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https://gitlab.isc.org/isc-projects/kea
synced 2025-08-30 21:45:37 +00:00
[#1415] Implmented address range permutation
This commit is contained in:
@@ -64,6 +64,7 @@ CLEANFILES += *.csv
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lib_LTLIBRARIES = libkea-dhcpsrv.la
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libkea_dhcpsrv_la_SOURCES =
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libkea_dhcpsrv_la_SOURCES += address_range.h address_range.cc
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libkea_dhcpsrv_la_SOURCES += address_range_permutation.h address_range_permutation.cc
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libkea_dhcpsrv_la_SOURCES += alloc_engine.cc alloc_engine.h
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libkea_dhcpsrv_la_SOURCES += alloc_engine_log.cc alloc_engine_log.h
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libkea_dhcpsrv_la_SOURCES += alloc_engine_messages.h alloc_engine_messages.cc
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@@ -299,6 +300,8 @@ EXTRA_DIST += database_backends.dox libdhcpsrv.dox
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# Specify the headers for copying into the installation directory tree.
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libkea_dhcpsrv_includedir = $(pkgincludedir)/dhcpsrv
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libkea_dhcpsrv_include_HEADERS = \
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address_range.h \
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address_range_permutation.h \
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alloc_engine.h \
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alloc_engine_log.h \
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alloc_engine_messages.h \
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@@ -342,6 +345,7 @@ libkea_dhcpsrv_include_HEADERS = \
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db_type.h \
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dhcp4o6_ipc.h \
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dhcpsrv_log.h \
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free_lease_queue.h \
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host.h \
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host_container.h \
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host_data_source_factory.h \
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93
src/lib/dhcpsrv/address_range_permutation.cc
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93
src/lib/dhcpsrv/address_range_permutation.cc
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@@ -0,0 +1,93 @@
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// Copyright (C) 2020 Internet Systems Consortium, Inc. ("ISC")
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//
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// This Source Code Form is subject to the terms of the Mozilla Public
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// License, v. 2.0. If a copy of the MPL was not distributed with this
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// file, You can obtain one at http://mozilla.org/MPL/2.0/.
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#include <config.h>
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#include <asiolink/addr_utilities.h>
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#include <dhcpsrv/address_range_permutation.h>
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using namespace isc::asiolink;
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namespace isc {
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namespace dhcp {
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AddressRangePermutation::AddressRangePermutation(const AddressRangePermutation::Range& range)
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: range_(range), cursor_(addrsInRange(range_.start_, range_.end_) - 1),
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state_(), done_(false), generator_() {
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std::random_device rd;
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generator_.seed(rd());
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}
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IOAddress
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AddressRangePermutation::next(bool& done) {
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// If we're done iterating over the pool let's return zero address and
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// set the user supplied done flag to true.
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if (done_) {
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done = true;
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return (range_.start_.isV4() ? IOAddress::IPV4_ZERO_ADDRESS() : IOAddress::IPV6_ZERO_ADDRESS());
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}
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// If there is one address left, return this address.
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if (cursor_ == 0) {
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done = done_ = true;
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return (state_.at(0));
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}
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// We're not done.
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done = false;
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// The cursor indicates where we're in the range starting from its end. The
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// addresses between the cursor and the end of the range have been already
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// returned by this function. Therefore we focus on the remaining cursor-1
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// addresses. Let's get random address from this sub-range.
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std::uniform_int_distribution<int> dist(0, cursor_ - 1);
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auto next_loc = dist(generator_);
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IOAddress next_loc_address = IOAddress::IPV4_ZERO_ADDRESS();
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// Check if whether this address exists in our map or not. If it exists
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// it means it was swapped with some other address in previous calls to
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// this function.
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auto next_loc_existing = state_.find(next_loc);
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if (next_loc_existing != state_.end()) {
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// Address exists, so let's record it.
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next_loc_address = next_loc_existing->second;
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} else {
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// Address does not exist on this position. We infer this address from
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// its position by advancing the range start by position. For example,
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// if the range is 192.0.2.1-192.0.2.10 and the picked random position is
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// 5, the address we get is 192.0.2.6. This random address will be later
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// returned to the caller.
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next_loc_address = offsetAddress(range_.start_, next_loc);
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}
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// Let's get the address at cursor position in the same way.
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IOAddress cursor_address = IOAddress::IPV4_ZERO_ADDRESS();
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auto cursor_existing = state_.find(cursor_);
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if (cursor_existing != state_.end()) {
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cursor_address = cursor_existing->second;
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} else {
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cursor_address = offsetAddress(range_.start_, cursor_);
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}
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// Now we swap them.... in fact we don't swap because as an optimization
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// we don't record the addresses we returned by this function. We merely
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// replace the address at random position with the address from cursor
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// position. This address will be returned in the future if we get back
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// to this position as a result of randomization.
