3

我正在尝试将一个函数(weight.func)传递给另一个调用 ddply 的函数(包装器)。我希望 ddply 使用该函数(weight.func)作为其计算的一部分。当 weight.func 设置为“全局”时,我得到了我想要的输出,但当它作为匿名函数传递给包装器时却没有。

我可以让 ddply 做我想做的事吗?这是一个代码示例:

> print(sampleData)
   studentId   problem  part       workerId rating
1       8001 problem26 partA A127R5QI5OGBIK    0.0
2       8001 problem26 partA A1FCLYRBAB430F    0.0
3       8001 problem26 partA A25FZQY34C6RVO    0.0
4       8001 problem26 partA A3G0MO562MHMZ3    0.5
5       8001 problem26 partA A3RB9ZOIUC3NWG    2.0
6       8001 problem26 partB A1FCLYRBAB430F    0.5
7       8001 problem26 partB A1XRDZKSJBWY8Q    0.5
8       8001 problem26 partB A22CRWMZUX7FFR    0.5
9       8001 problem26 partB A25FZQY34C6RVO    1.0
10      8001 problem26 partB A3G0MO562MHMZ3    0.5
11      8001 problem27 partA A1ET309DW6M2XA    2.0
12      8001 problem27 partA A1FCLYRBAB430F    0.0
13      8001 problem27 partA A22CRWMZUX7FFR    0.0
14      8001 problem27 partA A25FZQY34C6RVO    0.0
15      8001 problem27 partA A3G0MO562MHMZ3    0.0
16      8001 problem27 partB A1FCLYRBAB430F    1.0
17      8001 problem27 partB A22CRWMZUX7FFR    0.0
18      8001 problem27 partB A25FZQY34C6RVO    0.0
19      8001 problem27 partB A2U9676210WST5    0.0
20      8001 problem27 partB A3G0MO562MHMZ3    0.0
21      8002 problem26 partA A127R5QI5OGBIK    0.0
22      8002 problem26 partA A1FCLYRBAB430F    0.5
23      8002 problem26 partA A22CRWMZUX7FFR    0.0
24      8002 problem26 partA A25FZQY34C6RVO    2.0
25      8002 problem26 partA A3G0MO562MHMZ3    0.5
26      8002 problem26 partB A17EHJZNJGNRAN    2.0
27      8002 problem26 partB A1FCLYRBAB430F    0.0
28      8002 problem26 partB A2IPRDTE6B4TAB    0.0
29      8002 problem26 partB A3G0MO562MHMZ3    0.0
30      8002 problem26 partB  A6SON3OS15XKA    0.0
31      8002 problem27 partA A1FCLYRBAB430F    0.0
32      8002 problem27 partA A25FZQY34C6RVO    0.0
33      8002 problem27 partA A2IPRDTE6B4TAB    0.0
34      8002 problem27 partA A2U9676210WST5    0.0
35      8002 problem27 partA A3G0MO562MHMZ3    0.0
36      8002 problem27 partB A1FCLYRBAB430F    0.0
37      8002 problem27 partB A1V52SSKROBV8E    2.0
38      8002 problem27 partB A25FZQY34C6RVO    2.0
39      8002 problem27 partB A2IPRDTE6B4TAB    0.0
40      8002 problem27 partB A3G0MO562MHMZ3    0.0
> 
> #Make a wrapper
> wrapper <- function ( ratingData, weight.func ) {
+   print(weight.func) #prove that the function is being passed
+   ddply(ratingData, c('studentId','problem','part'), summarize, 
+           sum.weights = sum ( weight.func(rating)  ))
+ }
> wrapper( sampleData, weight.func=function(x) (x+.001)^-1  )
function(x) (x+.001)^-1
Error in data.frame(sum.weights = sum(weight.func(rating))) : 
  could not find function "weight.func"
> 
> #'globally' declare weight.func
> weight.func <- function(x) (x+.001)^-1
> wrapper( sampleData, weight.func=NULL  )
NULL
  studentId   problem  part sum.weights
1      8001 problem26 partA 3002.495758
2      8001 problem26 partB    8.983033
3      8001 problem27 partA 4000.499750
4      8001 problem27 partB 4000.999001
5      8002 problem26 partA 2004.491766
6      8002 problem26 partB 4000.499750
7      8002 problem27 partA 5000.000000
8      8002 problem27 partB 3000.999500

第二个输出是目标。任何帮助表示赞赏!(包括一种非基于 plyr 的方式来完成相同的任务。)

上面的例子是一个玩具例子。这是我可以重现该行为的最简单的情况。

4

4 回答 4

2

你可以使用聚合:

w2 <- function(d, f){
  aggregate(rating~studentId+problem+part, function(x)sum(f(x)), data=d)
}

w2( sampleData, function(x) (x+.001)^-1  )

请注意,聚合列的名称是自动确定的,因此如果要命名则需要自己做。

你可以通过 ddply 做同样的事情而无需总结

wrapper <- function ( ratingData, weight.func ) {
   ddply(ratingData, c('studentId','problem','part'), function(x)c(sum.weights=sum(weight.func(x$rating))))
 }

wrapper( sampleData, weight.func=function(x) (x+.001)^-1  )

在这种情况下,您可以在函数内指定名称。

于 2010-11-27T03:02:29.270 回答
2

这是 plyr 中的一个已知错误:https ://github.com/hadley/plyr/issues#issue/3

于 2010-11-30T18:53:37.153 回答
0

我不确定我做了哪个更改(取出“sum”之后的空格或将 NULL 更改为真正的函数或 << something >> ),但这现在有效:

wrapper <- function ( ratingData, weight.func=weight.func) {
      ddply(ratingData, .variables=c('studentId','problem','part'),  
            .fun=summarise, sum.weights = sum(weight.func(rating)  ))
  }

wrapper( sampleData, weight.func=weight.func  )
  studentId   problem  part sum.weights
1      8001 problem26 partA 3002.495758
2      8001 problem26 partB    8.983033
3      8001 problem27 partA 4000.499750
4      8001 problem27 partB 4000.999001
5      8002 problem26 partA 2004.491766
6      8002 problem26 partB 4000.499750
7      8002 problem27 partA 5000.000000
8      8002 problem27 partB 3000.999500
于 2010-11-27T02:22:08.937 回答
0

plyr 中有关此问题的更新(https://github.com/hadley/plyr/issues/3):

使用 plyr 中的 'here' 函数,只需将 'summarize' 替换为 'here(summarize)' 即可访问调用 ddply 的环境。

wrapper <- function(ratingData, weight.func){
           ddply(ratingData, c('studentId','problem','part'),
                 here(summarize),  # here(summarize)!
                 sum.weights = sum(weight.func(rating))
                 )
            }
于 2017-03-31T11:16:42.843 回答