| 1 | /* Adler32.java - Computes Adler32 data checksum of a data stream
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| 2 | Copyright (C) 1999, 2000, 2001 Free Software Foundation, Inc.
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| 3 |
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| 4 | This file is part of GNU Classpath.
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| 5 |
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| 6 | GNU Classpath is free software; you can redistribute it and/or modify
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| 7 | it under the terms of the GNU General Public License as published by
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| 8 | the Free Software Foundation; either version 2, or (at your option)
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| 9 | any later version.
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| 10 |
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| 11 | GNU Classpath is distributed in the hope that it will be useful, but
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| 12 | WITHOUT ANY WARRANTY; without even the implied warranty of
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| 13 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
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| 14 | General Public License for more details.
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| 15 |
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| 16 | You should have received a copy of the GNU General Public License
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| 17 | along with GNU Classpath; see the file COPYING. If not, write to the
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| 18 | Free Software Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA
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| 19 | 02111-1307 USA.
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| 20 |
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| 21 | Linking this library statically or dynamically with other modules is
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| 22 | making a combined work based on this library. Thus, the terms and
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| 23 | conditions of the GNU General Public License cover the whole
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| 24 | combination.
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| 25 |
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| 26 | As a special exception, the copyright holders of this library give you
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| 27 | permission to link this library with independent modules to produce an
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| 28 | executable, regardless of the license terms of these independent
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| 29 | modules, and to copy and distribute the resulting executable under
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| 30 | terms of your choice, provided that you also meet, for each linked
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| 31 | independent module, the terms and conditions of the license of that
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| 32 | module. An independent module is a module which is not derived from
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| 33 | or based on this library. If you modify this library, you may extend
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| 34 | this exception to your version of the library, but you are not
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| 35 | obligated to do so. If you do not wish to do so, delete this
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| 36 | exception statement from your version. */
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| 37 |
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| 38 | package java.util.zip;
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| 39 |
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| 40 | /*
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| 41 | * Written using on-line Java Platform 1.2 API Specification, as well
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| 42 | * as "The Java Class Libraries", 2nd edition (Addison-Wesley, 1998).
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| 43 | * The actual Adler32 algorithm is taken from RFC 1950.
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| 44 | * Status: Believed complete and correct.
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| 45 | */
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| 46 |
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| 47 | /**
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| 48 | * Computes Adler32 checksum for a stream of data. An Adler32
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| 49 | * checksum is not as reliable as a CRC32 checksum, but a lot faster to
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| 50 | * compute.
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| 51 | *<p>
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| 52 | * The specification for Adler32 may be found in RFC 1950.
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| 53 | * (ZLIB Compressed Data Format Specification version 3.3)
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| 54 | *<p>
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| 55 | *<p>
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| 56 | * From that document:
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| 57 | *<p>
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| 58 | * "ADLER32 (Adler-32 checksum)
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| 59 | * This contains a checksum value of the uncompressed data
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| 60 | * (excluding any dictionary data) computed according to Adler-32
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| 61 | * algorithm. This algorithm is a 32-bit extension and improvement
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| 62 | * of the Fletcher algorithm, used in the ITU-T X.224 / ISO 8073
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| 63 | * standard.
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| 64 | *<p>
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| 65 | * Adler-32 is composed of two sums accumulated per byte: s1 is
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| 66 | * the sum of all bytes, s2 is the sum of all s1 values. Both sums
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| 67 | * are done modulo 65521. s1 is initialized to 1, s2 to zero. The
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| 68 | * Adler-32 checksum is stored as s2*65536 + s1 in most-
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| 69 | * significant-byte first (network) order."
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| 70 | *<p>
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| 71 | * "8.2. The Adler-32 algorithm
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| 72 | *<p>
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| 73 | * The Adler-32 algorithm is much faster than the CRC32 algorithm yet
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| 74 | * still provides an extremely low probability of undetected errors.
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| 75 | *<p>
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| 76 | * The modulo on unsigned long accumulators can be delayed for 5552
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| 77 | * bytes, so the modulo operation time is negligible. If the bytes
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| 78 | * are a, b, c, the second sum is 3a + 2b + c + 3, and so is position
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| 79 | * and order sensitive, unlike the first sum, which is just a
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| 80 | * checksum. That 65521 is prime is important to avoid a possible
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| 81 | * large class of two-byte errors that leave the check unchanged.
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| 82 | * (The Fletcher checksum uses 255, which is not prime and which also
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| 83 | * makes the Fletcher check insensitive to single byte changes 0 <->
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| 84 | * 255.)