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if (next_loc_existing == state_.end()) {
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state_.insert(std::make_pair(next_loc, cursor_address));
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} else {
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state_.at(next_loc) = cursor_address;
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}
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// Move the cursor one position backwards.
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--cursor_;
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// Return the address from the random position.
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return (next_loc_address);
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}
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} // end of namespace isc::dhcp
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} // end of namespace isc
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119
src/lib/dhcpsrv/address_range_permutation.h
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119
src/lib/dhcpsrv/address_range_permutation.h
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@@ -0,0 +1,119 @@
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// Copyright (C) 2020 Internet Systems Consortium, Inc. ("ISC")
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//
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// This Source Code Form is subject to the terms of the Mozilla Public
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// License, v. 2.0. If a copy of the MPL was not distributed with this
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// file, You can obtain one at http://mozilla.org/MPL/2.0/.
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#ifndef ADDRESS_RANGE_PERMUTATION_H
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#define ADDRESS_RANGE_PERMUTATION_H
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#include <asiolink/io_address.h>
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#include <dhcpsrv/address_range.h>
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#include <map>
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#include <random>
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namespace isc {
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namespace dhcp {
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/// @brief Random IP address permutation based on Fisher-Yates shuffle.
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///
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/// This class is used to shuffle IP addresses within the specified address
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/// range. It is following the Fisher-Yates shuffle algorithm described in
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/// https://en.wikipedia.org/wiki/Fisher–Yates_shuffle.
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///
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/// The original algorithm is modified to keep the minimal information about
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/// the current state of the permutation and relies on the caller to collect
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/// and store the next available value. In other words, the generated and
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/// already returned random values are not stored by this class.
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///
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/// The class assumes that initially the IP addresses in the specified range
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/// are in increasing order. Suppose we're dealing with the following address
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/// range: 192.0.2.1-192.0.2.5. Therefore our addresses are initially ordered
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/// like this: a[0]=192.0.2.1, a[1]=192.0.2.2 ..., a[4]=192.0.2.5. The
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/// algorithm starts from the end of that range, i.e. i=4, so a[i]=192.0.2.5.
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/// A random value from the range of [0..i-1] is picked, i.e. a value from the
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/// range of [0..3]. Let's say it is 1. This value initially corresponds to the
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/// address a[1]=192.0.2.2. In the original algorithm the value of a[1] is
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/// swapped with a[4], yelding the following partial permutation:
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/// 192.0.2.1, 192.0.2.5, 192.0.2.3, 192.0.2.4, 192.0.2.2. In our case, we simply
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/// return the value of 192.0.2.2 to the caller and remember that
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/// a[1]=192.0.2.5. At this point we don't store the values of a[0], a[2] and
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/// a[3] because the corresponding IP addresses can be calculated from the
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/// range start and their index in the permutation. The value of a[1] must be
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/// stored because it has been swapped with a[4] and can't be calculated from
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/// the position index.
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///
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/// In the next step, the current index i (cursor value) is decreased by one.
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/// It now has the value of 3. Again, a random index is picked from the range
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/// of [0..3]. Note that it can be the same or different index than selected
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/// in the previous step. Let's assume it is 0. This corresponds to the address
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/// of 192.0.2.1. This address will be returned to the caller. The value of
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/// a[3]=192.0.2.4 is moved to a[0]. This yelds the following permutation:
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/// 192.0.2.4, 192.0.2.5, 192.0.2.3, 192.0.2.1, 192.0.2.2. However, we only
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/// remember a[0] and a[1]. The a[3] can be still computed from the range
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/// start and the position. The other two have been already returned to the
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/// caller so we forget them.
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///
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/// This algorithm guarantees that all IP addresses beloging to the given
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/// address range are returned and no duplicates are returned. The addresses
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/// are returned in a random order.
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class AddressRangePermutation {
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public:
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/// Address range.
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typedef AddressRange Range;
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/// @brief Constructor.
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///
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/// @param range address range for which the permutation will be generated.
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AddressRangePermutation(const Range& range);
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/// @brief Checks if the address range has been exhausted.
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///
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/// @return false if the algorithm went over all addresses in the
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/// range, true otherwise.
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bool exhausted() const {
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return (done_);
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}
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/// @brief Returns next random address from the permutation.
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///
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/// This method will returns all addresses belonging to the specified
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/// address range in random order. For the first number of calls equal
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/// to the size of the address range it guarantees to return a non-zero
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/// IP address from that range without duplicates.
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///
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/// @param [out] done this parameter is set to true if no more addresses
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/// can be returned for this permutation.
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/// @return next available IP address. It returns IPv4 zero or IPv6 zero
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/// address after this method walked over all available IP addresses in
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/// the range.
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asiolink::IOAddress next(bool& done);
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private:
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/// Address range used in this permutation and specified in the
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/// constructor.
