Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I have a situation where I need to output some code that simultaneously zooms a div from 0 to it's "final" size whilst moving it down from the top of the screen.

The x and y final sizes could be different every time but my code WILL know them (the div will contain a user-supplied image so I can just read the image size).

Now, I can do the code to "zoom" the div and also move it down the screen. I know how to find the y-center of the browser window etc...

I am moving it down the screen by adding "yvalue" to the topMargin.

Here is where I am stuck and I guess it is more of a math question rather than code??

Q: How do I calculate what "yvalue" (the y position increment) should be so that the div arrives in the center of the screen at the same time (roughly) that the div zooms to maximum size. Also I need to find out what the corresponding div_xvalue and div_yvalue should be to make the "zoom" happen at the same time (if that makes sense)

Please assume the following variables :

yvalue = increment to add to div topMargin each iteration
zoom_x_final =  final width of div
zoom_y_final =  final height of div
browser_center_y = center position of browser window (y direction)
x = current x size of div
y = current y size of div
div_xvalue = value to add to x for increasing div size per iteration
div_yvalue = value to add to y for increasing div size per iteration
stop_y = center screen position stop for slide down calc'd from    browser_center_y-(zoom_y_final/2)
share|improve this question

I think this might help you.

I have tried to find y_increment_per_iteration and got a very simple answer:

y_increment_per_iteration 
                = [{(browser_width) or (working_area_width)} / 2 ] / zoom_y_final

Please note that this answer might not be correct as it is not tested.

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.