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I have an array with 10 items. When I call "IndexOfObject" for the elements number 9 and the element number 10 Xcode return an exception: "NSRangeException"

reason: '_[_NSCFArray objectAtIndex:] index:2147483647 beyond bounds(10)'.

From a previous NSLog, I saw that the two elements exist in the array but indexOfObject not find them. Why?

My code is:

    NSDictionary * headConfig =[avatarDictionaryToSave objectForKey:@"head_dictionary"];
    NSString * headImage =[headConfig objectForKey:@"layer_key"];
    NSString * pathFace =[[NSBundle mainBundle]pathForResource:@"Face" ofType:@"plist"];
    NSLog(@"%@", headImage);

    NSArray *arrayFace =[NSArray arrayWithContentsOfFile:pathFace];
    NSLog(@"the  elements are: %@", arrayFace);//here headImage is present
    int index =[arrayFace indexOfObject:headImage];
    NSLog(@"the index is %d", index);
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where is your code??? – Inder Kumar Rathore Jun 7 '12 at 10:24
1  
How you are retrieving index? – Nuzhat Zari Jun 7 '12 at 10:25
1  
It seems you are confusing between indexOfObject and objectAtIndex? The former will find the object, while the latter retrieve the object at index in the array? – nhahtdh Jun 7 '12 at 10:26
up vote 37 down vote accepted

indexOfObject: returns NSNotFound when the object is not present in the array. NSNotFound is defined as NSIntegerMax (== 2147483647 on iOS 32 bit).

So it seems that the object you are looking for is just not there.

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2  
Thank you very much – Teodoro Jun 7 '12 at 11:01
2  
Or on 64 bit architecture, returning 9223372036854775807. – Teodor Ciuraru Nov 26 '15 at 14:12

By default, an integer is assumed to be signed.

In other words the compiler assumes that an integer variable will be called upon to store either a negative or positive number. This limits the extent that the range can reach in either direction.

For example, a 32-bit int has a range of 4,294,967,295. In practice, because the value could be positive or negative the range is actually −2,147,483,648 to +2,147,483,647.

If we know that a variable will never be called upon to store a negative value, we can declare it as unsigned, thereby extending the (positive) range to 0 to +4,294,967,295.

An unsigned int is specified as follows:

unsigned int myint;
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3  
This doesn't answer the question. – Mark Amery Aug 5 '13 at 14:04
    
This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post - you can always comment on your own posts, and once you have sufficient reputation you will be able to comment on any post. – Luke Apr 27 '15 at 14:12

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