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I'm trying to create a function to calculate the mean, max, min and standard deviation of a set of numbers.

I'd like it to work like the UIColor function - (void)getRed:green:blue:alpha. i.e. you pass in the four float values and the function then overwrites them.

I'm struggling to find the right syntax for it.

My function is...

- (void)calculateStatsAverage:(float)average
    //pseudo code
    average = total / count;
    minimum = min value;

The problem I'm getting is getting the values out again.

If I change the function to use float* (which is what the UIColor function does) then my calculations don't like assigning the variables.

To simplify...

Imagine these functions. The first is called from elsewhere.

- (void)runThisFunction
    float someOutputValue = 0.0;

    [self changeTheValue:someOutputValue];

    NSLog(@"The value is %f", someOutputValue);

- (void)changeTheValue:(float)value
    value = 10.0;

I'd like this code to output "The value is 10.0"; But at the moment I'm getting "The value is 0.0".

Please could you show me how to write these two functions. From there I'll be able to work out the rest.


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2 Answers 2

up vote 2 down vote accepted
- (void)passByRefMethod:(float *)ptr
    *ptr = MYVALUE;

Sorry for formatting, typed on phone. Hope this helps!

This technique is often called pass by reference, and it's part of C so you can use that to search for more info.

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Perfect! Thanks! Will accept answer when the timer runs out :D – Fogmeister Aug 31 '12 at 11:40
Thanks glad I could help! – Carl Veazey Aug 31 '12 at 11:44

Your NSLog is displaying the value of the local variable 'someOutputValue', which has been assigned to be 0.0.

Your 'changeTheValue' method has no effect.

The following code may help,

- (void)runThisFunction
    float someOutputValue = 0.0;

    float resultOfCalc = [self calcTheValue:someOutputValue];

    NSLog(@"The value is %f", resultOfCalc);

- (float) changeTheValue:(float)value // note that this method returns a float
    float newValue;

    // do whatever calc is appropriate, e.g.

    newValue = value + 10.0;

    return newValue;  // pass back the result of calc

This will output,

The value is 10.
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I would do this if I was only looking for one output value. But I want the function to calculate 4 different values. Carl's answer let's me do that. Thanks – Fogmeister Aug 31 '12 at 11:46

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