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Lets say I have the characters Ú, Ù, Ü. All of them are similar glyphically to the English U.

Is there some list or algorithm to do this:

  • Given a Ú or Ù or Ü return the English U
  • Given a English U, return the list of all U-similar characters

I'm not sure if the code point of the Unicode characters is the same across all fonts? If it is, I suppose there could be some easy way and efficient to do this?

share|improve this question
    
Yes, and so are ∪ U+222A UNION and ⋃ U+223C N-ARY UNION and ⩌ U+2A4C CLOSED UNION WITH SERIFS and U U+FF35 FULLWIDTH LATIN CAPITAL LETTER U and a whole lot more. What are you trying to do? U, Ù, Ú, Û, Ü, Ũ, Ū, Ŭ, Ů, Ű, Ų, Ư, Ǔ, Ǖ, Ǘ, Ǚ, Ǜ, Ȕ, Ȗ, ᵁ, Ṳ, Ṵ, Ṷ, Ṹ, Ṻ, Ụ, Ủ, Ứ, Ừ, Ử, Ữ, Ự, Ⓤ, .... –  tchrist Jan 31 '11 at 0:35
3  
It's not me, it's U! –  user142019 Jan 31 '11 at 0:44
1  
possible duplicate of Converting Symbols, Accent Letters to English Alphabet. –  Joachim Sauer Jan 31 '11 at 8:14
1  
Have you looked at the unidecode module? pypi.python.org/pypi/Unidecode –  Thomas K Jan 31 '11 at 18:26
1  
The Unicode concept of "confusables" is also worth mentioning here; see a demo, full list, and the technical report. –  Shervin May 21 '13 at 18:24

3 Answers 3

up vote 7 down vote accepted
+100

This won't work for all conditions, but one way to get rid of most accents is to convert the characters to their decomposed form, then throw away the combining accents:

# coding: utf8
import unicodedata as ud
s=u'U, Ù, Ú, Û, Ü, Ũ, Ū, Ŭ, Ů, Ű, Ų, Ư, Ǔ, Ǖ, Ǘ, Ǚ, Ǜ, Ụ, Ủ, Ứ, Ừ, Ử, Ữ, Ự'
print ud.normalize('NFD',s).encode('ascii','ignore')

Output

U, U, U, U, U, U, U, U, U, U, U, U, U, U, U, U, U, U, U, U, U, U, U, U

To find accent characters, use something like:

import unicodedata as ud
import string

def asc(unichr):
    return ud.normalize('NFD',unichr).encode('ascii','ignore')

U = u''.join(unichr(i) for i in xrange(65536))
for c in string.letters:
    print u''.join(u for u in U if asc(u) == c)

Output

aàáâãäåāăąǎǟǡǻȁȃȧḁạảấầẩẫậắằẳẵặ
bḃḅḇ
cçćĉċčḉ
dďḋḍḏḑḓ
eèéêëēĕėęěȅȇȩḕḗḙḛḝẹẻẽếềểễệ
fḟ
 :
etc.
share|improve this answer

It is very unclear what you are asking to do here.

  • There are characters whose canonical decompositions all start with the same base character: e, é, ê, ë, ē, ĕ, ė, ę, ě, ȅ, ȇ, ȩ, ḕ, ḗ, ḙ, ḛ, ḝ, ẹ, ẻ, ẽ, ế, ề, ể, ễ, ệ, e̳, … or s, ś, ŝ, ş, š, ș, ṡ, ṣ, ṥ, ṧ, ṩ, ….

  • There are characters whose compatibility decompositions all include a particular character: ᵉ, ₑ, ℯ, ⅇ, ⒠, ⓔ, ㋍, ㋎, e, … or s, ſ, ˢ, ẛ, ₨, ℁, ⒮, ⓢ, ㎧, ㎨, ㎮, ㎯, ㎰, ㎱, ㎲, ㎳, ㏛, ſt, st, s, … or R, ᴿ, ₨, ℛ, ℜ, ℝ, Ⓡ, ㏚, R, ….

  • There are characters that just happen to look alike in some fonts: ß and β and ϐ, or 3 and Ʒ and Ȝ and ȝ and ʒ and ӡ and ᴣ, or ɣ and ɤ and γ, or F and Ϝ and ϝ, or B and Β and В, or ∅ and ○ and 0 and O and ০ and ੦ and ౦ and ૦, or 1 and l and I and Ⅰ and ᛁ and | and ǀ and ∣, ….

  • Characters that are the same case-insensitively, like s and S and ſ, or ss and Ss and SS and ß and ẞ, ….

  • Characters that all have the same numeric value, like all these for the value 1: 1¹١۱߁१১੧૧୧௧౧౹౼೧൧๑໑༡၁႑፩១៱᠑᥇᧑᧚᪁᪑᭑᮱᱁᱑₁⅟ ① ⑴ ⒈ ⓵ ❶➀➊꘡꣑꤁꧑꩑꯱𐄇𐅂𐅘𐅙𐅚𐌠𐏑𐒡𐡘𐤖𐩀𐩽𐭘𐭸𐹠𒐕𒐞𒐬𒐴𒑏𒑘𝍠𝟏𝟙𝟣𝟭𝟷 🄂 Ⅰⅰꛦ㆒㈠㊀𑁒𑁧.

