根据Neal Krawetz博士的解释,原理非常简单易懂。我们可以用一个快速算法,就达到基本的效果。
这里的关键技术叫做"感知哈希算法"(Perceptual hash algorithm),它的作用是对每张图片生成一个"指纹"(fingerprint)字符串,然后比较不同图片的指纹。结果越接近,就说明图片越相似。
下面是一个最简单的实现:
第一步,缩小尺寸。
将图片缩小到8x8的尺寸,总共64个像素。这一步的作用是去除图片的细节,只保留结构、明暗等基本信息,摒弃不同尺寸、比例带来的图片差异。
第二步,简化色彩。
将缩小后的图片,转为64级灰度。也就是说,所有像素点总共只有64种颜色。
第三步,计算平均值。
计算所有64个像素的灰度平均值。
第四步,比较像素的灰度。
将每个像素的灰度,与平均值进行比较。大于或等于平均值,记为1;小于平均值,记为0。
第五步,计算哈希值。
将上一步的比较结果,组合在一起,就构成了一个64位的整数,这就是这张图片的指纹。组合的次序并不重要,只要保证所有图片都采用同样次序就行了。
= = 8f373714acfcf4d0
得到指纹以后,就可以对比不同的图片,看看64位中有多少位是不一样的。在理论上,这等同于计算"汉明距离"(Hamming distance)。如果不相同的数据位不超过5,就说明两张图片很相似;如果大于10,就说明这是两张不同的图片。
具体的代码实现,可以参见Wote用python语言写的imgHash.py。代码很短,只有53行。使用的时候,第一个参数是基准图片,第二个参数是用来比较的其他图片所在的目录,返回结果是两张图片之间不相同的数据位数量(汉明距离)。
这种算法的优点是简单快速,不受图片大小缩放的影响,缺点是图片的内容不能变更。如果在图片上加几个文字,它就认不出来了。所以,它的最佳用途是根据缩略图,找出原图。
实际应用中,往往采用更强大的pHash算法和SIFT算法,它们能够识别图片的变形。只要变形程度不超过25%,它们就能匹配原图。这些算法虽然更复杂,但是原理与上面的简便算法是一样的,就是先将图片转化成Hash字符串,然后再进行比较。
下面我们来看下上述理论用java来做一个DEMO版的具体实现:
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import java.awt.Graphics2D;import java.awt.color.ColorSpace;import java.awt.image.BufferedImage;import java.awt.image.ColorConvertOp;import java.io.File;import java.io.FileInputStream;import java.io.FileNotFoundException;import java.io.InputStream;import javax.imageio.ImageIO;/** pHash-like image hash.* Author: Elliot Shepherd (elliot@jarofworms.com* Based On: http://www.hackerfactor.com/blog/index.php?/archives/432-Looks-Like-It.html*/public class ImagePHash { private int size = 32; private int smallerSize = 8; public ImagePHash() { initCoefficients(); } public ImagePHash(int size, int smallerSize) { this.size = size; this.smallerSize = smallerSize; initCoefficients(); } public int distance(String s1, String s2) { int counter = 0; for (int k = 0; k < s1.length();k++) { if(s1.charAt(k) != s2.charAt(k)) { counter++; } } return counter; } // Returns a 'binary string' (like. 001010111011100010) which is easy to do a hamming distance on. public String getHash(InputStream is) throws Exception { BufferedImage img = ImageIO.read(is); /* 1. Reduce size. * Like Average Hash, pHash starts with a small image. * However, the image is larger than 8x8; 32x32 is a good size. * This is really done to simplify the DCT computation and not * because it is needed to reduce the high frequencies. */ img = resize(img, size, size); /* 2. Reduce color. * The image is reduced to a grayscale just to further simplify * the number of computations. */ img = grayscale(img); double[][] vals = new double[size][size]; for (int x = 0; x < img.getWidth(); x++) { for (int y = 0; y < img.getHeight(); y++) { vals[x][y] = getBlue(img, x, y); } } /* 3. Compute the DCT. * The DCT separates the image into a collection of frequencies * and scalars. While JPEG uses an 8x8 DCT, this algorithm uses * a 32x32 DCT. */ long start = System.currentTimeMillis(); double[][] dctVals = applyDCT(vals); System.out.println("DCT: " + (System.currentTimeMillis() - start)); /* 4. Reduce the DCT. * This is the magic step. While the DCT is 32x32, just keep the * top-left 8x8. Those represent the lowest frequencies in the * picture. */ /* 5. Compute the average value. * Like the Average Hash, compute the mean DCT value (using only * the 8x8 DCT low-frequency values and excluding the first term * since the DC coefficient can be significantly different from * the other values and will throw off the average). */ double total = 0; for (int x = 0; x < smallerSize; x++) { for (int y = 0; y < smallerSize; y++) { total += dctVals[x][y]; } } total -= dctVals[0][0]; double avg = total / (double) ((smallerSize * smallerSize) - 1); /* 6. Further reduce the DCT. * This is the magic step. Set the 64 hash bits to 0 or 1 * depending on whether each of the 64 DCT values is above or * below the average