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I am confused with the output statement . Here are two programs that both have output .

1) Program one . Produces 3 observations, just as I expect it, output overwrites the default data step output

data test ;
infile datalines ; 
input type $ @ ; 
if type='a' then do;
input money ; 
output ; 
end;
datalines ;
a 100
b 200
a 500
a 400
x 500
v 500
;
run;
proc print;
run;

2) Program two . Produces 6 observations . Why doesn't output overwrite this data step ?

data test ;
infile datalines ; 
input type $ @ ; 
if type='a' then input money ; 
output ; 
datalines ;
a 100
b 200
a 500
a 400
x 500
v 500
;
run;
proc print;
run;

Why output in the first case does the job but in the second case it does not ?

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1 Answer 1

up vote 5 down vote accepted

In the first program, output is part of a conditionally executed do group because it is between if type='a' then do; and end;. Therefore it only executes if type equals 'a'. In the second program, output is not part a do group at all, so it executes for all observations, thus all observations are output.

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+1 Thank you. But with this logic, the first program shoudl also have 6 observations. Here is why : because input type $ @ ; comes before the if-then block and therefore executes regardless of the if-then outcome. So, before we even get to the if-then block the program has already executed input type $ @ ; Even if the if-then block turns out to be false, we do input the type. So ALL type values are read, and therefore the first program should have had 6 observations, right ? –  Donotello Jun 2 at 0:42
2  
Incorrect. Although 6 records are read, only 3 are output based on the evaluation of the if condition. If you take out the explicit output statement in program 1, you'll see 6 observations, but only 3 will have a value in the money field. –  Chris J Jun 2 at 10:04

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