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Range range_;
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/// Keeps the possition of the next address to be swapped with a
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/// randomly picked address from the range of 0..cursor-1. The
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/// cursor value is decreased every time a new IP address is returned.
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uint64_t cursor_;
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/// Keeps the current permutation state. The state associates the
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/// swapped IP addresses with their positions in the permutation.
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std::map<uint64_t, asiolink::IOAddress> state_;
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/// Indicates if the addresses are exhausted.
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bool done_;
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/// Random generator.
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std::mt19937 generator_;
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};
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} // end of namespace isc::dhcp
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} // end of namespace isc
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#endif // ADDRESS_RANGE_PERMUTATION_H
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@@ -58,6 +58,7 @@ TESTS += libdhcpsrv_unittests
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libdhcpsrv_unittests_SOURCES = run_unittests.cc
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libdhcpsrv_unittests_SOURCES += address_range_unittest.cc
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libdhcpsrv_unittests_SOURCES += address_range_permutation_unittest.cc
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libdhcpsrv_unittests_SOURCES += alloc_engine_utils.cc alloc_engine_utils.h
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libdhcpsrv_unittests_SOURCES += alloc_engine_expiration_unittest.cc
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libdhcpsrv_unittests_SOURCES += alloc_engine_hooks_unittest.cc
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95
src/lib/dhcpsrv/tests/address_range_permutation_unittest.cc
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95
src/lib/dhcpsrv/tests/address_range_permutation_unittest.cc
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@@ -0,0 +1,95 @@
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// Copyright (C) 2020 Internet Systems Consortium, Inc. ("ISC")
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//
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// This Source Code Form is subject to the terms of the Mozilla Public
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// License, v. 2.0. If a copy of the MPL was not distributed with this
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// file, You can obtain one at http://mozilla.org/MPL/2.0/.
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#include <config.h>
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#include <dhcpsrv/address_range_permutation.h>
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#include <gtest/gtest.h>
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#include <set>
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using namespace isc;
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using namespace isc::asiolink;
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using namespace isc::dhcp;
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namespace {
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// This test verifies that the object can be successfully constructed for
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// both IPv4 and IPv6 address range.
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TEST(AddressRangePermutationTest, constructor) {
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ASSERT_NO_THROW({
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AddressRangePermutation::Range range(IOAddress("192.0.2.10"), IOAddress("192.0.2.100"));
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AddressRangePermutation perm(range);
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});
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ASSERT_NO_THROW({
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AddressRangePermutation::Range range(IOAddress("3000::"), IOAddress("3000::10"));
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AddressRangePermutation perm(range);
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});
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}
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// This test verifies that a permutation of IPv4 address range can
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// be generated.
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TEST(AddressRangePermutationTest, ipv4) {
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// Create address range with 91 addresses.
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AddressRangePermutation::Range range(IOAddress("192.0.2.10"), IOAddress("192.0.2.100"));
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AddressRangePermutation perm(range);
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// This set will record unique IP addresses generated.
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std::set<IOAddress> addrs;
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bool done = false;
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// Call the next() function 95 tims. The first 91 calls should return non-zero
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// IP addresses.
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for (auto i = 0; i < 95; ++i) {
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auto next = perm.next(done);
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if (!next.isV4Zero()) {
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// Make sure the returned address is within the range.
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EXPECT_LE(range.start_, next);
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EXPECT_LE(next, range.end_);
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} else {
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// The IPv4 zero address marks the end of the permutation. In this case
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// the done flag should be set.
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EXPECT_TRUE(done);
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EXPECT_TRUE(perm.exhausted());
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}
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// Insert the address returned to the set.
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addrs.insert(next);
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}
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// We should have recorded 92 unique addresses, including the zero address.
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EXPECT_EQ(92, addrs.size());
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EXPECT_TRUE(addrs.begin()->isV4Zero());
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}
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// This test verifies that a permutation of IPv4 address range can
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// be generated.
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TEST(AddressRangePermutationTest, ipv6) {
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AddressRangePermutation::Range range(IOAddress("2001:db8:1::1:fea0"),
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IOAddress("2001:db8:1::2:abcd"));
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AddressRangePermutation perm(range);
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std::set<IOAddress> addrs;
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bool done = false;
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for (auto i = 0; i < 44335; ++i) {
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auto next = perm.next(done);
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if (!next.isV6Zero()) {
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// The IPv6 zero address marks the end of the permutation. In this case
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// the done flag should be set.
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EXPECT_LE(range.start_, next);
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EXPECT_LE(next, range.end_);
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} else {
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EXPECT_TRUE(done);
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EXPECT_TRUE(perm.exhausted());
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}
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// Insert the address returned to the set.
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addrs.insert(next);
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}
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// We should have recorded 44335 unique addresses, including the zero address.
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EXPECT_EQ(44335, addrs.size());
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EXPECT_TRUE(addrs.begin()->isV6Zero());
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}
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} // end of anonymous namespace
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