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I can't achieve rounding a float.

Those calls all returns me 3.5999999 and not 3.6 for theoTimeoutTrick and theoTimeout.
How may I achieve to get that 3.6 value, into NSString AND float vars ?

#define minTimeout 1.0
#define defaultNbRetry 5

    float secondsWaitedForAnswer = 20.0;
    float minDelayBetween2Retry = 0.5;

    int theoNbRetries = defaultNbRetry;
    float theoTimeout = 0.0;

    while (theoTimeout < minTimeout && theoNbRetries > 0) {
        theoTimeout = (secondsWaitedForAnswer - (theoNbRetries-1)*minDelayBetween2Retry) / theoNbRetries;
        theoNbRetries--;
    }

    float theoTimeoutTrick = [[NSString stringWithFormat:@"%.1f", theoTimeout] floatValue];
    theoTimeout = roundf(theoTimeout * 10)/10.0;
share|improve this question
    
3.6 is not precisely representable in binary with finitely many digits. –  Kerrek SB Jul 25 '11 at 0:12
6  
I'm sure my banking account doesn't use IEEE floats for my balance! (Mainly because of their limited range :-) ). Use formatted output to print a suitably rounded value. –  Kerrek SB Jul 25 '11 at 0:17
1  
You format when you actually output to a string. All I can see you do is assign floats and ints. Where's your output printing? –  Kerrek SB Jul 25 '11 at 0:20
3  
Alternatively, use NSDecimal and NSDecimalNumber. –  tc. Jul 25 '11 at 0:23
2  
@Kerrek money handling software usually uses binary encoded decimals (BED), which use 4 bits for every digit. However, if you try something like NSLog(@"%f", 3.6); you will find that it does indeed print 3.60000 –  bdares Jul 25 '11 at 0:26

1 Answer 1

up vote 3 down vote accepted

From Rounding numbers in Objective-C:

float roundedValue = round(2.0f * number) / 2.0f;
NSNumberFormatter *formatter = [[NSNumberFormatter alloc] init];
[formatter setMaximumFractionDigits:1];
[formatter setRoundingMode: NSNumberFormatterRoundDown];

NSString *numberString = [formatter stringFromNumber:[NSNumber numberWithFloat:roundedValue]];
[formatter release];

That will get you a rounded string. You can parse it back into a float I'm sure.

Okay, here's some test code and some results:

NSLog(@"%f", round(10*3.56)/10.0);
    =>3.600000
NSLog(@"%f", round(10*3.54)/10.0);
    =>3.500000
NSLog(@"%f", round(10*3.14)/10.0);
    =>3.100000

Okay, you know what? Your original code works as intended on my machine, OSX 10.6 and Xcode 4. How exactly are you seeing your output?

share|improve this answer
    
@Oliver: The question for that post was asking for rounding to nearest 0.5, so he rounded after multiplying by 2, then divided result by 2. You can use [formatter setMaximumFractionDigits:0] if you want to round to the nearest whole number. –  bdares Jul 25 '11 at 0:32
    
Oucchhhh... I mean... Ouucchhh ! What the f.... Well that works not so good because of the round type. I just get 3.5. Two questions : what is the use of 2.0f here ? What NSNumberFormatter constant may I use to round the decimal with the common method (you know until 0.5 it rounds down, and with 0.5 and more it rounds up) ? –  Oliver Jul 25 '11 at 0:35
    
If you'd take five seconds to search the docs for NSNumberFormatterRoundDown you'd find the answer… –  Rob Keniger Jul 25 '11 at 0:35
    
@bdares : I just want here to get 3.6 –  Oliver Jul 25 '11 at 0:35
    
@Rob Keniger : Ah ah ah. Does not work. Of course I read the doc. If I set float roundedValue = 3.56; I just get 3.5, where I should have 3.6. –  Oliver Jul 25 '11 at 0:38

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