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Kilasuelika
Fluorite | Level 6

Consider following code:

data test;
do i = 1 to 100;
	if i=1 then do
		x=0.5;
	end;
	else do;
		x=lag(x)+0.1;
	end;
	output;
end;
run;

I expect the result to be 0.5 0.6 0.7 0.8

But the result is: 0.5 . 0.6 . 0.7 . 0.8

There are missing values. What happened here?

 

----------------------------------------------------------------------------------------------

Finally I thought maybe I have to use IML with some more lines of code:

proc iml;
x=J(100,1,0.5);
e=J(100,1);
call randseed(1);
call randgen(e, "normal");
do i=3 to 100;
	x[i]=0.3*x[i-1]+0.4*x[i-2]+e[i];
end;

create test from x [colnames=("x")];
append from x;
close test;
quit;
1 ACCEPTED SOLUTION

Accepted Solutions
Tom
Super User Tom
Super User

The LAG() function cannot return values you never passed into it.  Unless you want to do something very "creative" you should never execute LAG() or DIF() conditionally.

But in this case there is no need to "lag" the value of X.  Since you are running a loop in a single iteration of the data step the "old" value of X is still there.

data test;
do i = 1 to 100;
   if i=1 then do
    x=0.5;
  end;
  else do;
    x=x+0.1;
  end;
  output;
end;
run;

Or more simply.

data test;
  x=0.5;
  do i = 1 to 100;
    output;
    x + 0.1;
  end;
run;

View solution in original post

7 REPLIES 7
Tom
Super User Tom
Super User

The LAG() function cannot return values you never passed into it.  Unless you want to do something very "creative" you should never execute LAG() or DIF() conditionally.

But in this case there is no need to "lag" the value of X.  Since you are running a loop in a single iteration of the data step the "old" value of X is still there.

data test;
do i = 1 to 100;
   if i=1 then do
    x=0.5;
  end;
  else do;
    x=x+0.1;
  end;
  output;
end;
run;

Or more simply.

data test;
  x=0.5;
  do i = 1 to 100;
    output;
    x + 0.1;
  end;
run;
Kilasuelika
Fluorite | Level 6

What if I need previous some rows, e.g. x(i-2), x(i-3)?

ballardw
Super User

@Kilasuelika wrote:

What if I need previous some rows, e.g. x(i-2), x(i-3)?


Stick the value into an array an use as needed.

data test;
  x=0.5;
  array y(100);
  do i = 1 to 100;
    y[i]=x;
    output;
    x + 0.1;
  end;
run;

If you need to reference the value of x from 2 iterations previous that would be use y[i-2] (Caution: only when i is 3 or greater, this doesn't define a y[0] or y[-2] as valid indexes for the array.

I use Y because you cannot have an array name the same as an existing variable.

Kilasuelika
Fluorite | Level 6
array y[100];

will generate 100 variables y1, y2, y3... which is not i want. I only need a single variable x.

Do I have to use IML to achieve my goal?

Tom
Super User Tom
Super User

@Kilasuelika wrote:

What if I need previous some rows, e.g. x(i-2), x(i-3)?


Then show an example that actually has an input dataset that has multiple observations so that there will actually be multiple "rows".

Here is method to create three lagged copies of X and make sure that values from a previous group do not bleed into the current group.

 

data want;
  set have;
  by id;
  lagx1 = lag1(x);
  lagx2 = lag2(x);
  lagx3 = lag3(x);
  array lagx [3];
  if first.id then row=1;
  else row+1;
  do index= row+1 to dim(lagx);
    lagx[index]=.;
  end;
run;

 

Kilasuelika
Fluorite | Level 6

I didn't mean creating lagged variables from existing data. Consider an AR(1) model:

x[1]=0.5, x[i]=x[i-1]+x[i-2]+rand()

At each loop, generate a random value and add it to the previous values. There is only a single variable.

 
Tom
Super User Tom
Super User

@Kilasuelika wrote:

I didn't mean creating lagged variables from existing data. Consider an AR(1) model:

x[1]=0.5, x[i]=x[i-1]+x[i-2]+rand()

At each loop, generate a random value and add it to the previous values. There is only a single variable.

 

You will have to provide a more complete example to explain what is is you are trying to do.  

 

What you are showing sounds like:

data want;
  x=0.5 ;
  do i=1 to 10;
    output;
    lag1=x;
    lag2=lag(x);
    rand=rand('uniform');
    x=sum(of lag1 lag2 rand);
  end;
run;
Obs       x        i      lag1       lag2       rand

  1     0.5000     1      .          .         .
  2     0.5964     2     0.5000      .        0.09637
  3     2.0343     3     0.5964     0.5000    0.93795
  4     3.2650     4     2.0343     0.5964    0.63433
  5     5.8931     5     3.2650     2.0343    0.59379
  6     9.8466     6     5.8931     3.2650    0.68843
  7    16.4166     7     9.8466     5.8931    0.67684
  8    27.1344     8    16.4166     9.8466    0.87119
  9    44.5086     9    27.1344    16.4166    0.95770
 10    72.3635    10    44.5086    27.1344    0.72051

Which you can do without the LAG() function by just reversing the order of the assignment statements.

    lag2=lag1;
    lag1=x;

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