37

I'm trying to dynamically scale text to be placed on images of varying but known dimensions. The text will be applied as a watermark. Is there any way to scale the text in relation to the image dimensions? I don't require that the text take up the whole surface area, just to be visible enough so its easily identifiable and difficult to remove. I'm using Python Imaging Library version 1.1.7. on Linux.

I would like to be able to set the ratio of the text size to the image dimensions, say like 1/10 the size or something.

I have been looking at the font size attribute to change the size but I have had no luck in creating an algorithm to scale it. I'm wondering if there is a better way.

Any ideas on how I could achieve this?

Thanks

72

You could just increment the font size until you find a fit. font.getsize() is the function that tells you how large the rendered text is.

from PIL import ImageFont, ImageDraw, Image

image = Image.open('hsvwheel.png')
draw = ImageDraw.Draw(image)
txt = "Hello World"
fontsize = 1  # starting font size

# portion of image width you want text width to be
img_fraction = 0.50

font = ImageFont.truetype("arial.ttf", fontsize)
while font.getsize(txt)[0] < img_fraction*image.size[0]:
    # iterate until the text size is just larger than the criteria
    fontsize += 1
    font = ImageFont.truetype("arial.ttf", fontsize)

# optionally de-increment to be sure it is less than criteria
fontsize -= 1
font = ImageFont.truetype("arial.ttf", fontsize)

print('final font size',fontsize)
draw.text((10, 25), txt, font=font) # put the text on the image
image.save('hsvwheel_txt.png') # save it

If this is not efficient enough for you, you can implement a root-finding scheme, but I'm guessing that the font.getsize() function is small potatoes compared to the rest of your image editing processes.

| improve this answer | |
11

In general when you change the font sizing its not going to be a linear change in size of the font.

Non-linear Scaling

Now this often depends on the software, fonts, etc... This example was taken from Typophile and uses LaTex + Computer Modern font. As you can see its not exactly a linear scaling. So if you are having trouble with non-linear font scaling then I'm not sure how to resolve it, but one suggestion maybe is to.

  1. Render the font as closely to the size that you want, then scale that up/down via regular image scaling algorithm...
  2. Just accept that it won't exactly be linear scaling and try to create some sort of table/algorithm that will select the closest point size for the font to match up with the image size.
| improve this answer | |
  • Thanks for the reply , The method suggested by Paul solved it. Thanks anyway though. – Shpongle Feb 5 '11 at 14:14
  • 1
    My first thought looking at the image was "well if you don't scale the line height with the text, then of course it's not going to look linear". But comparing the length of the lines, you can see that the rendered length of the 6pt font is more than half of the 12pt, and the 5pt is more than half the length of the 10pt. – Ian Apr 29 '16 at 11:48
4

I know this is an old question that has already been answered with a solution that I too have used. Thanks, @Paul!

Though with increasing the font size by one for each iteration can be time-consuming (at least for me on my poor little server). So eg. small text (like "Foo") would take around 1 - 2 seconds, depending on the image size.

To solve that I adjusted Pauls code so that it searches for the number somewhat like a binary search.

breakpoint = img_fraction * photo.size[0]
jumpsize = 75
while True:
    if font.getsize(text)[0] < breakpoint:
        fontsize += jumpsize
    else:
        jumpsize = jumpsize // 2
        fontsize -= jumpsize
    font = ImageFont.truetype(font_path, fontsize)
    if jumpsize <= 1:
        break

Like this, it increases the font size until it's above the breakpoint and from there on out it goes up and down with (cutting the jump size in half with each down) until it has the right size.

With that, I could reduce the steps from around 200+ to about 10 and so from around 1-2 sec to 0.04 to 0.08 sec.

This is a drop-in replacement for Pauls code (for the while statement and the 2 lines after it because you already get the font correct font size in the while)

This was done in a few mins so any improvements are appreciated! I hope this can help some who are looking for a bit more performant friendly solution.

| improve this answer | |
  • 2
    int(jumpsize / 2) can be replaced with jumpsize // 2. – Mark Ransom Oct 3 at 3:29
  • Thanks @MarkRansom I adjusted it – Nachtalb Nov 6 at 10:44

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.