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I'm having trouble when trying to calculate the average temperature by hour.

I have a data frame with date, time (hh:mm:ss p.m./a.m.)and temperature. What I need is to extract the mean temperature by hour in order to plot daily variation of temperature.

I'm new to R, but did a try with what I know: I first tried by transforming hours into numbers, then extracting the first two characters, and then to calculate the mean but it didn't work very well. Moreover I have so many files to analize that it would be much better to have something more automated and clean than the "solution" I found.

I believe it must be a better way to calculate averages by hours in R so I've been looking for the answer in other posts here. Unfortunately I couldn't find a clear answer regarding extracting statistics from time data.

My data looks like this

    date    hour  temperature

1 28/12/2013 13:03:01 41.572

2 28/12/2013 13:08:01 46.059

3 28/12/2013 13:13:01 48.55

4 28/12/2013 13:18:01 49.546

5 28/12/2013 13:23:01 49.546

6 28/12/2013 13:28:01 49.546

7 28/12/2013 13:33:01 50.044

8 28/12/2013 13:38:01 50.542

9 28/12/2013 13:43:01 50.542

10 28/12/2013 13:48:01 51.04

11 28/12/2013 13:53:01 51.538

12 28/12/2013 13:58:01 51.538

13 28/12/2013 14:03:01 50.542

14 28/12/2013 14:08:01 51.04

15 28/12/2013 14:13:01 51.04

16 28/12/2013 14:18:01 52.534

17 28/12/2013 14:23:01 53.031

18 28/12/2013 14:28:01 53.031

19 28/12/2013 14:33:01 53.031

20 28/12/2013 14:38:01 51.538

21 28/12/2013 14:43:01 53.031

22 28/12/2013 14:48:01 53.529

etc (24hs data)

And I would like R to calculate average per hour (without taking into account differences in minutes or seconds, just by hour)

Any suggestion? Thank you very much in advance!

Regards, Maria

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1 Answer 1

up vote 0 down vote accepted

It would always easier if sample data and expected output is given in the question.

Solution with Data.table package

require(data.table)
data <- fread('temp.csv',sep=',') #Assuming your data is in temp.csv
#if above step not executed, convert the data frame to data.table 
data <- data.table(data)
> str(data)
Classes ‘data.table’ and 'data.frame':  12 obs. of  3 variables:
$ date       : chr  "28/12/2013" "28/12/2013" "28/12/2013" "28/12/2013" ...
$ hour       : chr  "13:03:01" "13:08:01" "13:13:01" "13:18:01" ...
$ temperature: num  41.6 46.1 48.5 49.5 49.5 ...

> data
      date     hour    temperature      avg
1: 27/12/2013 13:00:00       42.99 35.78455
2: 27/12/2013 14:00:00       65.97 35.78455
3: 27/12/2013 15:00:00       63.57 35.78455 

  data[,list(avg=mean(temperature)),by=hour] #dataset is sorted by hour
    hour   avg
1: 13:00:00 42.99
2: 14:00:00 65.97
3: 15:00:00 63.57
  data[,list(avg=mean(temperature)),by="date,hour"] #data set is grouped by date,then hour
        date     hour   avg
1: 27/12/2013 13:00:00 42.99
2: 27/12/2013 14:00:00 65.97
3: 27/12/2013 15:00:00 63.57

data[,list(avg=mean(temperature)),by=list(date,hour(as.POSIXct(data$hour, format = "%H:%M:%S")))] # to group by hour only 
     date     hour    avg
1: 27/12/2013    1 29.530
2: 27/12/2013    4 65.970
share|improve this answer
    
I'm sorry for not being more specific. I'm learnign how to post my questions too. Thank you for your suggestions. I'll edit my question according to your answer. –  Maria Jul 9 '14 at 5:24
    
I'm still confused with your question. Does my answer solve your problem? You only want to group the hour( exclude minute and second ) –  on_the_shores_of_linux_sea Jul 9 '14 at 5:32
    
Exactly,I tried your script but I got this error message Error in [.data.frame(data, , list(avg = mean(temperature)), by = hour) : unused argument (by = hour) I'm looking more deeply to find out why I'm getting that error message –  Maria Jul 9 '14 at 5:41
    
You are getting that error because, its a data frame. I assume u did not use fread to read the data, in that case, data <- data.table(data) –  on_the_shores_of_linux_sea Jul 9 '14 at 5:44
    
You were right! I did as you told but I do not trust those values. I got, for instance, for 13:00hs an average temperature of 65 degrees which it can't be possible given the sample values (ranged from 41.572 to 51.538 degrees). Did you got the same results? weird. –  Maria Jul 9 '14 at 5:55

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