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I have a slider with a minimum value of 0 and maximum of 500.

I want to when the slider goes to 100, the thumb be in the middle of the slider.

I know it seems wierd, but some programs do it with zoom slider, and I believe it's better.

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1  
see Sam Hocevar's answer for the correct way to do this. The accepted answer is definitively the wrong way to go –  Benlitz Jun 14 '13 at 6:56

6 Answers 6

up vote 7 down vote accepted

This was such an interesting question that I couldn't leave it alone, and hopefully I got what you're asking right :)

You want to change the Value of a Slider from Linear to a Quadratic Function by specifying the Y value of the function when the Thumb is in the middle.

A Quadratic Function is written on the form
formula

Since we have 3 points, we have 3 sets of values for X and Y.

(X1, Y1) = 0, 0  
(X2, Y2) = MiddleX, CenterQuadraticValue (in your case 100)  
(X3, Y3) = Maximum, Maximum (in your case 500)

From here, we can create a Quadratic Equation (see this link for example) which comes out to
formula

Unfortunately, some values in this graph ends up below 0 so they will have to be coerced to 0 (I included a graph in the bottom of the answer).

I created a control, QuadraticSlider, which derives from Slider and adds two Dependency Properties: QuadraticValue and CenterQuadraticValue. It calculates QuadraticValue using the formula above based on Value, Maximum, Minimum and CenterQuadraticValue. It also does the reverse: setting QuadraticValue updates Value. So instead of Binding to Value, bind to QuadraticValue.

Edit: The last version was a little buggy. Fixed a couple of things

  • Calculating Value from QuadraticValue no longer breaks when "a" is 0
  • Used wrong root from the second degree solution when the derivate was negative

I uploaded a sample application where QuadraticSlider is used to zoom a picture. All parameteres can be specified and the first picture uses Value and the other QuadraticValue.

Download it here if you want to try it out.

It looks like this
enter image description here

And this is what the graph looks like, notice the values below 0

enter image description here

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Good job Meleak! It has some bugs, so I had to edit a few your code to work. For example: In your example, try to change the minimum to 25. Thank you. –  Seva Sep 1 '11 at 14:40
    
@Seva: I'm unable to find that bug. If you set Maximum to 25, you have to set CenterQuadraticValue to something below 25, like 10. Otherwise you'll get a pretty buggy behavior but that's because you specified bad parameters :) Also, you'll have to compensate on the ScaleTransform on the Images since they start of with a value of 0.002 which I just hardcoded :) (Or did you find something that I overlooked?) –  Fredrik Hedblad Sep 1 '11 at 14:50
    
@Seva: Aha, setting Minimum to 25 does indeed not work as expected. Missread your comment. I'll look into it –  Fredrik Hedblad Sep 1 '11 at 14:52
1  
NO, NO, NO AND NO! Downvoting this to infinity! That's probably the worst possible way to do it! You must use a strictly monotonous function. –  Sam Hocevar Jun 14 '13 at 5:54
1  
@SamHocevar: +1 for an, by the looks of it, much better answer. -1 for screaming and uncalled for attitude –  Fredrik Hedblad Jun 15 '13 at 13:29

A good formula for the displayed value is a monotonous function such as a power curve, in the following form:

DisplayValue = A + B * Math.Exp(C * SliderValue);

The internal slider value (from 0 to 1 for instance) is obtained by inverting the formula:

SliderValue = Math.Log((DisplayValue - A) / B) / C;

Now how to obtain A, B and C? By using the three constraints you gave:

f(0.0) = 0
f(0.5) = 100
f(1.0) = 500

Three equations, three unknowns, this is solved using basic maths:

A + B = 0
A + B exp(C * 0.5) = 100
A + B exp(C) = 500

B (exp(C * 0.5) - 1) = 100
B (exp(C) - 1) = 500

exp(C) - 5 exp(C * 0.5) + 4 = 0  // this is a quadratic equation

exp(C * 0.5) = 4

C = log(16)
B = 100/3
A = -100/3

Yielding the following code:

double B = 100.0 / 3;
double C = Math.Log(16.0);
DisplayValue = B * (Math.Exp(C * SliderValue) - 1.0);

You can see that the display value is at 100 when the internal value is in the middle:

final curve

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let the slider as it is and use a ValueConverter for your bindings. In the ValueConverter use the non-linear scaling to scale the value as you wish.

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I don't think it works. Dosnt valueConverter only format the string of the text? –  Seva Sep 1 '11 at 14:39
    
no you can create small little pieces of code called ValueConverters - see here: msdn.microsoft.com/en-us/library/…;, that will convert one value to another during binding .. but nice to give someone a downvote based on his own ignorance - thanks a lot ... pleasure to help you :/ –  Carsten König Sep 1 '11 at 16:08
3  
The other example is a lot of work, but this one is the more correct way to do it. –  mydogisbox Sep 1 '11 at 18:04
    
dude, how can you change the thumb position inside slider based only in valueconverter? –  Seva Sep 6 '11 at 16:47
    
you binnd the value to some other value and use a ValueConverter in there so if your internal value is 10 you can have the Converter return 1, 100->2, or whatever. The slider only sees the values after the converter so you can just map linear-scale to log-scale or whatever you want –  Carsten König Sep 6 '11 at 16:54

Just as a further reference; if you are not interested on exact positions for your slider to correspond to specific values in your scale but still want a behavior where the slider is more sensitive to values on the beginning of the scale than on the end, then perhaps using a simple log scale may suffice.

public class LogScaleConverter : IValueConverter
{
    public object Convert(object value, Type targetType, object parameter, CultureInfo culture)
    {
        double x = (int)value;
        return Math.Log(x);
    }

    public object ConvertBack(object value, Type targetType, object parameter, CultureInfo culture)
    {
        double x = (double)value;
        return (int)Math.Exp(x);
    }
}
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Some addition to Meleak's post. I've slightly corrected QuadraticSlider. There was issue with event handlers (event on QuadraticValueChanged with yet prevoius value; event during initialization with out of range [min, max] value).

protected override void OnValueChanged(double oldValue, double newValue)
{
    QuadraticValue = a * Math.Pow(Value, 2) + b * Value + c;
    base.OnValueChanged(oldValue, newValue);
}

public double QuadraticValue
{
    get {
        var qv = (double)GetValue(QuadraticValueProperty);
        if (double.IsNaN(qv))
            qv = 0;
        qv = Math.Max(qv, base.Minimum);
        qv = Math.Min(qv, base.Maximum);
        return qv;
    }
    set 
    {
        SetValue(QuadraticValueProperty, value);
    }
}
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To generalise on Sam Hocevar's excellent answer:

Let the intended Maximum value be M.
Let the value at the slider midpoint be m.
(obviously, 0 < m < M), then

    A = - M*m^2 / (M^2 - 2*m*M)
    B = M*m^2 / (M^2 - 2*m*M)
    C = Ln((M - m)^2 / m^2) // <- logarithm to the base of e, I always think of 'Log' as base 10

One must take care to treat the case 2*m=M seperately, because that leads to a division by 0. But in that case, you'd have the slider behave in a linear fashion anyway.

Chosing m from between M/2 and M makes for a logarithmic curve: The effective slider values rise fast at first, then slowly later on. This basically reverses the effect and gives the user finer control of the higher values.

As mentioned, an m close to M/2 makes the slider basically linear.
Choosing m close to 0 or close to M makes for fine control over the very low or the very high values.

I suppose one could use this in combination with a second slider that sets m to a value between 0 and M to change the ... errr ... sensitive zone of the real slider.

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