Something like this

data have;
input Id$ year month flag;
datalines;
1 2013 7 1
1 2013 8 1
1 2013 9 1
1 2013 10 1
1 2013 11 1
1 2013 12 1
1 2014 1 1
1 2014 2 1
1 2014 3 1
1 2014 4 1
1 2014 5 1
1 2014 6 1
2 2013 8 1
2 2013 9 1
2 2013 10 1
2 2013 11 1
2 2013 12 1
2 2014 1 1
3 2014 2 1
3 2014 3 1
3 2014 4 1
3 2014 5 1
4 2013 12 1
4 2014 1 1
5 2013 9 1
5 2014 3 1
6 2013 12 1
6 2014 2 1
7 2014 2 1
8 2013 7 1
8 2013 8 1
;

proc sort data=have;
	by ID year month;
run;

data want(keep=ID);
	set have;
	by ID year month;

	dif=dif(month);
	if first.ID then outflag=0;
	else if flag=1 and dif in(1,-11) and outflag=0 then outflag=1;

	retain outflag 0;
	if last.ID and outflag=1;
run;

I think you also need to check for the difference in years when dif = -11, or you might stumble over a sequence

year month
2012    12
2014     1

That is true, the main challenge to me was to make sure those who had the flag between month 12 and 1 are included. I will take care of this note. Thank you so much

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@tesfuc wrote:

That is true, the main challenge to me was to make sure those who had the flag between month 12 and 1 are included. I will take care of this note. Thank you so much

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That is why I recommend to use SAS date/datetime/time values wherever possible. As soon as you have them, usage of intck/intnx takes care of all the quirks of the date and time measuring systems (irregular days/month, non-decimal fractional notations like 60sec/min or 12months/year)

@Kurt_Bremser ah yes, did not think of that 🙂 Right as usual.

@Abimal_Zippi thank you, but I recommend that you go with Kurts solution

Dear KurtBremser

I would like to try a different scenario, i.e. if there is a flag for three or more consecutive months, what changes should I made in the code.

From the above dataset, the desired output will be -

Id

1

2

3

Because all have flag=1 for three or more consecutive months.

I really appreciate your help again.

While the lag() functions keeps a 1-stage FIFO chain, the lag2() function keeps 2 stages. With it you can "look back" for 2 observations.

When you now retain a counter variable that is set to 1 at first.id and incremented otherwise, you can expand my condition to check for 2 observations back when counter > 2.

Thank you so much,

I just used this code but couldn't get with lag2() function...

data want_2 (keep=id);

set int;

by id period;

if first.id then cnt=0;

if not first.id and intck('month',lag(period),period)= 1 then cnt+1;

retain cnt 0;

if cnt ge 2;

run;

Don't think so complicated:

data want (keep=id);
set int;
by id period;
retain counter;
if first.id
then counter = 1;
else counter + 1;
if counter > 2 and intck('month',lag(period),period) = 1 and intck('month',lag2(period),period) = 2;
run;

Call this

retain counter;
if first.id
then counter = 1;
else counter + 1;

a "counter block"; you will use if often when doing by-group processing in a data step.

I really appreciate your help. That is perfect.