mirror of
https://github.com/mfontanini/libtins
synced 2026-01-23 02:35:57 +01:00
455 lines
13 KiB
C++
455 lines
13 KiB
C++
/*
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* Copyright (c) 2016, Matias Fontanini
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* All rights reserved.
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*
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* Redistribution and use in source and binary forms, with or without
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* modification, are permitted provided that the following conditions are
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* met:
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*
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* * Redistributions of source code must retain the above copyright
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* notice, this list of conditions and the following disclaimer.
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* * Redistributions in binary form must reproduce the above
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* copyright notice, this list of conditions and the following disclaimer
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* in the documentation and/or other materials provided with the
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* distribution.
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*
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* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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* "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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* LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
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* A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
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* OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
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* SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
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* LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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* DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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* THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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* (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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* OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*
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*/
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#ifndef TINS_HWADDRESS_H
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#define TINS_HWADDRESS_H
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#include <stdint.h>
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#include <stdexcept>
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#include <iterator>
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#include <algorithm>
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#include <iomanip>
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#include <iostream>
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#include <sstream>
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#include "cxxstd.h"
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namespace Tins {
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/**
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* \class HWAddress
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* \brief Represents a hardware address.
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*
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* This class represents a hardware (MAC) address. It can
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* be constructed from it's string representation and you can
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* iterate over the bytes that compose it.
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*
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* For example:
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*
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* \code
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* // Construct it from a string.
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* HWAddress<6> address("00:01:fa:9e:1a:cd");
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*
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* // Iterate over its bytes.
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* for(auto element : address) {
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* // element will be each of the bytes(\x00, \x01, \xfa, etc)
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* }
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* \endcode
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*/
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template<size_t n, typename Storage = uint8_t>
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class HWAddress {
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public:
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/**
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* \brief The type of the elements stored in the hardware address.
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*
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* This is the same as the template parameter Storage.
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*/
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typedef Storage storage_type;
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/**
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* \brief The random access iterator type.
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*/
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typedef storage_type* iterator;
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/**
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* \brief Const iterator type.
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*/
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typedef const storage_type* const_iterator;
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/**
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* \brief Non-member constant indicating the amount of storage_type
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* elements in this address.
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*/
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static const size_t address_size = n;
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/**
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* \brief The broadcast address.
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*/
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static const HWAddress<n, Storage> broadcast;
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/**
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* \brief Constructor from a const storage_type*.
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*
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* If no pointer or a null pointer is provided, the address is
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* initialized to 00:00:00:00:00:00.
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*
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* This constructor is very usefull when passing zero initialized
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* addresses as arguments to other functions. You can use a
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* literal 0, which will be implicitly converted to the empty address.
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*
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* If a pointer is provided, address_size storage_type elements
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* are copied from the pointer, into the internal address representation.
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*
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* \param ptr The pointer from which to construct this address.
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*/
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HWAddress(const storage_type* ptr = 0) {
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if (ptr) {
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std::copy(ptr, ptr + address_size, buffer_);
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}
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else {
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std::fill(begin(), end(), storage_type());
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}
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}
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/**
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* \brief Constructs an address from a hex-notation address.
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*
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* This constructor will parse strings in the form:
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*
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* "00:01:da:fa:..."
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*
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* And initialize the internal representation accordingly.
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*
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* \param address The hex-notation address to be parsed.
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*/
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HWAddress(const std::string& address) {
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convert(address, buffer_);
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}
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/**
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* \brief Overload provided basically for string literals.
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*
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* This constructor takes a const char array of i elements in
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* hex-notation. \sa HWAddress::HWAddress(const std::string& address)
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*
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* This is mostly used when providing string literals. If this where
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* a const char*, then there would be an ambiguity when providing
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* a null pointer.
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*
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* \param address The array of chars containing the hex-notation
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* cstring to be parsed.
