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With the following dataset.

id    date       date1a    date1b    date2a     date2b    variable
1   1/1/2000    2/6/2009  8/9/2009  7/14/2010  9/2/2010      7
1   1/2/2000    2/6/2009  8/9/2009  7/14/2010  9/2/2010      2
1   1/2/2000    2/6/2009  8/9/2009  7/14/2010  9/2/2010     11
...
1   1/1/2013    2/6/2009  8/9/2009  7/14/2010  9/2/2010      9
1   1/8/2013    2/6/2009  8/9/2009  7/14/2010  9/2/2010      8
2   2/2/2010    6/1/2010  7/9/2011  4/6/2012   5/1/2012      4
2   2/2/2010    6/1/2010  7/9/2011  4/6/2012   5/1/2012      3
2   2/2/2010    6/1/2010  7/9/2011  4/6/2012   5/1/2012      1
...
2   5/1/2012    6/1/2010  7/9/2011  4/6/2012   5/1/2012     1
2   5/1/2012    6/1/2010  7/9/2011  4/6/2012   5/1/2012     1

I would like to create the variables sum1 and average1 and sum2 and average2, which fulfill those operation for variable between the dates ranges of date1a to date1b (for sum1 and average1) and date2a to date2b (for sum2 and average2).

Right now, my method is laborious, prone to error, and is not capturing the fact that I have duplicate entries for the same day. Also, if there is no date that matches date1b or date2b then I need to manually make edits.

sort date
gen date1range = date1b - date1a
local j = date1range
forval i = 1/`j' {
    by id: gen variableforcalc`i' = variable[_n-`i']
}
egen sum1 = rowtotal(variableforcalc*)
egen average1 = rowmean(variableforcalc*)
gen dateflag = 0
replace dateflag = 1 if date == date1b
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Must averages be for the same id? –  Nick Cox May 29 at 8:29
    
@NickCox It is all within id, I edited the question. Thanks –  CJ12 May 29 at 15:04
1  
I still think you need to make the question clearer. –  Nick Cox May 29 at 15:08

1 Answer 1

up vote 1 down vote accepted

I stopped reading your code when I saw

local j = date1range

which is going to be interpreted as

local j = date1range[1] 

and so can't be the basis of a general solution.

You can initialise

 gen sum1 = . 
 gen average1 = . 

and group according to identical id, date1a and date1b

 egen group = group(id date1a date1b) 
 su group, meanonly 

Then you loop over the distinct values of group

 quietly forval j = 1/`r(max)' { 
     * start and end dates and id should be identical in each group; this is just look-up 
     su date1a if group == `j', meanonly  
     local d1 = r(min) 
     su date1b if group == `j', meanonly 
     local d2 = r(min) 
     su id if group == `j', meanonly 
     local this = r(min) 

     su variable if id == `this' & inrange(date, `d1', `d2'), meanonly 
     replace sum1 = r(sum) if group == `j' 
     replace mean1 = r(mean) if group == `j' 
} 

The other sum and mean should be amenable to the same treatment.

Some problems with loosely similar structure are discussed in http://www.stata-journal.com/sjpdf.html?articlenum=pr0033

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