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I am trying to find a simple way to check if an IP address belongs to an iPhone. A solution that I can imagine is to use nmap to determine the operating system of the specified IP address and then check whether it's iOS.. Is this a right way? Otherwise, could anyone suggest me an alternative way?

Thank you, Thanasis

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Is this from the point of view of a server app, maybe HTTP ? If so, the HTTP headers may help. –  SirDarius Jul 20 '10 at 14:38
    
I don't think there is a subset reserved for iPhones. You'll probably be best inspecting the HTTP headers as above, or the user agent string sent with requests, but both can be easily spoofed. –  Martin Bean Jul 20 '10 at 15:04

2 Answers 2

up vote 0 down vote accepted

Looks like nmap does fingerprint iOS.

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We can get the IP address by this code:

- (NSString *)getIPAddress
    {
        NSString *address = @"error";
        struct ifaddrs *interfaces = NULL;
        struct ifaddrs *temp_addr = NULL;
        int success = 0;

        // retrieve the current interfaces - returns 0 on success
        success = getifaddrs(&interfaces);
        if (success == 0) {
            // Loop through linked list of interfaces
            temp_addr = interfaces;
            while (temp_addr != NULL) {
                if( temp_addr->ifa_addr->sa_family == AF_INET) {
                    // Check if interface is en0 which is the wifi connection on the iPhone
                    if ([[NSString stringWithUTF8String:temp_addr->ifa_name] isEqualToString:@"en0"]) {
                        // Get NSString from C String
                        address = [NSString stringWithUTF8String:inet_ntoa(((struct sockaddr_in *)temp_addr->ifa_addr)->sin_addr)];
                    }
                }

                temp_addr = temp_addr->ifa_next;
            }
        }

        // Free memory
        freeifaddrs(interfaces);

        return address;
    }
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Yes, but this code gets the IP address if run on a device.. What I was looking for, is a way to find if a given IP address belongs to an iphone, without having access to the device. I mean to do it remotely with somekind of scan.. –  Thanasis Petsas Oct 18 '12 at 11:43

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