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*/
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template<size_t i>
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HWAddress(const char (&address)[i]) {
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convert(address, buffer_);
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}
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/**
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* \brief Copy construct from a HWAddress of length i.
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*
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* If i is lower or equal than address_size, then i storage_type
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* elements are copied, and the last (n - i) are initialized to
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* the default storage_type value(0 most of the times).
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*
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* If i is larger than address_size, then only the first address_size
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* elements are copied.
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*
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* \param rhs The HWAddress to be constructed from.
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*/
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template<size_t i>
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HWAddress(const HWAddress<i>& rhs) {
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// Fill extra bytes
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std::fill(
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// Copy as most as we can
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std::copy(
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rhs.begin(),
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rhs.begin() + std::min(i, n),
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begin()
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),
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end(),
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0
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);
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}
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/**
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* \brief Retrieves an iterator pointing to the begining of the
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* address.
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*
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* \return iterator.
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*/
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iterator begin() {
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return buffer_;
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}
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/**
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* \brief Retrieves a const iterator pointing to the begining of
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* the address.
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*
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* \return const_iterator.
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*/
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const_iterator begin() const {
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return buffer_;
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}
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/**
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* \brief Retrieves an iterator pointing one-past-the-end of the
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* address.
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*
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* \return iterator.
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*/
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iterator end() {
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return buffer_ + address_size;
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}
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/**
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* \brief Retrieves a const iterator pointing one-past-the-end of
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* the address.
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*
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* \return const_iterator.
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*/
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const_iterator end() const {
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return buffer_ + address_size;
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}
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/**
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* \brief Compares this HWAddress for equality.
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*
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* \param rhs The HWAddress to be compared to.
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*
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* \return bool indicating whether addresses are equal.
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*/
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bool operator==(const HWAddress& rhs) const {
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return std::equal(begin(), end(), rhs.begin());
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}
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/**
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* \brief Compares this HWAddress for in-equality.
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*
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* \param rhs The HWAddress to be compared to.
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*
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* \return bool indicating whether addresses are distinct.
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*/
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bool operator!=(const HWAddress& rhs) const {
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return !(*this == rhs);
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}
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/**
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* \brief Compares this HWAddress for less-than inequality.
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*
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* \param rhs The HWAddress to be compared to.
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*
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* \return bool indicating whether this address is less-than rhs.
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*/
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bool operator<(const HWAddress& rhs) const {
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return std::lexicographical_compare(begin(), end(), rhs.begin(), rhs.end());
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}
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/**
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* \brief Apply a mask to this address
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*
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* \param mask The mask to be applied
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* \return The result of applying the mask to this address
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*/
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HWAddress operator&(const HWAddress& mask) const {
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HWAddress<n> output = *this;
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for (size_t i = 0; i < n; ++i) {
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output[i] = output[i] & mask[i];
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}
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return output;
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}
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/**
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* \brief Retrieves the size of this address.
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*
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* This effectively returns the address_size constant.
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*/
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const size_t size() const {
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return address_size;
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}
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/**
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* \brief Indicates whether this is a broadcast address.
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*/
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bool is_broadcast() const {
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return* this == broadcast;
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}
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/**
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* \brief Indicates whether this is a multicast address.
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*/
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bool is_multicast() const {
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return (*begin() & 0x01);
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}
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/**
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* \brief Indicates whether this is an unicast address.
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*/
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bool is_unicast() const {
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return !is_broadcast() && !is_multicast();
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}
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/**
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* \brief Convert this address to a hex-notation std::string address.
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*
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* \return std::string containing the hex-notation address.
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*/
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std::string to_string() const {
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std::ostringstream oss;
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oss <<* this;
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return oss.str();
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}
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/**
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* \brief Retrieves the i-th storage_type in this address.
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*
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* \param i The element to retrieve.
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*/
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storage_type operator[](size_t i) const {
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return begin()[i];
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}
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/**
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* \brief Retrieves the i-th storage_type in this address.
