Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have this iMacros code fragment

VERSION BUILD=7200328 RECORDER=FX
TAB T=1
URL GOTO=http://feedburner.google.com/fb/a/myfeeds
SET !LOOP 1
TAG POS={{!LOOP}} TYPE=A ATTR=HREF:http://feedburner.google.com/fb/a/dashboard?id=*
TAG POS=1 TYPE=A ATTR=TXT:Publicize
TAG POS=1 TYPE=SPAN ATTR=TXT:Socialize
TAG POS=1 TYPE=SELECT FORM=NAME:editFeedActionForm ATTR=ID:postFields CONTENT=$Title<SP>and<SP>Body
WAIT SECONDS=2
TAG POS=1 TYPE=INPUT:SUBMIT FORM=ID:mainForm ATTR=VALUE:Save
TAG POS=1 TYPE=A ATTR=TXT:FeedBurner

The above script will extract hrefs that match the http://feedburner.google.com/fb/a/dashboard?id=* rule, and will try to navigate further on the page.

However there are two links on the page with the same stuff and I want to loop only odd values. Like 1,3,5,7 how to set a custom step value for loop?

share|improve this question

2 Answers 2

up vote 2 down vote accepted

...and I want to loop only odd values

The iMacros language itself is a descriptive language (similar to HTML) and does not contain conditional statements or anything fancy.

So instead of using the iMacros LOOP button, use the built-in Javascript scripting support of iMacros for Firefox to run the loop. Inside the loop you can call your macro with iimPlay (and use iimSet to define values).

Something like this should work:

iimDisplay("Start loop...);

for (i = 0; i < 100; i=i+2) {
    iimDisplay("Step "+(i+1));
    retcode = iimPlay("your macro name here");
    if (retcode < 0) {
        report += ": "+iimGetLastError();
        alert ( report );
    }
}
iimDisplay("complete");
share|improve this answer

Such simple arithmetic can also be done in the iMacros language:

'Store the value of !loop in a variable
SET !VAR1 {{!LOOP}}
ADD !VAR1 {{!LOOP}}
'now !var1 = 2*!loop. Subtract 1 to get odd numbers.
ADD !VAR1 -1
TAG POS={{!VAR1}} TYPE=A ATTR=HREF:http://feedburner.google.com/fb/a/dashboard?id=*

Regards,

Marcia

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.