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A service that I'm consuming requires that I pass it the lat/lon for an address as integers. Currently, my lat/lon's are stored as doubles:

double lat = 38.898748;
double lon = -77.037684;

I've exhausted my Google-fu and can't find a method for converting lat/lon to an integer representation. Any help would be appreciated.

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6  
You would need specs (or examples) from that service. There are multiple ways to do that. –  Henk Holterman Nov 7 '11 at 17:45
    
Did you want rounded degrees? Or somthing with a bit more precision? Rounded minutes or seconds maybe? As Henk says, it depends. –  Jodrell Nov 7 '11 at 17:46
1  
@HenkHolterman, I'll have to email their support. –  James Hill Nov 7 '11 at 17:48
    
Assuming no fractions of a second do you just need to convert it to a number of the form [+-][0-90][0-60][0-60]? What API are you using? –  Ben Nov 7 '11 at 17:48
    
Well, emailed support and they said multiply by 1 million. I always hesitate to call because their information is less than accurate at times. –  James Hill Nov 7 '11 at 18:07
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6 Answers

up vote 3 down vote accepted

Sometimes it is simple, just multiply by 1 million.

Multiply by .000001 to convert back.

Granted this assumes you only want precision to the 6th decimal.

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Although this conversion works you (based on your acceptance of the answer) you should nevertheless check your and your provider's Geodetic Systems. Many are quite similar and differences may not show up or be negligible/unnoticeable in many instances but they can extreme in certain circumstances. –  Paul Sasik Nov 7 '11 at 20:19
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You need to know what Geodetic System you're using and what the API expects. E.g. WGS84, NAD83, OSGB36, ED50... (Example: Google Earth uses WGS84)

If they need an integer then they're probably using something different from Google and other providers. Chances are that rounding a a double or some other integer conversion will not work. You need the Geodetic System information and then make the conversion between the two values.

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The only way I can see this happening is if you shift the decimal point.

int lat = (int)(38.898748 * 1000000.0);
int lon = (int)(-77.037684 * 1000000.0);
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But why not 10000000 or 10000? –  Henk Holterman Nov 7 '11 at 17:53
    
@HenkHolterman - It doesn't really matter multiplying by either would give you the wrong answer. –  Ramhound Nov 7 '11 at 17:57
    
@Henk - If you use your noggin you'll notice that his example uses 6 digit precision. He could actually use any precision. –  ChaosPandion Nov 7 '11 at 18:10
    
@Ramhound - You could be right but the OP accepted an answer similar to mine. I do however find it a bit unfair that I received a down-vote while the accepted answer did not. –  ChaosPandion Nov 7 '11 at 18:18
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If you need the coordinates in seconds, just multiply by 60 * 60:

int latitude = (int)Math.Round(lat * 60.0 * 60.0);
int longitude = (int)Math.Round(lon * 60.0 * 60.0);

If you need the coodinates in higher resolution, for example 100th of a second, just multiply by 100 more.

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Why the downvote? If you don't explain what you think is wrong, it can't improve the answer. –  Guffa Nov 7 '11 at 19:09
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The answer could be either,

int FactorConversion(double degrees)
{
    return (int) degrees * MagicConversionFactor 
    //You supply this number, a likely candidate is 360 since
    //this converts degrees to seconds 
}

or

 int BinaryConversion32(float degrees)
 {
     return BitConvetor.ToInt32(BitConvertor.GetBytes(degrees))
 }

or

long BinaryConversion64(double degrees)
{
    return BitConvetor.ToInt64(BitConvertor.GetBytes(degrees))
}

note that double is an 8 byte type. As previously stated by me and others, it all rather depends on what the API expects.

The second two options would be lossless but bizarre.

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I am going to take a wild stab at this and guess that you are wanting to convert pure degrees to Degrees:Minutes:Seconds in the form of a single integer.

Here is one way you could convert this into an integer, but obviously you are going to want to confirm this is the format they are using.

double originalLat = 38.898748,
    TEMPdecimal;

int degrees = (int)originalLat;

TEMPdecimal = (originalLat - degrees) * 60;

int minutes = (int)TEMPdecimal;

TEMPdecimal = (TEMPdecimal - minutes) * 60;

int seconds = (int)TEMPdecimal;

int lat = (degrees * 10000) + (minutes * 100) + seconds;

In this case the return is 385355 or 38 degrees 53 minutes 55 seconds. Sorry if this looks a little sloppy and the type casting might not be the most efficient (definitely would need to make sure it rounds properly, i think type casting to int is rounding down all the time) but it will give you longitude/latitude.

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