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*
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* \param i The element to retrieve.
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*/
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storage_type& operator[](size_t i) {
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return begin()[i];
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}
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/**
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* \brief Writes this HWAddress in hex-notation to a std::ostream.
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*
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* \param os The stream in which to write the address.
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* \param addr The parameter to be written.
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* \return std::ostream& pointing to the os parameter.
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*/
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friend std::ostream& operator<<(std::ostream& os, const HWAddress& addr) {
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std::transform(
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addr.begin(),
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addr.end() - 1,
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std::ostream_iterator<std::string>(os, ":"),
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&HWAddress::storage_to_string
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);
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return os << storage_to_string(addr.begin()[HWAddress::address_size - 1]);
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}
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/**
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* \brief Helper function which copies the address into an output
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* iterator.
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*
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* This is the same as:
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*
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* std::copy(begin(), end(), iter);
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*
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* But since some PDUs return a HWAddress<> by value, this function
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* can be used to avoid temporaries.
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*
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* \param output The output iterator in which to store this address.
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* \return OutputIterator pointing to one-past the last position
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* written.
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*/
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template<typename OutputIterator>
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OutputIterator copy(OutputIterator output) const {
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for (const_iterator iter = begin(); iter != end(); ++iter) {
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*output++ = *iter;
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}
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return output;
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}
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private:
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template<typename OutputIterator>
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static void convert(const std::string& hw_addr, OutputIterator output);
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static HWAddress<n> make_broadcast_address() {
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// Build a buffer made of n 0xff bytes
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uint8_t buffer[n];
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for (size_t i = 0; i < n; ++i) {
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buffer[i] = 0xff;
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}
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return HWAddress<n>(buffer);
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}
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static std::string storage_to_string(storage_type element) {
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std::ostringstream oss;
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oss << std::hex;
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if (element < 0x10) {
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oss << '0';
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}
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oss << (unsigned)element;
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return oss.str();
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}
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storage_type buffer_[n];
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};
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template<size_t n, typename Storage>
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template<typename OutputIterator>
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void HWAddress<n, Storage>::convert(const std::string& hw_addr,
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OutputIterator output) {
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unsigned i(0);
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size_t count(0);
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storage_type tmp;
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while (i < hw_addr.size() && count < n) {
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const unsigned end = i+2;
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tmp = storage_type();
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while (i < end) {
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if (hw_addr[i] >= 'a' && hw_addr[i] <= 'f') {
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tmp = (tmp << 4) | (hw_addr[i] - 'a' + 10);
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}
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else if (hw_addr[i] >= 'A' && hw_addr[i] <= 'F') {
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tmp = (tmp << 4) | (hw_addr[i] - 'A' + 10);
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}
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else if (hw_addr[i] >= '0' && hw_addr[i] <= '9') {
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tmp = (tmp << 4) | (hw_addr[i] - '0');
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}
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else if (hw_addr[i] == ':') {
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break;
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}
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else {
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throw std::runtime_error("Invalid byte found");
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}
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i++;
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}
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*(output++) = tmp;
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count++;
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if (i < hw_addr.size()) {
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if (hw_addr[i] == ':') {
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i++;
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}
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else {
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throw std::runtime_error("Invalid separator");
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}
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}
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}
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while (count++ < n) {
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*(output++) = storage_type();
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}
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}
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template<size_t n, typename Storage>
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const HWAddress<n, Storage> HWAddress<n, Storage>::broadcast = make_broadcast_address();
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} // namespace Tins
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#if TINS_IS_CXX11
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namespace std {
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// Specialization of std::hash for HWAddress
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template<size_t n>
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struct hash<Tins::HWAddress<n>> {
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size_t operator()(const Tins::HWAddress<n>& addr) const {
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return std::hash<std::string>()(addr.to_string());
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}
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};
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} // namespace std
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#endif // TINS_IS_CXX11
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#endif // TINS_HWADDRESS_H
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