233

I am editing to make the question simpler, hoping that helps towards an accurate answer.

Say I have the following oval shape:

<?xml version="1.0" encoding="utf-8"?>
<shape xmlns:android="http://schemas.android.com/apk/res/android" android:shape="oval">
    <solid android:angle="270"
           android:color="#FFFF0000"/>
    <stroke android:width="3dp"
            android:color="#FFAA0055"/>
</shape>

How do I set the color programmatically, from within an activity class?

4
  • What do you set this drawable to?
    – Vikram
    Jul 24, 2013 at 1:03
  • The drawable is an oval and is the background of an ImageView. Jul 24, 2013 at 3:29
  • If this question as asked is too difficult, is there a way to draw multiple images onto a canvas and set the layered end product as the background of a view? Jul 24, 2013 at 21:01
  • You can achieve this by extending the View class, and using it as the base view in a layout that allows overlapping of widgets(RelativeLayout, FrameLayout). Inside this extended View class, you can draw multiple images onto a canvas. But, before doing that, take a look at this --> Link (if you haven't already).
    – Vikram
    Jul 24, 2013 at 22:08

19 Answers 19

312

Note: Answer has been updated to cover the scenario where background is an instance of ColorDrawable. Thanks Tyler Pfaff, for pointing this out.

The drawable is an oval and is the background of an ImageView

Get the Drawable from imageView using getBackground():

Drawable background = imageView.getBackground();

Check against usual suspects:

if (background instanceof ShapeDrawable) {
    // cast to 'ShapeDrawable'
    ShapeDrawable shapeDrawable = (ShapeDrawable) background;
    shapeDrawable.getPaint().setColor(ContextCompat.getColor(mContext,R.color.colorToSet));
} else if (background instanceof GradientDrawable) {
    // cast to 'GradientDrawable'
    GradientDrawable gradientDrawable = (GradientDrawable) background;
    gradientDrawable.setColor(ContextCompat.getColor(mContext,R.color.colorToSet));
} else if (background instanceof ColorDrawable) {
    // alpha value may need to be set again after this call
    ColorDrawable colorDrawable = (ColorDrawable) background;
    colorDrawable.setColor(ContextCompat.getColor(mContext,R.color.colorToSet));
}

Compact version:

Drawable background = imageView.getBackground();
if (background instanceof ShapeDrawable) {
    ((ShapeDrawable)background).getPaint().setColor(ContextCompat.getColor(mContext,R.color.colorToSet));
} else if (background instanceof GradientDrawable) {
    ((GradientDrawable)background).setColor(ContextCompat.getColor(mContext,R.color.colorToSet));
} else if (background instanceof ColorDrawable) {
    ((ColorDrawable)background).setColor(ContextCompat.getColor(mContext,R.color.colorToSet));
}

Note that null-checking is not required.

However, you should use mutate() on the drawables before modifying them if they are used elsewhere. (By default, drawables loaded from XML share the same state.)

14
  • 4
    Thanks for answering. (+1). My code is experiencing other bugs so it's difficult to test. But still this might set the solid portion of the shape. How about the stroke portion? Jul 24, 2013 at 5:03
  • 1
    @TiGer You should add @username in your comment to make sure a notification is sent to the user. By the way, you will need to subclass ShapeDrawable in order to set the stroke portion. More info here: Link. Look at the comment as it mentions a problem with the accepted answer.
    – Vikram
    Oct 19, 2013 at 1:33
  • 3
    android.graphics.drawable.GradientDrawable cannot be cast to android.graphics.drawable.ShapeDrawable The cast fails on me
    – John
    Mar 27, 2014 at 19:35
  • 3
    @John If your ImageView's background is set to a GradientDrawable, getBackground() will not return a ShapeDrawable. Instead, use the GradientDrawable that is returned: GradientDrawable gradientDrawable = (GradientDrawable)imageView.getBackground();.... gradientDrawable.setColors(new int[] { color1, color2 });.
    – Vikram
    May 8, 2014 at 19:51
  • 1
    @Vikram I figured out my issue described above. You must call mutate() to avoid coloring any view that shares a drawable with the one you are coloring. :) Mar 10, 2016 at 0:31
79

A simpler solution nowadays would be to use your shape as a background and then programmatically change its color via:

view.background.setColorFilter(Color.parseColor("#343434"), PorterDuff.Mode.SRC_ATOP)

See PorterDuff.Mode for the available options.

UPDATE (API 29):

The above method is deprecated since API 29 and replaced by the following:

view.background.colorFilter = BlendModeColorFilter(Color.parseColor("#343434"), BlendMode.SRC_ATOP)

See BlendMode for the available options.

