Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Using R script I read values from database. The values contains the following data frame.

>values #return the output as follows

ID           Date      Hour      Value
1          2013-06-01    8           9
2          2013-06-01    9          17
3          2013-06-01   10          16
4          2013-06-01   11          21
5          2013-06-01   12          19
6          2013-06-01   13          15
7          2013-06-01   14          14
8          2013-06-01   15          14
9          2013-06-01   16          21
10         2013-06-01   17          22
11         2013-06-01   18          13
12         2013-06-01   19           2
13         2013-06-01   20           2
14         2013-06-01   21           1
15         2013-06-01   22           1
16         2013-06-01   23           1
17         2013-06-02    0           0
18         2013-06-02    1           0
19         2013-06-02    2           0
20         2013-06-02    3           1
21         2013-06-02    4           0
22         2013-06-02    5           0
23         2013-06-02    6           1
24         2013-06-02    7           1
25         2013-06-02    8          20
26         2013-06-02    9          21
27         2013-06-02   10          21
28         2013-06-02   11          15
29         2013-06-02   12          12
30         2013-06-02   13          11
31         2013-06-02   14          10
32         2013-06-02   15          16
33         2013-06-02   16          21
34         2013-06-02   17          22
35         2013-06-02   18          18
36         2013-06-02   19           9
37         2013-06-02   20           2
38         2013-06-02   21           0
39         2013-06-02   23           0

I want to find out the missing hours in the dataframe and add 0 to the Value in that missing hour of the date.
Example:
From the above dataframe values, the hour 22 is missing for the date 2013-06-02. I want to insert a row between the hour 21 and 23 as

ID           Date      Hour      Value
39         2013-06-02    22         0

How can i achieve this?

I tried as follows:

I have a hours list as

>hours<-c(0:23)
> hours #return as follows
 [1]  0  1  2  3  4  5  6  7  8  9 10 11 12 13 14 15 16 17 18 19 20 21 22 23

>i<-values$Hour[1]+1
>count<-nrow(values)
>for(j in 1:count){
+h<-values$Hour[j]
+hr<-hours[i]
+if(h != hr)
+{
+#write code to insert row
+}
+i<-i+1
+if(i==25)
+{
+i<-c(1)
+}
+}

Please help me...

share|improve this question
1  
What would you want the id to be for Date = 2013-06-01 the first 7 entries... that is, Hour = 0:7...? –  Arun Aug 20 '13 at 11:15
    
@Arun missing data –  Nandu Aug 20 '13 at 11:22
    
Then, shouldn't ID value for Date=2013-06-02, Hour=22 be NA as well (instead of 39 as you've shown)? –  Arun Aug 20 '13 at 11:24
    
@Arun I want to insert like this format. –  Nandu Aug 20 '13 at 11:25
    
You mean you don't want to fill missing hours for 2013-06-01? I don't understand... –  Arun Aug 20 '13 at 11:28
show 1 more comment

2 Answers

up vote 3 down vote accepted

For each date make rows 0:23, convert to dataframe, then merge with your data.

Your data:

values <- read.table(text="ID           Date      Hour      Value
1          2013-06-01    8           9
2          2013-06-01    9          17
3          2013-06-01   10          16
4          2013-06-01   11          21
5          2013-06-01   12          19
6          2013-06-01   13          15
7          2013-06-01   14          14
8          2013-06-01   15          14
9          2013-06-01   16          21
10         2013-06-01   17          22
11         2013-06-01   18          13
12         2013-06-01   19           2
13         2013-06-01   20           2
14         2013-06-01   21           1
15         2013-06-01   22           1
16         2013-06-01   23           1
17         2013-06-02    0           0
18         2013-06-02    1           0
19         2013-06-02    2           0
20         2013-06-02    3           1
21         2013-06-02    4           0
22         2013-06-02    5           0
23         2013-06-02    6           1
24         2013-06-02    7           1
25         2013-06-02    8          20
26         2013-06-02    9          21
27         2013-06-02   10          21
28         2013-06-02   11          15
29         2013-06-02   12          12
30         2013-06-02   13          11
31         2013-06-02   14          10
32         2013-06-02   15          16
33         2013-06-02   16          21
34         2013-06-02   17          22
35         2013-06-02   18          18
36         2013-06-02   19           9
37         2013-06-02   20           2
38         2013-06-02   21           0
39         2013-06-02   23           0", header = TRUE, as.is=T)

