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/*
 * Copyright 2010 Google Inc.
 *
 * Licensed under the Apache License, Version 2.0 (the "License"); you may not
 * use this file except in compliance with the License. You may obtain a copy of
 * the License at
 *
 * http://www.apache.org/licenses/LICENSE-2.0
 *
 * Unless required by applicable law or agreed to in writing, software
 * distributed under the License is distributed on an "AS IS" BASIS, WITHOUT
 * WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. See the
 * License for the specific language governing permissions and limitations under
 * the License.
 */
package com.google.gwt.dev.util.editdistance;

/**
 * A modified version of a string edit distance described by Berghel and
 * Roach that uses only O(d) space and O(n*d) worst-case time, where n is
 * the pattern string length and d is the edit distance computed.
 * We achieve the space reduction by keeping only those sub-computations
 * required to compute edit distance, giving up the ability to
 * reconstruct the edit path.
 */
public class ModifiedBerghelRoachEditDistance implements GeneralEditDistance {
  /*
   * This is a modification of the original Berghel-Roach edit
   * distance (based on prior work by Ukkonen) described in
   *   ACM Transactions on Information Systems, Vol. 14, No. 1,
   *   January 1996, pages 94-106.
   *
   * I observed that only O(d) prior computations are required
   * to compute edit distance.  Rather than keeping all prior
   * f(k,p) results in a matrix, we keep only the two "outer edges"
   * in the triangular computation pattern that will be used in
   * subsequent rounds.  We cannot reconstruct the edit path,
   * but many applications do not require that; for them, this
   * modification uses less space (and empirically, slightly
   * less time).
   *
   * First, some history behind the algorithm necessary to understand
   * Berghel-Roach and our modification...
   *
   * The traditional algorithm for edit distance uses dynamic programming,
   * building a matrix of distances for substrings:
   * D[i,j] holds the distance for string1[0..i]=>string2[0..j].
   * The matrix is initially populated with the trivial values
   * D[0,j]=j and D[i,0]=i; and then expanded with the rule:
   * 
   *    D[i,j] = min( D[i-1,j]+1,       // insertion
   *                  D[i,j-1]+1,       // deletion
   *                  (D[i-1,j-1]
   *                   + (string1[i]==string2[j])
   *                      ? 0           // match
   *                      : 1           // substitution ) )
   * 
* * Ukkonen observed that each diagonal of the matrix must increase * by either 0 or 1 from row to row. If D[i,j] = p, then the * matching rule requires that D[i+x,j+x] = p for all x * where string1[i..i+x) matches string2[j..j+j+x). Ukkonen * defined a function f(k,p) as the highest row number in which p * appears on the k-th diagonal (those D[i,j] where k=(i-j), noting * that k may be negative). The final result of the edit * distance is the D[n,m] cell, on the (n-m) diagonal; it is * the value of p for which f(n-m, p) = m. The function f can * also be computed dynamically, according to a simple recursion: *
   *    f(k,p) {
   *      contains_p = max(f(k-1,p-1), f(k,p-1)+1, f(k+1,p-1)+1)
   *      while (string1[contains_p] == string2[contains_p + k])
   *        contains_p++;
   *      return contains_p;
   *    }
   * 
* The max() expression finds a row where the k-th diagonal must * contain p by virtue of an edit from the prior, same, or following * diagonal (corresponding to an insert, substitute, or delete); * we need not consider more distant diagonals because row-to-row * and column-to-column changes are at most +/- 1. * * The original Ukkonen algorithm computed f(k,p) roughly as * follows: *
   *    for (p = 0; ; p++) {
   *      compute f(k,p) for all valid k
   *      if (f(n-m, p) == m) return p;
   *    }
   * 
* * Berghel and Roach observed that many values of f(k,p) are * computed unnecessarily, and reorganized the computation into * a just-in-time sequence. In each iteration, we are primarily * interested in the terminating value f(main,p), where main=(n-m) * is the main diagonal. To compute that we need f(x,p-1) for * three values of x: main-1, main, and main+1. Those depend on * values for p-2, and so forth. We will already have computed * f(main,p-1) in the prior round, and thus f(main-1,p-2) and * f(main+1,p-2), and so forth. The only new values we need to compute * are on the edges: f(main-i,p-i) and f(main+i,p-i). Noting that * f(k,p) is only meaningful when abs(k) is no greater than p, * one of the Berghel-Roach reviewers noted that we can compute * the bounds for i: *
   *    (main+i &le p-i) implies (i ≤ (p-main)/2)
   * 
* (where main+i is limited on the positive side) and similarly *
   *    (-(main-i) &le p-i) implies (i ≤ (p+main)/2).