5
  • 7
    Correct one is: view.getBackground().setColorFilter(Color.parseColor("#343434"), PorterDuff.Mode.SRC_ATOP); Since there may be a border on the background or rounded courners. Apr 14, 2019 at 10:07
  • 1
    Nice one @BerkayTurancı my shape did have rounded corners. I could omit the getBackground() call. My imageview.src contained a shape and I used: imageIndicator.setColorFilter(toggleColor, PorterDuff.Mode.SRC_ATOP); where toggleColor is just an int that previously stored the result from getColor() Apr 24, 2019 at 19:57
  • 2
    Having PorterDuff.Mode for BlendModeColorFilter won't compile as it requires BlendMode. So for API 29 it should be view.background.colorFilter = BlendModeColorFilter(Color.parseColor("#343434"), BlendMode.SRC_ATOP).
    – Onik
    Jun 1, 2020 at 10:56
  • Good catch @Onik. I've updated the answer accordingly. Thank you!
    – Georgios
    Jun 1, 2020 at 22:00
  • @Onik but BlendMode.SRC_ATOP does not preserve stroke !
    – Shikhar
    Jun 29, 2023 at 2:53
51

Do like this:

    ImageView imgIcon = findViewById(R.id.imgIcon);
    GradientDrawable backgroundGradient = (GradientDrawable)imgIcon.getBackground();
    backgroundGradient.setColor(getResources().getColor(R.color.yellow));
2
  • 1
    @user3111850 Did you add android:background in your xml or even setBackgroundin activity before you call getBackground() ? It should works if you had done so. Sep 2, 2014 at 6:07
  • Worked like a charm! Aug 5, 2020 at 14:52
26

This question was answered a while back, but it can modernized by rewriting as a kotlin extension function.

fun Drawable.overrideColor(@ColorInt colorInt: Int) {
    when (this) {
        is GradientDrawable -> setColor(colorInt)
        is ShapeDrawable -> paint.color = colorInt
        is ColorDrawable -> color = colorInt
    }
}
1
  • 1
    Rly nice answer! Thnx you!
    – Dsda
    Nov 7, 2020 at 15:02
16

Try this:

 public void setGradientColors(int bottomColor, int topColor) {
 GradientDrawable gradient = new GradientDrawable(Orientation.BOTTOM_TOP, new int[]  
 {bottomColor, topColor});
 gradient.setShape(GradientDrawable.RECTANGLE);
 gradient.setCornerRadius(10.f);
 this.setBackgroundDrawable(gradient);
 }

for more detail check this link this

hope help.

1
  • up vote for the link. But it's not the answer to my question. Jul 24, 2013 at 3:28
15

hope this will help someone with the same issue

GradientDrawable gd = (GradientDrawable) YourImageView.getBackground();
//To shange the solid color
gd.setColor(yourColor)

//To change the stroke color
int width_px = (int)TypedValue.applyDimension(TypedValue.COMPLEX_UNIT_DIP, youStrokeWidth, getResources().getDisplayMetrics());
gd.setStroke(width_px, yourColor);
1
  • 1
    Initially I couldn't get this to work, I figured out yourColor must be provided like this: gd.setStroke(width_px, Color.parseColor("#FF5722"));
    – pwnsauce
    Oct 13, 2015 at 17:42
12

Expanding on Vikram's answer, if you are coloring dynamic views, like recycler view items, etc.... Then you probably want to call mutate() before you set the color. If you don't do this, any views that have a common drawable (i.e a background) will also have their drawable changed/colored.

public static void setBackgroundColorAndRetainShape(final int color, final Drawable background) {

    if (background instanceof ShapeDrawable) {
        ((ShapeDrawable) background.mutate()).getPaint().setColor(color);
    } else if (background instanceof GradientDrawable) {
        ((GradientDrawable) background.mutate()).setColor(color);
    } else if (background instanceof ColorDrawable) {
        ((ColorDrawable) background.mutate()).setColor(color);
    }else{
        Log.w(TAG,"Not a valid background type");
    }

}
1
  • 3
    needs and extra check and parameter: if (background instanceof LayerDrawable) { background = ((LayerDrawable) background.mutate()).getDrawable(indexIfLayerDrawable); } if (background instanceof ShapeDrawable)[...] to deal with backgrounds layouts that use <layer-list ... <item ....
    – Johny
    Jan 15, 2018 at 2:20
7

this is the solution that works for me...wrote it in another question as well: How to change shape color dynamically?

