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I have something very similar to this D3 example with the difference being a single state instead of the entire country. I would like to extract the "view bounds" in latitude/longitude after the user has zoomed in to a certain degree so that I can provide information back to them on that area.

It seems it would be some combination of:

  • d3.geo.bounds/path.bounds (doesn't take zooming/panning into account)
  • the SVG's translation/scale
  • projection.invert?

I see a bunch of examples for lat/long points to cartesian space using the projection() function but nothing going in the other direction (e.g. clicking arbitrarily on a map -> lat/long, displaying lat/long of the center of the map which changes with zoom/pan, etc.)

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closed as off-topic by Stephane Rolland, Werner Henze, MikroDel, Lee Taylor, alko Nov 26 '13 at 13:39

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "Questions concerning problems with code you've written must describe the specific problem — and include valid code to reproduce it — in the question itself. See SSCCE.org for guidance." – Stephane Rolland, Werner Henze, MikroDel, Lee Taylor, alko
If this question can be reworded to fit the rules in the help center, please edit the question.

    
Questions concerning problems with code you've written must describe the specific problem — and include valid code to reproduce it — in the question itself. See SSCCE.org for guidance. – Stephane Rolland Nov 25 '13 at 22:56
    
I'm uncertain why this question has been marked as off-topic as I have included a) a link to a working example with source code and b) a graphical depiction of what I'm trying to accomplish in addition to an explanation above. What else is necessary? – Bill Nov 26 '13 at 18:52
    
Well "describe specific problem and include valid code to reproduce it in the question itself". It's nice to have the code you have tried so far also. – Stephane Rolland Nov 26 '13 at 19:01

D3 has the invert() function for this. It does exactly what you want it to do -- you pass it screen coordinates and it returns unprojected coordinates.

This function is a member of the projection, so as long as you're using the projection to do zoom/translate, you don't need to account for that explicitly. To get the corner points, you can simply take the center point (which you know because that's how you set the zoom) and the dimensions of the SVG.

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Thanks, unfortunately I'm using the zoom/pan method shown in the link. It "can rapidly redraw geographic features while panning and zooming, without the overhead of reprojection", which means it transforms the SVG itself instead of modifying the projection. While it's good for performance, the projection object is unaware of how I've zoomed/panned so it can't tell me how to accurately invert by itself. – Bill Nov 26 '13 at 19:11

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