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I am new to R. I am trying to read data from Excel in the mentioned format

x1  x2  x3  y1  y2  y3  Result
1   2   3   7   8   9    
4   5   6   10  11  12   

and data.frame in R should take data in mentioned format for 1st row

x   y
1   7
2   8
3   9

then I want to use lm() and export the result to result column.

I want to automate this for n rows i.e once results of 1st column is exported to Excel then I want to import data for second row.

Please Help.

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6  
Can you format your question using the "code" icon? What have you tried? There are a number of packages for reading/writing to excel (do web search). I suggest you read up on some basic R syntax to see how to reorganize columns (unclear to me why you would want to do that for a lm call). –  Roman Luštrik Jun 12 '13 at 8:57
    
@meewoK have you put that title in place of my suggestion? –  Michele Jun 12 '13 at 14:30
    
@Michele, yes. Any serious problems? –  maythesource.com Jun 12 '13 at 14:36
    
@meewoK yes, the title doesn't make any sense. I never heard about particular method of data import for tables in the "form of columns", which even by itself doesn't make any sense... the formal label is: wide and long format. But even using them the title wouldn't make sense. The import (say read.xls) wouldn't give a **** about the shape of the table. Does it make sense? –  Michele Jun 12 '13 at 14:42
2  
@meewoK I also wonder which is the point of editing a question whose tag is not at all in your list of tags... –  Michele Jun 12 '13 at 14:49
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1 Answer

library(gdata)
# this spreadsheet is exactly as in your question

df.original <- read.xls("test.xlsx", sheet="Sheet1", perl="C:/strawberry/perl/bin/perl.exe")
#
#
> df.original
  x1 x2 x3 y1 y2 y3
1  1  2  3  7  8  9
2  4  5  6 10 11 12
#
# for the above code you'll just need to change the argument 'perl' with the
# path of your installer
#
# now the example for the first row
#
library(reshape2)

df <- melt(df.original[1,])

df$variable <- substr(df$variable, 1, 1)

df <- as.data.frame(lapply(split(df, df$variable), `[[`, 2))

> df
  x y
1 1 7
2 2 8
3 3 9

Now, at this stage we automated the process of inport/transformation (for one line).

First question: How you want the data to look like when every line will be treated? Second question: In result, what do you want exactly to put? residual, fitted values? what you need from lm()?

EDIT:

ok, @kapil tell me if the final shape of df is what you thought:

library(reshape2)
library(plyr)

df <- adply(df.original, 1, melt, .expand=F)
names(df)[1] <- "rowID"

df$variable <- substr(df$variable, 1, 1)

rows <- df$rowID[ df$variable=="x"] # with y would be the same (they are expected to have the same legnth)
df <- as.data.frame(lapply(split(df, df$variable), `[[`, c("value")))
df$rowID <- rows

df <- df[c("rowID", "x", "y")]

> df
  rowID x  y
1     1 1  7
2     1 2  8
3     1 3  9
4     2 4 10
5     2 5 11
6     2 6 12

regarding the coefficient you can calculate for each rowID (which refers to the actual row in the xls file) in this way:

model <- dlply(df, .(rowID), function(z) {print(z); lm(y ~ x, df);})

> sapply(model, `[`, "coefficients")
$`1.coefficients`
(Intercept)           x 
          6           1 

$`2.coefficients`
(Intercept)           x 
          6           1 

so, for each group (or row in original spreadsheet) you have (as expected) two coefficients, intercept and slope, therefore I can't figure out how you want the coefficient to fit inside the data.frame (especially in the 'long' way it appears just above). But if you wanted the data.frame to stay in 'wide' mode then you can try this:

# obtained the object model, you can put the coeff in the df.original data.frame
#
> ldply(model, `[[`, "coefficients")
  rowID (Intercept) x
1     1           6 1
2     2           6 1

df.modified <- cbind(df.original, ldply(model, `[[`, "coefficients"))

> df.modified
  x1 x2 x3 y1 y2 y3 rowID (Intercept) x
1  1  2  3  7  8  9     1           6 1
2  4  5  6 10 11 12     2           6 1

# of course, if you don't like it, you can remove rowID with df.modified$rowID <- NULL

Hope this helps, and let me know if you wanted the 'long' version of df.

share|improve this answer
    
I would like to print coefficients in result columns –  kapil Jun 12 '13 at 12:00
    
@kapil ok cool, I'm on it. What about the appeareance of the final table? I'll try to guess what you want, wait some minutes and then check my EDIT. –  Michele Jun 12 '13 at 13:03
    
@kapil is it what you were after? –  Michele Jun 12 '13 at 14:24
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