Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

The code below is supposed to display the model/device name of the device running the app. For example, if the app was running on a 1st gen iPod, I want it to display "iPod1,1". When I run the application, the label is empty. What am I doing wrong?

#import "ViewController.h"
#include <sys/types.h>
#include <sys/sysctl.h>

@interface ViewController ()

@end

@implementation ViewController
@synthesize label;

- (void)viewDidLoad
{
    label.text = [self platformString];
    [self platformCapabilities];

    // Do any additional setup after loading the view, typically from a nib.
}

- (void)didReceiveMemoryWarning
{
[super didReceiveMemoryWarning];
// Dispose of any resources that can be recreated.
}

- (NSString *) platform
{
size_t size;
sysctlbyname("hw.machine", NULL, &size, NULL, 0);
char *machine = malloc(size);
sysctlbyname("hw.machine", machine, &size, NULL, 0);
NSString *platform = [NSString stringWithCString:machine encoding: NSUTF8StringEncoding];
free(machine);
return platform;
}

- (int) platformType
{
NSString *platform = [self platform];
if ([platform isEqualToString:@"iPhone1,1"]) return UIDevice1GiPhone;
if ([platform isEqualToString:@"iPhone1,2"]) return UIDevice3GiPhone;
if ([platform isEqualToString:@"iPod1,1"])   return UIDevice1GiPod;
if ([platform isEqualToString:@"iPod2,1"])   return UIDevice2GiPod;
if ([platform hasPrefix:@"iPhone"]) return UIDeviceUnknowniPhone;
if ([platform hasPrefix:@"iPod"]) return UIDeviceUnknowniPod;
return UIDeviceUnknown;
}

- (NSString *) platformString
{
switch ([self platformType])
{
    case UIDevice1GiPhone: return IPHONE_1G_NAMESTRING;
    case UIDevice3GiPhone: return IPHONE_3G_NAMESTRING;
    case UIDeviceUnknowniPhone: return IPHONE_UNKNOWN_NAMESTRING;

    case UIDevice1GiPod: return IPOD_1G_NAMESTRING;
    case UIDevice2GiPod: return IPOD_2G_NAMESTRING;
    case UIDeviceUnknowniPod: return IPOD_UNKNOWN_NAMESTRING;

    default: return nil;
}
}

- (int) platformCapabilities
{
switch ([self platformType])
{
    case UIDevice1GiPhone: return UIDeviceBuiltInSpeaker | UIDeviceBuiltInCamera | UIDeviceBuiltInMicrophone | UIDeviceSupportsExternalMicrophone | UIDeviceSupportsTelephony | UIDeviceSupportsVibration;
    case UIDevice3GiPhone: return UIDeviceSupportsGPS | UIDeviceBuiltInSpeaker | UIDeviceBuiltInCamera | UIDeviceBuiltInMicrophone | UIDeviceSupportsExternalMicrophone | UIDeviceSupportsTelephony | UIDeviceSupportsVibration;
    case UIDeviceUnknowniPhone: return UIDeviceBuiltInSpeaker | UIDeviceBuiltInCamera | UIDeviceBuiltInMicrophone | UIDeviceSupportsExternalMicrophone | UIDeviceSupportsTelephony | UIDeviceSupportsVibration;

    case UIDevice1GiPod: return 0;
    case UIDevice2GiPod: return UIDeviceBuiltInSpeaker | UIDeviceBuiltInMicrophone | UIDeviceSupportsExternalMicrophone;
    case UIDeviceUnknowniPod: return 0;

    default: return 0;
}
}
@end

Also, how could I extend this code to recognize 3rd gen iPods, 4th gen iPods, etc?

share|improve this question
1  
Have you run this through the debugger? Is the original value reasonable? Is the end of your logic chain reasonable? – Ben Zotto Sep 10 '12 at 20:41
    
is your label property hooked up correctly in Interface Builder? – CSmith Sep 10 '12 at 20:42
up vote 0 down vote accepted

You must be hitting your nil case. Did you try stepping into the platform method to see what it returns and if that matches any of your cases?

share|improve this answer
    
Yep. That thought hadn't even crossed my mind. That was it though – Sean Smyth Sep 10 '12 at 23:23

I would recommend using Erica's UIDevice-Extensions categories to achieve what you are intending.

https://github.com/erica/uidevice-extension

There is code for just about every kind of introspection into the kind of device your app is running on.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.