   * 
* (where main-i is limited on the negative side). * * This reduces the computation sequence to *
   *   for (i = (p-main)/2; i > 0; i--) compute f(main+i,p-i);
   *   for (i = (p+main)/2; i > 0; i--) compute f(main-i,p-i);
   *   if (f(main, p) == m) return p;
   * 
* * The original Berghel-Roach algorithm recorded prior values * of f(k,p) in a matrix, using O(distance^2) space, enabling * reconstruction of the edit path, but if all we want is the * edit *distance*, we only need to keep O(distance) prior computations. * * The requisite prior k-1, k, and k+1 values are conveniently * computed in the current round and the two preceding it. * For example, on the higher-diagonal side, we compute: *
   *    current[i] = f(main+i, p-i)
   * 
* We keep the two prior rounds of results, where p was one and two * smaller. So, from the preceidng round *
   *    last[i] = f(main+i, (p-1)-i)
   * 
* and from the prior round, but one position back: *
   *    prior[i-1] = f(main+(i-1), (p-2)-(i-1))
   * 
* In the current round, one iteration earlier: *
   *    current[i+1] = f(main+(i+1), p-(i+1))
   * 
* Note that the distance in all of these evaluates to p-i-1, * and the diagonals are (main+i) and its neighbors... just * what we need. The lower-diagonal side behaves similarly. * * We need to materialize values that are not computed in prior * rounds, for either of two reasons:
    *
  • Initially, we have no prior rounds, so we need to fill * all of the "last" and "prior" values for use in the * first round. The first round uses only on one side * of the main diagonal or the other. *
  • In every other round, we compute one more diagonal than before. *
* In all of these cases, the missing f(k,p) values are for abs(k) > p, * where a real value of f(k,p) is undefined. [The original Berghel-Roach * algorithm prefills its F matrix with these values, but we fill * them as we go, as needed.] We define *
   *    f(-p-1,p) = p, so that we start diagonal -p with row p,
   *    f(p+1,p) = -1, so that we start diagonal p with row 0.
   * 
* (We also allow f(p+2,p)=f(-p-2,p)=-1, causing those values to * have no effect in the starting row computation.] * * We only expand the set of diagonals visited every other round, * when (p-main) or (p+main) is even. We keep track of even/oddness * to save some arithmetic. The first round is always even, as p=abs(main). * Note that we rename the "f" function to "computeRow" to be Googley. */ private static final int [] EMPTY_INT_ARRAY = new int[0]; /** * Creates an instance for computing edit distance from {@code pattern}. * @param pattern string from which distances are measured * @return an instance for computing distances from the pattern */ public static ModifiedBerghelRoachEditDistance getInstance(CharSequence pattern) { return getInstance(pattern.toString()); } /** * Creates an instance for computing edit distance from {@code pattern}. * @param pattern string from which distances are measured * @return an instance for computing distances from the pattern */ public static ModifiedBerghelRoachEditDistance getInstance(String pattern) { return new ModifiedBerghelRoachEditDistance(pattern.toCharArray()); } /* * The current and two preceding sets of Ukkonen f(k,p) values for diagonals * around the main, computed by the main loop of {@code getDistance}. These * arrays are retained between calls to save allocation costs. (They are all * initialized to a real array so that we can indiscriminately use length * when ensuring/resizing.) */ private int[] currentLeft = EMPTY_INT_ARRAY; private int[] currentRight = EMPTY_INT_ARRAY; private int[] lastLeft = EMPTY_INT_ARRAY; private int[] lastRight = EMPTY_INT_ARRAY; /** * The "pattern" string against which others are compared. */ private final char[] pattern; private int[] priorLeft = EMPTY_INT_ARRAY; private int[] priorRight = EMPTY_INT_ARRAY; private ModifiedBerghelRoachEditDistance(char[] pattern) { this.pattern = pattern; } @Override public ModifiedBerghelRoachEditDistance duplicate() { return new ModifiedBerghelRoachEditDistance(pattern); } @Override public int getDistance(CharSequence targetSequence, int limit) { final int targetLength = targetSequence.length(); /* * Compute the main diagonal number. * The final result lies on this diagonal. */ final int main = pattern.length - targetLength; /* * Compute our initial distance candidate. * The result cannot be less than the difference in * string lengths, so we start there. */ int distance = Math.abs(main); if (distance > limit) { /* More than we wanted. Give up right away */ return Integer.MAX_VALUE; } /* Snag a copy of the second string for efficiency */ final char[] target = new char[targetLength]; for (int i = 0; i < targetLength; i++) { target[i] = targetSequence.charAt(i); } /* * In the main loop below, the current{Right,Left} arrays record results * from the current outer loop pass. The last{Right,Left} and * prior{Right,Left} arrays hold the results from the preceding two passes. * At the end of the outer loop, we shift them around (reusing the prior * array as the current for the next round, to avoid reallocating). * The Right reflects higher-numbered diagonals, Left lower-numbered. */ /* * Fill in "prior" values for the first two passes through * the distance loop. Note that we will execute only one side of * the main diagonal in these passes, so we only need * initialize one side of prior values. */ if (main <= 