value. The result doesn't tell us the * actual low frequencies; it just tells us the very-rough * relative scale of the frequencies to the mean. The result * will not vary as long as the overall structure of the image * remains the same; this can survive gamma and color histogram * adjustments without a problem. */ String hash = ""; for (int x = 0; x < smallerSize; x++) { for (int y = 0; y < smallerSize; y++) { if (x != 0 && y != 0) { hash += (dctVals[x][y] > avg?"1":"0"); } } } return hash; } private BufferedImage resize(BufferedImage image, int width, int height) { BufferedImage resizedImage = new BufferedImage(width, height, BufferedImage.TYPE_INT_ARGB); Graphics2D g = resizedImage.createGraphics(); g.drawImage(image, 0, 0, width, height, null); g.dispose(); return resizedImage; } private ColorConvertOp colorConvert = new ColorConvertOp(ColorSpace.getInstance(ColorSpace.CS_GRAY), null); private BufferedImage grayscale(BufferedImage img) { colorConvert.filter(img, img); return img; } private static int getBlue(BufferedImage img, int x, int y) { return (img.getRGB(x, y)) & 0xff; } // DCT function stolen from http://stackoverflow.com/questions/4240490/problems-with-dct-and-idct-algorithm-in-java private double[] c; private void initCoefficients() { c = new double[size]; for (int i=1;i<size;i++) { c[i]=1; } c[0]=1/Math.sqrt(2.0); } private double[][] applyDCT(double[][] f) { int N = size; double[][] F = new double[N][N]; for (int u=0;u<N;u++) { for (int v=0;v<N;v++) { double sum = 0.0; for (int i=0;i<N;i++) { for (int j=0;j<N;j++) { sum+=Math.cos(((2*i+1)/(2.0*N))*u*Math.PI)*Math.cos(((2*j+1)/(2.0*N))*v*Math.PI)*(f[i][j]); } } sum*=((c[u]*c[v])/4.0); F[u][v] = sum; } } return F; } public static void main(String[] args) { ImagePHash p = new ImagePHash(); String image1; String image2; try { image1 = p.getHash(new FileInputStream(new File("C:/Users/june/Desktop/1.jpg"))); image2 = p.getHash(new FileInputStream(new File("C:/Users/june/Desktop/1.jpg"))); System.out.println("1:1 Score is " + p.distance(image1, image2)); image1 = p.getHash(new FileInputStream(new File("C:/Users/june/Desktop/1.jpg"))); image2 = p.getHash(new FileInputStream(new File("C:/Users/june/Desktop/2.jpg"))); System.out.println("1:2 Score is " + p.distance(image1, image2)); image1 = p.getHash(new FileInputStream(new File("C:/Users/june/Desktop/1.jpg"))); image2 = p.getHash(new FileInputStream(new File("C:/Users/june/Desktop/3.jpg"))); System.out.println("1:3 Score is " + p.distance(image1, image2)); image1 = p.getHash(new FileInputStream(new File("C:/Users/june/Desktop/2.jpg"))); image2 = p.getHash(new FileInputStream(new File("C:/Users/june/Desktop/3.jpg"))); System.out.println("2:3 Score is " + p.distance(image1, image2)); image1 = p.getHash(new FileInputStream(new File("C:/Users/june/Desktop/4.jpg"))); image2 = p.getHash(new FileInputStream(new File("C:/Users/june/Desktop/5.jpg"))); System.out.println("4:5 Score is " + p.distance(image1, image2)); } catch (FileNotFoundException e) { e.printStackTrace(); } catch (Exception e) { e.printStackTrace(); } }} |
运行结果为:
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DCT: 163DCT: 1581:1 Score is 0DCT: 168DCT: 1641:2 Score is 4DCT: 156DCT: 1561:3 Score is 3DCT: 157DCT: 1572:3 Score is 1DCT: 157DCT: 1564:5 Score is 21 |
说明:其中1,2,3是3张非常相似的图片,图片分别加了不同的文字水印,肉眼分辨的不是太清楚,下面会有附图,4、5是两张差异很大的图,图你可以随便找来测试,这两张我就不上传了。
结果说明:汉明距离越大表明图片差异越大,如果不相同的数据位不超过5,就说明两张图片很相似;如果大于10,就说明这是两张不同的图片。从结果可以看到1、2、3是相似图片,4、5差异太大,是两张不同的图片。
附:图1、2、3
图1
图2
图3
参考地址:
代码参考:http://pastebin.com/Pj9d8jt5
原理参考:http://www.ruanyifeng.com/blog/2011/07/principle_of_similar_image_search.html
汉明距离:http://baike.baidu.com/view/725269.htm
来自:http://stackoverflow.com/questions/6971966/how-to-measure-percentage-similarity-between-two-images