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I have a problem that I can not fix with a number, I'll explain. At one point in my code I call a function that returns an int, then I divide it and have a float with two decimal places.

My Ex 69033792 Fuzion back, I want to have to divide by 1024 and 67415.81 I write

NSInteger mem_0 = [self printMemoryInfo:@"0"];
    [self.mem1 setText:[NSString stringWithFormat:@"%.2f",(mem_0/1024f)]];

but I do not return the decimal part ... What's wrong?


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2 Answers 2

up vote 2 down vote accepted
myDouble = [[NSNumberFormatter alloc] init]; 
[myDouble setFormatterBehavior:NSNumberFormatterBehavior10_4]; 
[myDouble setNumberStyle:NSNumberFormatterDecimalStyle];
[myDouble setRoundingMode:NSNumberFormatterRoundHalfUp];
[myDouble setMinimumFractionDigits:0];
[myDouble setMaximumFractionDigits:2];
    NSInteger mem_0 = [self printMemoryInfo:@"0"];
    [self.mem1 setText:[myDouble stringFromNumber:[NSNumber numberWithDouble: mem_0/1024]]];
    [myDouble release];
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this evening i try it..thanks – almal Nov 17 '11 at 8:41
i try this code but in first line xcode say "use of undeclared identifier myDouble" – almal Nov 17 '11 at 20:18
Yes, sorry for this. Replace the first line with: NSNumberFormatter *myDouble = [[NSNumberFormatter alloc] init]; – CristiC Nov 17 '11 at 20:30
ok thanks a lot! – almal Nov 17 '11 at 20:33

You should be getting the compile-time error "Invalid digit 'f' in decimal constant", because 1024f is not legal. You need to say it like this:

[self.mem1 setText:[NSString stringWithFormat:@"%.2f",(mem_0/1024.0f)]];

or you can just say 1024.0 without the f, because it will be passed to stringWithFormat: as a double anyway.

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