Here's the code:

#make dummy data frame with all dates and hours
dummy <- as.data.frame(
  cbind(
    sort(rep(unique(values$Date),24)),
    rep(0:23,length(unique(values$Date)))))
colnames(dummy) <- c("Date","Hour")
dummy$Date <- as.character(dummy$Date)
dummy$Hour <- as.numeric(as.character(dummy$Hour))

#merge with values dataframe
values_v1 <- merge(dummy,values,all.x=T)

#substitute NAs with 0(zero)
values_v1[is.na(values_v1)] <- 0
share|improve this answer
    
I'd say, as such, this is more of a comment than an answer. Please elaborate on it. –  Arun Aug 20 '13 at 11:18
    
How can i achieve this?- the above output –  Nandu Aug 20 '13 at 11:24
    
The code is working but the position of the value inserted is not correct –  Nandu Aug 20 '13 at 11:47
    
@Arun even without code, it was a valid answer. OP was trying to use For loops, I suggested to use merge. –  zx8754 Aug 20 '13 at 11:47
1  
Sorry, that was not a valid answer (a valid comment, yes). Down-vote reverted. But I don't think this'll give the output OP wants (exactly). –  Arun Aug 20 '13 at 11:52
show 4 more comments

Here's a way using data.table:

require(data.table) 
# install the package and then load if you don't have it already
dt <- data.table(values, key="Hour")
out <- merge(dt[, .SD[J(Hour[1]:23), roll=-Inf], by=Date, 
      .SDcols = c("Hour", "ID")], dt[, list(Date, Hour, Value)], 
      by=c("Date", "Hour"), all=TRUE)[is.na(Value), Value := 0L]

Explanation: Your problem is a bit different/complicated because 1) you seem to want to fill in missing values only when they happen in the middle but not anywhere else (beginning or end) and 2) you want to fill the missing value of ID with the same value of the last non-missing ID (which can be accomplished with a roll), but you want to fill the Value corresponding to the missing ID with 0 (which can't be accomplished with a roll).

So, the idea then, is to first get just the missing value of ID by using roll=-Inf. This is accomplished by the statement:

dt[, .SD[J(Hour[1]:23), roll=-Inf], by=Date, .SDcols = c("Hour", "ID")]

This is after setting the key to Hour.

Now, we need to get a NA for Value for the newly added ID. So, we merge it back with dt (with ID removed, as we've already taken care of it). This is done by:

dt[, list(Date, Hour, Value)]

Once we've these, we merge on the columns Date, Hour and use the parameter all=TRUE to fill in missing values as well. Finally, we replace any NA for Value to 0.

share|improve this answer
    
I don't really get it (I'll have to play around with it for a bit), but it works, so have a +1 on me. Cool code! –  Simon O'Hanlon Aug 20 '13 at 11:53
    
@SimonO101, Which part of the explanation is unclear to you (so that I can try to explain it better)? –  Arun Aug 20 '13 at 11:58
1  
Well I don't now how roll=-Inf works for a start, but it's not your explanation that doesn't make sense, it's my comprehension of the data.table package is not yet good enough. It's my problem, not yours! –  Simon O'Hanlon Aug 20 '13 at 12:01
2  
But when I try to run your code it says Error: could not find function "data.table" please help me... :-) –  Simon O'Hanlon Aug 20 '13 at 12:11
1  
I get it. One rolls the previous obs into missing values and the other rolls the next observation back into a missing value. :-) Thanks –  Simon O'Hanlon Aug 20 '13 at 12:14
show 1 more comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.