//get the image button by id
ImageButton myImg = (ImageButton) findViewById(R.id.some_id);

//get drawable from image button
GradientDrawable drawable = (GradientDrawable) myImg.getDrawable();

//set color as integer
//can use Color.parseColor(color) if color is a string
drawable.setColor(color)
7

Nothing work for me but when i set tint color it works on Shape Drawable

 Drawable background = imageView.getBackground();
 background.setTint(getRandomColor())

require android 5.0 API 21

2
  • 1
    Elegant solution. Simple and works flawlessly.
    – Vijay E
    May 11, 2021 at 10:46
  • Nice and short solution !
    – matdev
    Jun 2, 2021 at 13:26
3

My Kotlin extension function version based on answers above with Compat:

fun Drawable.overrideColor_Ext(context: Context, colorInt: Int) {
    val muted = this.mutate()
    when (muted) {
        is GradientDrawable -> muted.setColor(ContextCompat.getColor(context, colorInt))
        is ShapeDrawable -> muted.paint.setColor(ContextCompat.getColor(context, colorInt))
        is ColorDrawable -> muted.setColor(ContextCompat.getColor(context, colorInt))
        else -> Log.d("Tag", "Not a valid background type")
    }
}
2

The simple way to fill the shape with the Radius is:

(view.getBackground()).setColorFilter(Color.parseColor("#FFDE03"), PorterDuff.Mode.SRC_IN);
1

For anyone using C# Xamarin, here is a method based on Vikram's snippet:

private void SetDrawableColor(Drawable drawable, Android.Graphics.Color color)
{
    switch (drawable)
    {
        case ShapeDrawable sd:
            sd.Paint.Color = color;
            break;
        case GradientDrawable gd:
            gd.SetColor(color);
            break;
        case ColorDrawable cd:
            cd.Color = color;
            break;
    }
}
1

May be I am too late.But if you are using Kotlin. There is way like this

var gd = layoutMain.background as GradientDrawable

 //gd.setCornerRadius(10)
  gd.setColor(ContextCompat.getColor(ctx , R.color.lightblue))
  gd.setStroke(1, ContextCompat.getColor(ctx , R.color.colorPrimary)) // (Strokewidth,colorId)

Enjoy....

1

This might help

1.Set the shape color initially to transparent

<?xml version="1.0" encoding="utf-8"?>
<shape xmlns:android="http://schemas.android.com/apk/res/android" android:shape="oval">
   <solid android:angle="270"
       android:color="@android:color/transparent"/>
   <stroke android:width="3dp"
        android:color="#FFAA0055"/>
</shape>
  1. Set the shape as a background to the view

  2. Set your preferred color as follows:

    Drawable bg = view.getBackground();
    bg.setColorFilter(Color.parseColor("#Color"), PorterDuff.Mode.ADD);
    
1

I needed to do this in my adapter but the solutions above were either not working or required >= android version 10. The code below worked for me!

val drawable = DrawableCompat.wrap(holder.courseName.background)
DrawableCompat.setTint(drawable, Color.parseColor("#4a1f60"))

EDIT!!: OR if your color is an Int and not a Hex

val myDrawable = DrawableCompat.wrap(holder.courseName.background)
DrawableCompat.setTint(myDrawable, ContextCompat.getColor(context, newColor))

ADDED INFO!!: Another way to do this is to get the drawable, change its tint first, then set it to the background of your view.

val tintDrawable = ContextCompat.getDrawable(context, R.drawable.my_shape)!!.mutate()
DrawableCompat.setTint(tintDrawable, ContextCompat.getColor(context, newColor))
view.background = tintDrawable
0

The Best way to change Solid color of custom drawable is For Kotlin.

 (findViewById<TextView>(R.id.testing1).getBackground()).setColorFilter(Color.parseColor("#FFDE03"), PorterDuff.Mode.SRC_IN); 
0

We can create this kotlin function.

fun View.updateViewBGSolidColor(colorString: String) {
    when (val background: Drawable = this.background) {
        is ShapeDrawable -> {
            background.paint.color = Color.parseColor(colorString)
        }
        is GradientDrawable -> {
            background.setColor(Color.parseColor(colorString))
        }
        is ColorDrawable -> {
            background.color = Color.parseColor(colorString)
        }
    }
}

And use it like the below:

yourTextView.updateViewBGSolidColor("#FFFFFF")
0
GradientDrawable gd = new GradientDrawable(
        GradientDrawable.Orientation.TOP_BOTTOM,
        new int[] {0xFF616261,0xFF131313});
gd.setCornerRadius(0f);

layout.setBackgroundDrawable(gd);
0

For 2023 with compileSdkVersion 33 the most voted answer at this moment worked in some way. My shape it's a simple rounded border for a complex view.

<?xml version="1.0" encoding="utf-8"?>
<shape xmlns:android="http://schemas.android.com/apk/res/android"
    android:shape="rectangle" >
    <stroke
        android:width="2dp"
        android:color="@color/white"/>
    <corners
        android:bottomRightRadius="10dp"
        android:topLeftRadius="10dp"
        android:topRightRadius="10dp"
        android:bottomLeftRadius="10dp"/>
</shape>

The shape is set as background in a view with name VScroll. I need the color of the shape to be the same as the themed view so I adapted the accepted answer and set the color in the Fragment:

val lineBackground = binding.vScroll.background as GradientDrawable
lineBackground.setStroke(5,Color.parseColor(line.color))

Where line.color is an hexadecimal string value like #FFFFFF. The int value for the stroke width is set in pixels, so it has to be converted to dp for a correct size.

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