0) { ensureCapacityRight(distance, false); for (int j = 0; j <= distance; j++) { lastRight[j] = distance - j - 1; /* Make diagonal -k start in row k */ priorRight[j] = -1; } } else { ensureCapacityLeft(distance, false); for (int j = 0; j <= distance; j++) { lastLeft[j] = -1; /* Make diagonal +k start in row 0 */ priorLeft[j] = -1; } } /* * Keep track of even rounds. Only those rounds consider new diagonals, * and thus only they require artificial "last" values below. */ boolean even = true; /* * MAIN LOOP: try each successive possible distance until one succeeds. */ while (true) { /* * Before calling computeRow(main, distance), we need to fill in * missing cache elements. See the high-level description above. */ /* * Higher-numbered diagonals */ int offDiagonal = (distance - main) / 2; ensureCapacityRight(offDiagonal, true); if (even) { /* Higher diagonals start at row 0 */ lastRight[offDiagonal] = -1; } int immediateRight = -1; for (; offDiagonal > 0; offDiagonal--) { currentRight[offDiagonal] = immediateRight = computeRow( (main + offDiagonal), (distance - offDiagonal), pattern, target, priorRight[offDiagonal - 1], lastRight[offDiagonal], immediateRight); } /* * Lower-numbered diagonals */ offDiagonal = (distance + main) / 2; ensureCapacityLeft(offDiagonal, true); if (even) { /* Lower diagonals, fictitious values for f(-x-1,x) = x */ lastLeft[offDiagonal] = (distance - main) / 2 - 1; } int immediateLeft = even ? -1 : (distance - main) / 2; for (; offDiagonal > 0; offDiagonal--) { currentLeft[offDiagonal] = immediateLeft = computeRow( (main - offDiagonal), (distance - offDiagonal), pattern, target, immediateLeft, lastLeft[offDiagonal], priorLeft[offDiagonal - 1]); } /* * We are done if the main diagonal has distance in the last row. */ int mainRow = computeRow(main, distance, pattern, target, immediateLeft, lastLeft[0], immediateRight); if ((mainRow == targetLength) || (++distance > limit) || (distance < 0)) { break; } /* The [0] element goes to both sides. */ currentLeft[0] = currentRight[0] = mainRow; /* Rotate rows around for next round: current=>last=>prior (=>current) */ int[] tmp = priorLeft; priorLeft = lastLeft; lastLeft = currentLeft; currentLeft = priorLeft; tmp = priorRight; priorRight = lastRight; lastRight = currentRight; currentRight = tmp; /* Update evenness, too */ even = !even; } return distance; } /** * Computes the highest row in which the distance {@code p} appears * in diagonal {@code k} of the edit distance computation for * strings {@code a} and {@code b}. The diagonal number is * represented by the difference in the indices for the two strings; * it can range from {@code -b.length()} through {@code a.length()}. * * More precisely, this computes the highest value x such that *
   *     p = edit-distance(a[0:(x+k)), b[0:x)).
   * 
* * This is the "f" function described by Ukkonen. * * The caller must assure that abs(k) ≤ p, the only values for * which this is well-defined. * * The implementation depends on the cached results of prior * computeRow calls for diagonals k-1, k, and k+1 for distance p-1. * These must be supplied in {@code knownLeft}, {@code knownAbove}, * and {@code knownRight}, respectively. * @param k diagonal number * @param p edit distance * @param a one string to be compared * @param b other string to be compared * @param knownLeft value of {@code computeRow(k-1, p-1, ...)} * @param knownAbove value of {@code computeRow(k, p-1, ...)} * @param knownRight value of {@code computeRow(k+1, p-1, ...)} */ private int computeRow(int k, int p, char[] a, char[] b, int knownLeft, int knownAbove, int knownRight) { assert (Math.abs(k) <= p); assert (p >= 0); /* * Compute our starting point using the recurrance. * That is, find the first row where the desired edit distance * appears in our diagonal. This is at least one past * the highest row for */ int t; if (p == 0) { t = 0; } else { /* * We look at the adjacent diagonals for the next lower edit distance. * We can start in the next row after the prior result from * our own diagonal (the "substitute" case), or the next diagonal * ("delete"), but only the same row as the prior result from * the prior diagonal ("insert"). */ t = Math.max(Math.max(knownAbove, knownRight) + 1, knownLeft); } /* * Look down our diagonal for matches to find the maximum * row with edit-distance p. */ int tmax = Math.min(b.length, (a.length - k)); while ((t < tmax) && b[t] == a[t + k]) { t++; } return t; } /* * Ensures that the Left arrays can be indexed through {@code index}, * inclusively, resizing (and copying) as necessary. */ private void ensureCapacityLeft(int index, boolean copy) { if (currentLeft.length <= index) { index++; priorLeft = resize(priorLeft, index, copy); lastLeft = resize(lastLeft, index, copy); currentLeft = resize(currentLeft, index, false); } } /* * Ensures that the Right arrays can be indexed through {@code index}, * inclusively, resizing (and copying) as necessary. */ private void ensureCapacityRight(int index, boolean copy) { if (currentRight.length <= index) { index++; priorRight = resize(priorRight, index, copy); lastRight = resize(lastRight, index, copy); currentRight = resize(currentRight, index, false); } } /* Resize an array, copying old contents if requested */ private int[] resize(int[] array, int size, boolean copy) { int[] result = new int[size]; if (copy) { System.arraycopy(array, 0, result, 0, array.length); } return result; } }




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