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yudonglin506311858 avatar yudonglin506311858 commented on May 20, 2024

数据增强data augmentation是不是也可以用上?https://zhuanlan.zhihu.com/p/29513760。我们必须知道做出的统计推断是有一定概率是错误的。第一类统计错误是弃真,即原假设成立(不存在差异)但我们放弃原假设,接受备择假设,即真实情况不存在差异但我们错误认为有差异;第二类统计错误是取伪,即原假设不成立但我们选择接受原假设,即真实情况存在差异但我们错误认为没有差异。统计错误是必然会存在的,一个高了另一个可能就会降低,因此只要增大样品量才能同时降低这两种统计学错误,即提高特异性和敏感性。但具体怎么做还是手残。

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hduyyg avatar hduyyg commented on May 20, 2024

可以的,这个链接里面就有我之前处理数据时,用到的图片缩放

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rujinshi avatar rujinshi commented on May 20, 2024

NMF非负矩阵分解?
NMF最成功的一类应用是在图像的分析和处理领域?
NMF应用维基百科

对于降维今天看了一下,我之前听到最多的就是PCA。但似乎不是那么回事。
什么时候使用PCA和LDA?
PCA是无类别信息,不知道样本属于哪个类,用PCA,通常对全体数据操作。LDA有类别信息,投影到类内间距最小and类间间距最大也有一些算法,先用PCA搞一遍,再用LDA搞一遍,也有相反。反正有论文是这么搞的,至于是不是普适,要看具体问题。
在有监督降维中还有一个最大边缘准则法(Maximum Margin Criterion,MMC)。
我更想用NMF+RF试一下
PCA也试一下。

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