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I am trying to pull results from a JSON query and place those results into a NSArray so that I can list the results in a TableView.

This is my switch statement in PHP:

switch ($_POST['command']) {

    case "account":
        account($_SESSION['IdUser']);break;     

}

And then, in my api.php file, I have the following function that allows me to query that database to extract all accounts where the account owner is the 'logged in / session' user.

function account($IdUser) {
    $login = query("SELECT IdUser, name FROM account WHERE IdUser='%d'", $IdUser);
}

Here is my code for getting those values from the query.

NSMutableDictionary* params =[NSMutableDictionary dictionaryWithObjectsAndKeys:
                                  @"account", @"command", nil];
    [[API sharedInstance] commandWithParams:params onCompletion:^(NSDictionary *json) {
        NSArray* res = [json objectForKey:@"result"];

    }];

I then create the Tableview methods...

- (NSInteger)tableView:(UITableView *)tableView numberOfRowsInSection:(NSInteger)section
{
    return [res count];
}

And then...

- (UITableViewCell *)tableView:(UITableView *)tableView cellForRowAtIndexPath:(NSIndexPath *)indexPath
{
    static NSString *simpleTableIdentifier = @"SimpleTableCell";

    UITableViewCell *cell = [tableView dequeueReusableCellWithIdentifier:simpleTableIdentifier];

    if (cell == nil) {
        cell = [[UITableViewCell alloc] initWithStyle:UITableViewCellStyleDefault reuseIdentifier:simpleTableIdentifier];
    }
    cell.textLabel.text = [res objectAtIndex:indexPath.row];
    return cell;
}

When I run my iOS Simulator, I am getting no values in my table.

share|improve this question
3  
And what is the question? –  Bear with it Apr 4 '14 at 15:01
    
What's res? Shouldn't be recipesinstead in tableView:CellForRowAtIndexPath:? Now what's your exact issue? Any error message? –  Larme Apr 4 '14 at 15:02
    
Definitely need a lot more information here. @Larme is right- what is being held in res and why is the number of rows based on recipes instead? What is your original JSON dictionary that's being returned? What problems are you having with your current code that isn't working? –  Stonz2 Apr 4 '14 at 15:21
    
I will update my question. My apologies. –  billproberts Apr 4 '14 at 15:37
    
try reload the table after array is updated –  NeverBe Apr 4 '14 at 15:47

1 Answer 1

For first add a property:

@property (nonatomic, strong) NSArray *res;

then you can

    NSMutableDictionary* params =[NSMutableDictionary dictionaryWithObjectsAndKeys:
                                      @"account", @"command", nil];
     [[API sharedInstance] commandWithParams:params onCompletion:^(NSDictionary *json) {
     self.res = [json objectForKey:@"result"];
    [self.tableView reloadData]; 
        }];

    - (NSInteger)tableView:(UITableView *)tableView numberOfRowsInSection:(NSInteger)section
    {
        return [self.res count];
    }


    - (UITableViewCell *)tableView:(UITableView *)tableView cellForRowAtIndexPath:(NSIndexPath *)indexPath
    {
        static NSString *simpleTableIdentifier = @"SimpleTableCell";

        UITableViewCell *cell = [tableView dequeueReusableCellWithIdentifier:simpleTableIdentifier];

        if (cell == nil) {
            cell = [[UITableViewCell alloc] initWithStyle:UITableViewCellStyleDefault reuseIdentifier:simpleTableIdentifier];
        }
NSDictionary *user = [self.res objectAtIndex:indexPath.row];
        cell.textLabel.text = [user objectForKey:@"name"];
        return cell;
    }
share|improve this answer
    
I have just made the modifications you have mentioned and this line [self.tableView reload]; is telling me that property tableView is not found on object type "AccountViewController". –  billproberts Apr 4 '14 at 16:13
    
you should link your control to this outlet on storyboard –  NeverBe Apr 4 '14 at 17:37
    
I have linked the Table View control (datasource, delegate) to the storyboard. –  billproberts Apr 4 '14 at 18:25
    
how looks your json? do you sure that uou got it correctly? –  NeverBe Apr 4 '14 at 18:33
    
I am using the same formatted JSON when displaying the session user's name. –  billproberts Apr 4 '14 at 19:20

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