12

I would like a gradient that progresses from a start color to an end color at a non-linear rate. The gradient would change only along a single cartesian axis. A RadialGradient or SweepGradient is not what I am referring to here.

My question is, does Android provide support for controlling gradient transition rates, without writing a custom Shader?

1

Yes, to a certain degree. LinearGradient has a constructor that takes multiple colors and positions, so you can approximate non-linear progression using piece-wise linear function.

The code below is based on answer https://stackoverflow.com/a/4381192/8568479

ShapeDrawable.ShaderFactory shaderFactory = new ShapeDrawable.ShaderFactory() {
    @Override
    public Shader resize(int width, int height) {
        LinearGradient gradient = new LinearGradient(0, 0, width, height,
            new int[] { 
                Color.parseColor("#000000"),
                Color.parseColor("#777777"),
                Color.parseColor("#FFFFFF")
            },
            new float[] { 0, 0.3f, 1 },
            Shader.TileMode.REPEAT
        );
        return gradient;
    }
};

PaintDrawable p = new PaintDrawable();
p.setShape(new RectShape());
p.setShaderFactory(shaderFactory);

You can add as many stops as you need to make the gradient look smooth. I've also found this link helpful to select the coefficients for a smooth-looking gradient https://css-tricks.com/easing-linear-gradients/

0

Not a good way, but an easy way:

You can add a centerColor in your gradient XML file and set a value you want. That makes it non-linear (You need to do some calculations).

For example, if you need a non-linear gradient from Transparent to Black, you can do it like this:

<shape xmlns:android="http://schemas.android.com/apk/res/android"
    android:shape="rectangle">
    <gradient
        android:startColor="#00000000"
        android:centerColor="#11000000"
        android:endColor="#000000"
        android:angle="270" />
</shape>

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.