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Allocators themselves are implementation details for now; bitmap reflects better the properties of this allocator Signed-off-by: Anatole Denis <anatole@unverle.fr>
127 lines
4.1 KiB
Go
127 lines
4.1 KiB
Go
// Copyright 2018-present the CoreDHCP Authors. All rights reserved
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// This source code is licensed under the MIT license found in the
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// LICENSE file in the root directory of this source tree.
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// Provides functions to add/subtract ipv6 addresses, for use in offset
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// calculations in allocators
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package allocators
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import (
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"bytes"
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"encoding/binary"
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"errors"
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"math/bits"
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"net"
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)
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// ErrOverflow is returned when arithmetic operations on IPs carry bits
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// over/under the 0th or 128th bit respectively
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var ErrOverflow = errors.New("Operation overflows")
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// Offset returns the absolute distance between addresses `a` and `b` in units
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// of /`prefixLength` subnets.
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// Both addresses will have a /`prefixLength` mask applied to them, any
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// differences of less than that will be discarded
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// If the distance is larger than 2^64 units of /`prefixLength` an error is returned
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//
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// This function is used in allocators to index bitmaps by an offset from the
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// first ip of the range
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func Offset(a, b net.IP, prefixLength int) (uint64, error) {
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if prefixLength > 128 || prefixLength < 0 {
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return 0, errors.New("prefix out of range")
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}
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reverse := bytes.Compare(a, b)
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if reverse == 0 {
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return 0, nil
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} else if reverse < 0 {
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a, b = b, a
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}
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// take an example of [a:b:c:d:e:f:g:h] [1:2:3:4:5:6:7:8]
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// Cut the addresses as such: [a:b:c:d|e:f:g:h] [1:2:3:4|5:6:7:8] so we can use
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// native integers for computation
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ah, bh := binary.BigEndian.Uint64(a[:8]), binary.BigEndian.Uint64(b[:8])
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if prefixLength <= 64 {
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// [(a:b:c):d|e:f:g:h] - [(1:2:3):4|5:6:7:8]
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// Only the high bits matter, so the distance always fits within 64 bits.
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// We shift to remove anything to the right of the cut
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// [(a:b:c):d] => [0:a:b:c]
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return (ah - bh) >> (64 - uint(prefixLength)), nil
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}
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// General case where both high and low bits matter
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al, bl := binary.BigEndian.Uint64(a[8:]), binary.BigEndian.Uint64(b[8:])
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distanceLow, borrow := bits.Sub64(al, bl, 0)
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// This is the distance between the high bits. depending on the prefix unit, we
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// will shift this distance left or right
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distanceHigh, _ := bits.Sub64(ah, bh, borrow) // [a:b:c:d] - [1:2:3:4]
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// [a:b:c:(d|e:f:g):h] - [1:2:3:(4|5:6:7):8]
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// we cut in the low bits (eg. between the parentheses)
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// To ensure we stay within 64 bits, we need to ensure [a:b:c:d] - [1:2:3:4] = [0:0:0:d-4]
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// so that we don't overflow when adding to the low bits
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if distanceHigh >= (1 << (128 - uint(prefixLength))) {
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return 0, ErrOverflow
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}
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// Schema of the carry and shifts:
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// [a:b:c:(d]
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// [e:f:g):h]
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// <---------------> prefixLen
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// <-> 128 - prefixLen (cut right)
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// <-----> prefixLen - 64 (cut left)
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//
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// [a:b:c:(d] => [d:0:0:0]
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distanceHigh <<= uint(prefixLength) - 64
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// [e:f:g):h] => [0:e:f:g]
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distanceLow >>= 128 - uint(prefixLength)
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// [d:0:0:0] + [0:e:f:g] = (d:e:f:g)
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return distanceHigh + distanceLow, nil
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}
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// AddPrefixes returns the `n`th /`unit` subnet after the `ip` base subnet. It
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// is the converse operation of Offset(), used to retrieve a prefix from the
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// index within the allocator table
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func AddPrefixes(ip net.IP, n, unit uint64) (net.IP, error) {
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if unit == 0 && n != 0 {
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return net.IP{}, ErrOverflow
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} else if n == 0 {
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return ip, nil
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}
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if len(ip) != 16 {
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// We don't actually care if they're true v6 or v4-mapped,
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// but they need to be 128-bit to handle as 64-bit ints
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return net.IP{}, errors.New("AddPrefixes needs 128-bit IPs")
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}
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// Compute as pairs of uint64 for easier operations
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// This could all be 1 function call if go had 128-bit integers
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iph, ipl := binary.BigEndian.Uint64(ip[:8]), binary.BigEndian.Uint64(ip[8:])
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// Compute `n` /`unit` subnets as uint64 pair
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var offh, offl uint64
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if unit <= 64 {
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offh = n << (64 - unit)
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} else {
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offh, offl = bits.Mul64(n, 1<<(128-unit))
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}
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// Now add the 2, check for overflow
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ipl, carry := bits.Add64(offl, ipl, 0)
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iph, carry = bits.Add64(offh, iph, carry)
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if carry != 0 {
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return net.IP{}, ErrOverflow
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}
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// Finally convert back to net.IP
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ret := make(net.IP, net.IPv6len)
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binary.BigEndian.PutUint64(ret[:8], iph)
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binary.BigEndian.PutUint64(ret[8:], ipl)
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return ret, nil
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}
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