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I want to pass argument into google places url string. The string is

@"https://maps.googleapis.com/maps/api/place/search/xml?location=52.577798767,-2.124885567&radius=500&types=bank&sensor=false&key=AIzaSyCcC9pmri9XGOgyhjoHQq37cmcbfhjfghf6bBZe80"

i get no response. though i can get location updates. but i want to use this string in

-(void)ParseXML_of_Google_PlacesAPI { NSURL *googlePlacesURL = [NSURL

URLWithString:googleUrl]; NSData *xmlData = [NSData 

dataWithContentsOfURL:googlePlacesURL]; xmlDocument = [[GDataXMLDocument 

alloc]initWithData:xmlData options:0 error:nil]; NSArray *arr = 

[xmlDocument.rootElement elementsForName:@"result"]; placesOutputArray=[[NSMutableArray 

alloc]init]; for(GDataXMLElement *e in arr ) { [placesOutputArray addObject:e]; }

But not working. It gives no response.

Please suggest

Update:

This is my original code:

- (void)locationUpdate:(CLLocation *)location {



googleUrl= [[NSString alloc ]initWithFormat:@"https://maps.googleapis.com/maps/api/place

/search/xml?location=%f,%f&radius=500&name=money&sensor=false&
 key=AIzaSyCcC9pmri9XGOgyhjoHQq37cmcdfsab6bBZe80",location.coordinate.latitude,location.coordinate.longitude];

}

Update 2

googleUrl= @"https://maps.googleapis.com/maps/api/place/search/xml?location=%f,%f&radius=500&name=the%20money&sensor=false&key=AIzaSyCcC9pmrisgd9XGOgyhjoHQq37cmcb6bBZe80",a,b;

This string is also not working. becaue.when i put a=@"9.281654854", and b=@"-3.32532", i.e. static values in a and b and use it it also does not show any location

I have updated my question and now using same thing as shown in question and following your advice. But still it does not show any location. though it ask me to click ok to access location data. when i click ok it does not show any location. My string is ok because when i put static coordinates and used as #define googleUrl=@"string". it works. but with dynimic coordinates it does not work

share|improve this question
    
When you write "But not working" what does this mean? Always ask yourself, "Does my question have enough information to help others answer it?" –  Alex Reynolds Aug 11 '11 at 13:50
    
I have updates my question. plz have a look. and sorry for that –  Mann Aug 11 '11 at 13:57
    
And, while you're at it, you could format your code a little better. –  Rudy Velthuis Aug 11 '11 at 14:31
    
Ok i understand but more important is solving problem. Please suggest if you can. Thanks –  Mann Aug 11 '11 at 14:35
1  
If you want others to read your code, it makes sense to format it properly. If you get results with static coordinates, something is wrong with your actual code. –  Rudy Velthuis Aug 11 '11 at 14:40

4 Answers 4

up vote 1 down vote accepted

This is a general answer to replace a parameter on any URL, probably more general than the question asks for, but didn't quite get the use case anyway... :P

-(NSURL*) replaceLocation:(NSURL*)url latitude:(float)latitude longitude:(float)longitude {

    // query to dictionary
    NSMutableDictionary *query = [NSMutableDictionary dictionary];
    for (NSString *param in [[url query] componentsSeparatedByString:@"&"]) {
        NSArray *queryParam = [param componentsSeparatedByString:@"="];
        if([queryParam count] < 2) continue;
        [query setObject:[queryParam objectAtIndex:1] forKey:[queryParam objectAtIndex:0]];
    }

    // override location
    [query setObject:[NSString stringWithFormat:@"%f,%f",latitude,longitude] forKey:@"location"];

    // encode and reassemble
    NSMutableArray *queryComponents = [NSMutableArray array];
    for (NSString *key in query) {
        NSString *value = [query objectForKey:key];
        key = [key stringByAddingPercentEscapesUsingEncoding:NSASCIIStringEncoding];
        value = [value stringByAddingPercentEscapesUsingEncoding:NSASCIIStringEncoding];
        NSString *component = [NSString stringWithFormat:@"%@=%@", key, value];
        [queryComponents addObject:component];
    }

    NSString *queryString = [queryComponents componentsJoinedByString:@"&"];

