20 第一天: |
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目的:互相监督学习。对nlp感兴趣。 |
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第一天:看完了第一章 |
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第二天:第二章完成 |
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第三天:第三章完成 |
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第三天:完成第三章 |
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第二天:第二章 |
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相互监督,看书就是快 |
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第四天:第四章完成 |
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第五天:第五章完成 |
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杭州-幸福秋末凋零 21:59:51
想起来当年做小白,干kaggle的时候,现在坚持下来,的确天翻地覆!哈哈哈 |
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最大熵原理是一种选择随机变量统计特性最符合客观情况的准则,也称为最大信息原理。 在投资时常常讲不要把所有的鸡蛋放在一个篮子里,这样可以降低风险。在信息处理中,这个原理同样适用。在数学上,这个原理称为最大熵原理。 |
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机器学习“判定模型”和“生成模型”有什么区别? 生成模型(generative model)通过学习先验分布来推导后验分布而进行分类, |
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第六-第九:这几天在外面,没有电脑,所以只能看看书,休息了一天,看完了六、七、八章,这几章开始,NLP的知识扑灭而来,看完之后会对整体的NLP分析和NLP的一些基本任务有比较好的了解和把握。 |
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8.6 文法开发 - 树库和方法 279 页 NLTK 语料库收集了来自PE08 跨框架跨领域分析器评估共享任务的数据。 |
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英文地址: https://www.nltk.org/book |
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命名实体:https://github.com/sgrvinod/a-PyTorch-Tutorial-to-Sequence-Labeling |
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自然语言处理:(推荐一下) |
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已学习完这里面的命名实体的内容,虽然不是很精致,不过整体没有问题。不过keras封装的太严实,需要自己去找很多资料研究下算法,准备有空做一个pytorch版本的 |
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【读书会】Python自然语言处理
@片刻 && @诺木人 会进行语音: 沟通进度和督促学习
历史学习
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