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| 85 | *<p>
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| 86 | * The sum s1 is initialized to 1 instead of zero to make the length
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| 87 | * of the sequence part of s2, so that the length does not have to be
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| 88 | * checked separately. (Any sequence of zeroes has a Fletcher
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| 89 | * checksum of zero.)"
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| 90 | *
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| 91 | * @author John Leuner, Per Bothner
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| 92 | * @since JDK 1.1
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| 93 | *
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| 94 | * @see InflaterInputStream
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| 95 | * @see DeflaterOutputStream
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| 96 | */
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| 97 | public class Adler32 implements Checksum
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| 98 | {
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| 99 |
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| 100 | /** largest prime smaller than 65536 */
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| 101 | private static final int BASE = 65521;
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| 102 |
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| 103 | private int checksum; //we do all in int.
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| 104 |
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| 105 | //Note that java doesn't have unsigned integers,
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| 106 | //so we have to be careful with what arithmetic
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| 107 | //we do. We return the checksum as a long to
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| 108 | //avoid sign confusion.
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| 109 |
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| 110 | /**
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| 111 | * Creates a new instance of the <code>Adler32</code> class.
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| 112 | * The checksum starts off with a value of 1.
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| 113 | */
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| 114 | public Adler32 ()
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| 115 | {
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| 116 | reset();
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| 117 | }
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| 118 |
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| 119 | /**
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| 120 | * Resets the Adler32 checksum to the initial value.
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| 121 | */
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| 122 | public void reset ()
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| 123 | {
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| 124 | checksum = 1; //Initialize to 1
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| 125 | }
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| 126 |
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| 127 | /**
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| 128 | * Updates the checksum with the byte b.
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| 129 | *
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| 130 | * @param bval the data value to add. The high byte of the int is ignored.
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| 131 | */
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| 132 | public void update (int bval)
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| 133 | {
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| 134 | //We could make a length 1 byte array and call update again, but I
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| 135 | //would rather not have that overhead
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| 136 | int s1 = checksum & 0xffff;
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| 137 | int s2 = checksum >>> 16;
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| 138 |
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| 139 | s1 = (s1 + (bval & 0xFF)) % BASE;
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| 140 | s2 = (s1 + s2) % BASE;
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| 141 |
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| 142 | checksum = (s2 << 16) + s1;
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| 143 | }
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| 144 |
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| 145 | /**
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| 146 | * Updates the checksum with the bytes taken from the array.
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| 147 | *
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| 148 | * @param buffer an array of bytes
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| 149 | */
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| 150 | public void update (byte[] buffer)
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| 151 | {
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| 152 | update(buffer, 0, buffer.length);
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| 153 | }
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| 154 |
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| 155 | /**
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| 156 | * Updates the checksum with the bytes taken from the array.
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| 157 | *
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| 158 | * @param buf an array of bytes
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| 159 | * @param off the start of the data used for this update
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| 160 | * @param len the number of bytes to use for this update
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| 161 | */
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| 162 | public void update (byte[] buf, int off, int len)
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| 163 | {
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| 164 | //(By Per Bothner)
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| 165 | int s1 = checksum & 0xffff;
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| 166 | int s2 = checksum >>> 16;
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| 167 |
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| 168 | while (len > 0)
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| 169 | {
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| 170 | // We can defer the modulo operation:
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| 171 | // s1 maximally grows from 65521 to 65521 + 255 * 3800
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| 172 | // s2 maximally grows by 3800 * median(s1) = 2090079800 < 2^31
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| 173 | int n = 3800;
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| 174 | if (n > len)
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| 175 | n = len;
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| 176 | len -= n;
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| 177 | while (--n >= 0)
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| 178 | {
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| 179 | s1 = s1 + (buf[off++] & 0xFF);
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| 180 | s2 = s2 + s1;
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| 181 | }
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| 182 | s1 %= BASE;
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| 183 | s2 %= BASE;
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| 184 | }
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| 185 |
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| 186 | /*Old implementation, borrowed from somewhere:
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| 187 | int n;
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| 188 |
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| 189 | while (len-- > 0) {
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| 190 |
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| 191 | s1 = (s1 + (bs[offset++] & 0xff)) % BASE;
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| 192 | s2 = (s2 + s1) % BASE;
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| 193 | }*/
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| 194 |
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| 195 | checksum = (s2 << 16) | s1;
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| 196 | }
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| 197 |
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| 198 | /**
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| 199 | * Returns the Adler32 data checksum computed so far.
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| 200 | */
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| 201 | public long getValue()
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| 202 | {
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| 203 | return (long) checksum & 0xffffffffL;
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| 204 | }
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| 205 | }
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