    NSMutableString *newUrl = [NSMutableString string];
    [newUrl appendFormat:@"%@://%@",[url scheme],[url host]];
    if ([url port]!=nil){
        [newUrl appendFormat:@":%@",[url port]];
    }
    [newUrl appendFormat:@"%@",[url path]];
    if ([url parameterString]!=nil){
        [newUrl appendFormat:@";%@",[url parameterString]];
    }
    if (queryString!=nil && [queryString length]>0){
        [newUrl appendFormat:@"?%@",queryString];
    }    
    if ([url fragment]!=nil){
        [newUrl appendFormat:@"#%@",[url fragment]];
    }

    return [NSURL URLWithString:newUrl];
}

Usage:

NSURL *url = [NSURL URLWithString:@"https://maps.googleapis.com/maps/api/place/search/xml?location=52.577798767,-2.124885567&radius=500&types=bank&sensor=false&key=AIzaSyCcC9pmri9XGOgyhjoHQq37cmcbfhjfghf6bBZe80"];
NSLog(@"from \n%@ \nto\n%@", [url absoluteString], [[self replaceLocation:url latitude:0.54 longitude:0.56] absoluteString]);
share|improve this answer

You can use the %@ format specifier instead of %f when using strings. Also dont forget to release a and b.

Also you need location=. So you can change it to

googleUrl= [[NSString alloc ]initWithFormat:@"https://maps.googleapis.com/maps/api/place/search/xml?location=%f,%f &radius=500&types=bank&sensor=false&key=api_key",location.coordinate.latitude,location.coordinate.longitude];

And don't forget to release googleUrl.

PS:

Also use better variable names for better readability.

share|improve this answer
    
I put same code as your wrote here. but still it does not show any error but does not show any location as well. i have updates my question you can see what i wanted to do –  Mann Aug 11 '11 at 14:04
    
@Parveen S: I have updated my question and now using same thing as shown in question and following your advice. But still it does not show any location. though it ask me to click ok to access location data. when i click ok it does not show any location. My string is ok because when i put static coordinates and used as #define googleUrl=@"string". it works. but with dynimic coordinates it does not work –  Mann Aug 11 '11 at 14:20

It sounds like you want:

googleUrl = [[NSString alloc] initWithFormat:@"https://maps.googleapis.com/maps/api/place/search/xml?location=%f,%f&radius=500&types=bank&sensor=false&key=AIzaSyCcC9pmri9XGOgyhjoHQq37cmcb6bBZe80",location.coordinate.latitude, location.coordinate.longitude];
share|improve this answer
    
i tried this as well. But not working –  Mann Aug 11 '11 at 13:47
    
What error do you get? Please describe what "not working" means in more detail. –  Alex Reynolds Aug 11 '11 at 13:48
    
@Manjinder S: It will surely work, Print logs and check. –  Praveen S Aug 11 '11 at 13:48
    
i am not getting any error. i put this this in - (void)locationUpdate:(CLLocation *)location { googleUrl= [[NSString alloc ]initWithFormat:@"maps.googleapis.com/maps/api/place/search/…; } –  Mann Aug 11 '11 at 13:50
1  
I suspect when you say its not working, you are getting incorrect or no response. you may want to encode the string for correct response which is a totally new issue altogether. –  Praveen S Aug 11 '11 at 13:50

Try this:

googleUrl = [[NSString alloc] initWithFormat:@"https://maps.googleapis.com/maps/api/place/search/xml?location=%f,%f&radius=500&types=bank&sensor=false&key=AIzaSyCcC9pmri9XGOgyhjoHQq37cmcb6bBZe80", location.coordinate.latitude, location.coordinate.longitude];

You won't need to specify a and b anymore =)!

BTW, I don't know for sure, but I guess you're trying to display a map view centered at the current location. You should use MKMapView for this.

share|improve this answer
    
is the space in %f,%f & needed and valid? –  Marek Sebera Aug 11 '11 at 13:46
    
i tried this as well. But not working –  Mann Aug 11 '11 at 13:47
    
@Marek, it's a typo, its both invalid and unneeded, I'll edit it =). –  Tim Aug 11 '11 at 13:47
    
@Tim: I think he want to encode his string. –  Praveen S Aug 11 '11 at 13:51
    
@Praveen S, why? You don't need to encode the coordinates to submit with Google Maps. –  Tim Aug 11 '11 at 13:54

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