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I am trying to get a simple elseif statement into IDL and am having a heck of a time with it. The matlab code looks something like this.

a = 1
b = 0.5

diff = a-b
thres1 = 1
thres2 = -1

if diff < thres1 & diff > thres2  
  'case 1'
elseif diff > thres1 
  'case 2'
elseif diff < thres2
  'case 3'
end

But the IDL code is not so simple and I am having troubles getting the syntax right. the help states: Syntax IF expression THEN statement [ ELSE statement ] or IF expression THEN BEGIN statements ENDIF [ ELSE BEGIN statements ENDELSE ]

But doesnt give an example on how to use multiple expressions and elseif. I have tried many variations and cant seem to get it right.

Anyone have suggestions? Here are some things I've tried:

if (diff lt thres1) and (diff gt thres2) then begin
  print, 'case 1'
endif else begin
if (diff gt thres1) then
  print, 'case 2'
endif else begin
if (diff lt thres2) then
  print, 'case 3'
endif 

if (diff lt thres1) and (diff gt thres2) then begin
  print, 'case 1'
else (diff gt thres1) then
  print, 'case 2'
else (diff lt thres2) then
  print, 'case 3'
endif 
share|improve this question
    
If any value is equal to the threshold, none of the cases will be executed. –  Kirk Backus Nov 26 '12 at 16:06
    
yes, you are right. I should have said that, it is not the logic that is causing me problems but that actual syntax. IDL won't compile and run with the code example that I am showing. –  nori Nov 26 '12 at 19:49

3 Answers 3

up vote 2 down vote accepted

There is no elseif statement in IDL. Try:

a = 1
b = 0.5

diff = a - b
thres1 = 1
thres2 = -1

if (diff lt thres1 && diff gt thres2) then begin
  print, 'case 1'
endif else if (diff gt thres1) then begin
  print, 'case 2'
endif else if (diff lt thres2) then begin
  print, 'case 3'
endif
share|improve this answer
    
Thanks mgalloy! Sorry my reply was so late, I was on vacation and just getting back to work. Happy 2013! –  nori Jan 9 '13 at 20:47

So I figured it out. For those of us that are new to the IDL language.

It appears to me that IDL can only handle 2 cases for each if statement, so I had to write in another 'if' block.

hope this helps someone out there.

a = 1;
b = 2.5;

diff = a-b;
thres1 = 1;
thres2 = -1;

if diff gt thres1 then begin
  print,'case 1'
endif

if (diff lt thres2) then begin
  print,'case 2'
  endif else begin
  print,'case 3'
endelse 
share|improve this answer

mgalloy's answer is correct, but you might also see people (like me), who don't use begin/endif when there's only a single line. (of course, this leads to problems if someone goes back and tries to insert a line, not realizing what you did, so Michael's approach is probably better ... this is just so that when you see this formatting, you realize it's doing the same thing:

if (diff lt thres1 && diff gt thres2) then $
  print, 'case 1' $
else if (diff gt thres1) then $
  print, 'case 2' $
else if (diff lt thres2) then $
  print, 'case 3'

or a format that might make someone less prone to insertion:

if      (diff lt thres1 && diff gt thres2) then print, 'case 1' $
else if (diff gt thres1)                   then print, 'case 2' $
else if (diff lt thres2)                   then print, 'case 3'
share|improve this answer
    
Thanks Joe, really appreciate another option. cheers! –  nori Jan 9 '13 at 20:48

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