  • Characters that all have the same primary collation strength, like all these that are the same as d: DdÐðĎďĐđ◌ͩᴰᵈᶞ◌ᷘ◌ᷙḊḋḌḍḎḏḐḑḒḓⅅⅆⅮⅾ Ⓓ ⓓ ꝹꝺDd𝐃𝐝𝐷𝑑𝑫𝒅𝒟𝒹𝓓𝓭𝔇𝔡𝔻𝕕𝕯𝖉𝖣𝖽𝗗𝗱𝘋𝘥𝘿𝙙𝙳𝚍 🄳 🅓 🅳 🇩 . Note that some of those are not accessible through any kind of decomposition, but only through the DUCET/UCA values; for example, the fairly common ð or the newish ꝺ can be equated to d only through a primary UCA strength comparison; same with ƶ and z, ȼ and c, etc.

  • Characters that are same in certain locales, like æ and ae, or ä and ae, or ä and aa, or MacKinley and McKinley, …. Note that locale can make a really big difference, since in some locales both c and ç are the same character while in others they are not; similarly for n and ñ, or a and á and ã, ….

Some of these can be handled. Some cannot. All require different approaches depending on different needs.

What is your real goal?

share|improve this answer
    
+1 to all of it, but mostly "What is your real goal?"! Knowing that is necessary to find the correct approach! –  Joachim Sauer Jan 31 '11 at 8:21

Why not just compare glyphs with something like this?

package similarglyphcharacterdetector;

import java.awt.Color;
import java.awt.Font;
import java.awt.Graphics2D;
import java.awt.Rectangle;
import java.awt.font.FontRenderContext;
import java.awt.image.BufferedImage;
import java.util.HashMap;
import java.util.LinkedHashMap;
import java.util.Map;

public class SimilarGlyphCharacterDetector {

    static char[] TEST_CHARS = "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz1234567890".toCharArray();
    static BufferedImage[] SAMPLES = null;

    public static BufferedImage drawGlyph(Font font, String string) {
        FontRenderContext frc = ((Graphics2D) new BufferedImage(1, 1, BufferedImage.TYPE_BYTE_GRAY).getGraphics()).getFontRenderContext();

        Rectangle r= font.getMaxCharBounds(frc).getBounds();

        BufferedImage res = new BufferedImage(r.width, r.height, BufferedImage.TYPE_BYTE_GRAY);
        Graphics2D g = (Graphics2D) res.getGraphics();
        g.setBackground(Color.WHITE);
        g.fillRect(0, 0, r.width, r.height);
        g.setPaint(Color.BLACK);
        g.setFont(font);
        g.drawString(string, 0, r.height - font.getLineMetrics(string, g.getFontRenderContext()).getDescent());
        return res;
    }

    private static void drawSamples(Font f) {
        SAMPLES = new BufferedImage[TEST_CHARS.length];
        for (int i = 0; i < TEST_CHARS.length; i++)
            SAMPLES[i] = drawGlyph(f, String.valueOf(TEST_CHARS[i]));
    }

    private static int compareImages(BufferedImage img1, BufferedImage img2) {
        if (img1.getWidth() != img2.getWidth() || img1.getHeight() != img2.getHeight())
            throw new IllegalArgumentException();
        int d = 0;
        for (int y = 0; y < img1.getHeight(); y++) {
            for (int x = 0; x < img1.getWidth(); x++) {
                if (img1.getRGB(x, y) != img2.getRGB(x, y))
                    d++;
            }
        }
        return d;
    }

    private static int nearestSampleIndex(BufferedImage image, int maxDistance) {
        int best = Integer.MAX_VALUE;
        int bestIdx = -1;
        for (int i = 0; i < SAMPLES.length; i++) {
            int diff = compareImages(image, SAMPLES[i]);
            if (diff < best) {
                best = diff;
                bestIdx = i;
            }
        }
        if (best > maxDistance)
            return -1;
        return bestIdx;
    }

    public static void main(String[] args) throws Exception {
        Font f = new Font("FreeMono", Font.PLAIN, 13);
        drawSamples(f);
        HashMap<Character, StringBuilder> res = new LinkedHashMap<Character, StringBuilder>();
        for (char c : TEST_CHARS)
            res.put(c, new StringBuilder(String.valueOf(c)));
        int maxDistance = 5;
        for (int i = 0x80; i <= 0xFFFF; i++) {
            char c = (char)i;
            if (f.canDisplay(c)) {
                int n = nearestSampleIndex(drawGlyph(f, String.valueOf(c)), maxDistance);
                if (n != -1) {
                    char nc = TEST_CHARS[n];
                    res.get(nc).append(c);
                }
            }
        }
        for (Map.Entry<Character, StringBuilder> entry : res.entrySet())
            if (entry.getValue().length() > 1)
                System.out.println(entry.getValue());
    }
}

Output:

AÀÁÂÃÄÅĀĂĄǍǞȀȦΆΑΛАѦӒẠẢἈἉᾸᾹᾺᾼ₳Å
BƁƂΒБВЬḂḄḆ
CĆĈĊČƇΓЄГСὉℂⅭ
...
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