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Ok so im at my wit's end here. I have tried every imaginable thing to get rid of these errors

heres my code:

  - (void)tableView:(UITableView *)tableView didSelectRowAtIndexPath:(NSIndexPath *)indexPath {
    // Navigation logic may go here. Create and push another view controller.
 /*
  //<#DetailViewController#> *detailViewController = [[<#DetailViewController#> alloc] initWithNibName:@"<#Nib name#>" bundle:nil];
     // ...
     // Pass the selected object to the new view controller.
  [self.navigationController pushViewController:detailViewController animated:YES];
  [detailViewController release];
  */
 NSInteger row = [indexPath.row];
 if (self.nameExcerptPage == nil) {
  NameOTWexcerpt *nameExcerptPageDetail = [[nameExcerptPage alloc] initWithNibName:@"NameOTWexcerpt" bundle:nil];
  self.nameExcerptPage = nameExcerptPageDetail;
  [nameExcerptPageDetail release];

 nameExcerptPage.title = [NSString stringWithFormat:@"%&", [TheBookNavTabs objectAtIndex:row]];

 Rothfuss_ReaderAppDelegate *delegate = [[UIApplication sharedApplication] delegate];
 [delegate.SecondTableViewController pushViewController:TheBookNavTabs animated:YES];
 }
}

and the error appears where it says "NSInteger row = [indexPath.row];

please help! thanks!

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1  
I don't know how to quite help you but, you can't use the . operator in indexPath.row. Did you try it with out the . operator? –  thyrgle Jun 12 '10 at 22:27

2 Answers 2

up vote 3 down vote accepted
NSInteger row = [indexPath.row];

Either dot notation or [] but not both!

thyrgle got it first...

The "%&" format specifier used in stringWithFormat has me a bit confused. Should that be %@? Is %& a real format specifier? What does it do? The Google, it does nothing...

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Ok yeah I changed it to [indexPath row] and it worked.

I'm not sure about the %&, I got it from a tutorial and it works. That's all I know

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Every symbol that you don't understand is a bug that will bite you in the ass. The only thing getting put in "nameExcerptPage.title" is an ampersand character. That "%&" should almost certainly be a "%@" (shift-5, shift-2) –  willc2 Jun 21 '10 at 14:08

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