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486 lines
19 KiB
C++
486 lines
19 KiB
C++
// root_finding_fith.cpp
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// Copyright Paul A. Bristow 2014.
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// Use, modification and distribution are subject to the
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// Boost Software License, Version 1.0.
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// (See accompanying file LICENSE_1_0.txt
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// or copy at http://www.boost.org/LICENSE_1_0.txt)
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// Example of finding fifth root using Newton-Raphson, Halley, Schroder, TOMS748 .
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// Note that this file contains Quickbook mark-up as well as code
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// and comments, don't change any of the special comment mark-ups!
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// To get (copious!) diagnostic output, add make this define here or elsewhere.
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//#define BOOST_MATH_INSTRUMENT
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//[root_fifth_headers
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/*
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This example demonstrates how to use the Boost.Math tools for root finding,
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taking the fifth root function (fifth_root) as an example.
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It shows how use of derivatives can improve the speed.
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First some includes that will be needed.
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Using statements are provided to list what functions are being used in this example:
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you can of course qualify the names in other ways.
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*/
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#include <boost/math/tools/roots.hpp>
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using boost::math::policies::policy;
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using boost::math::tools::newton_raphson_iterate;
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using boost::math::tools::halley_iterate;
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using boost::math::tools::eps_tolerance; // Binary functor for specified number of bits.
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using boost::math::tools::bracket_and_solve_root;
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using boost::math::tools::toms748_solve;
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#include <boost/math/special_functions/next.hpp>
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#include <tuple>
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#include <utility> // pair, make_pair
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//] [/root_finding_headers]
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#include <iostream>
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using std::cout; using std::endl;
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#include <iomanip>
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using std::setw; using std::setprecision;
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#include <limits>
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using std::numeric_limits;
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/*
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//[root_finding_fifth_1
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Let's suppose we want to find the fifth root of a number.
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The equation we want to solve is:
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__spaces ['f](x) = x[fifth]
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We will first solve this without using any information
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about the slope or curvature of the fifth function.
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If your differentiation is a little rusty
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(or you are faced with an equation whose complexity is daunting,
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then you can get help, for example from the invaluable
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http://www.wolframalpha.com/ site
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entering the commmand
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differentiate x^5
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or the Wolfram Language command
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D[x^5, x]
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gives the output
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d/dx(x^5) = 5 x^4
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and to get the second differential, enter
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second differentiate x^5
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or the Wolfram Language
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D[x^5, {x, 2}]
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to get the output
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d^2/dx^2(x^5) = 20 x^3
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or
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20 x^3
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To get a reference value we can enter
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fifth root 3126
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or
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N[3126^(1/5), 50]
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to get a result with a precision of 50 decimal digits
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5.0003199590478625588206333405631053401128722314376
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(We could also get a reference value using Boost.Multiprecision).
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We then show how adding what we can know, for this function, about the slope,
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the 1st derivation /f'(x)/, will speed homing in on the solution,
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and then finally how adding the curvature /f''(x)/ as well will improve even more.
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The 1st and 2nd derivatives of x[fifth] are:
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__spaces ['f]\'(x) = 2x[sup2]
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__spaces ['f]\'\'(x) = 6x
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*/
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//] [/root_finding_fifth_1]
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//[root_finding_fifth_functor_noderiv
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template <class T>
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struct fifth_functor_noderiv
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{ // fifth root of x using only function - no derivatives.
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fifth_functor_noderiv(T const& to_find_root_of) : value(to_find_root_of)
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{ // Constructor stores value to find root of.
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// For example: calling fifth_functor<T>(x) to get fifth root of x.
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}
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T operator()(T const& x)
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{ //! \returns f(x) - value.
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T fx = x*x*x*x*x - value; // Difference (estimate x^5 - value).
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return fx;
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}
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private:
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T value; // to be 'fifth_rooted'.
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};
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//] [/root_finding_fifth_functor_noderiv]
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//cout << ", std::numeric_limits<" << typeid(T).name() << ">::digits = " << digits
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// << ", accuracy " << get_digits << " bits."<< endl;
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/*`Implementing the fifth root function itself is fairly trivial now:
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the hardest part is finding a good approximation to begin with.
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In this case we'll just divide the exponent by five.
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(There are better but more complex guess algorithms used in 'real-life'.)
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fifth root function is 'Really Well Behaved' in that it is monotonic
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and has only one root
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(we leave negative values 'as an exercise for the student').
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*/
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//[root_finding_fifth_noderiv
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template <class T>
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T fifth_noderiv(T x)
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{ //! \returns fifth root of x using bracket_and_solve (no derivatives).
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using namespace std; // Help ADL of std functions.
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using namespace boost::math::tools; // For bracket_and_solve_root.
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int exponent;
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frexp(x, &exponent); // Get exponent of z (ignore mantissa).
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T guess = ldexp(1., exponent / 5); // Rough guess is to divide the exponent by five.
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T factor = 2; // To multiply and divide guess to bracket.
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// digits used to control how accurate to try to make the result.
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// int digits = 3 * std::numeric_limits<T>::digits / 4; // 3/4 maximum possible binary digits accuracy for type T.
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int digits = std::numeric_limits<T>::digits; // Maximum possible binary digits accuracy for type T.
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//boost::uintmax_t maxit = (std::numeric_limits<boost::uintmax_t>::max)();
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// (std::numeric_limits<boost::uintmax_t>::max)() = 18446744073709551615
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// which is more than anyone might wish to wait for!!!
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// so better to choose some reasonable estimate of how many iterations may be needed.
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const boost::uintmax_t maxit = 50; // Chosen max iterations,
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// but updated on exit with actual iteration count.
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// We could also have used a maximum iterations provided by any policy:
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// boost::uintmax_t max_it = policies::get_max_root_iterations<Policy>();
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boost::uintmax_t it = maxit; // Initally our chosen max iterations,
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bool is_rising = true; // So if result if guess^5 is too low, try increasing guess.
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eps_tolerance<double> tol(digits);
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std::pair<T, T> r =
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bracket_and_solve_root(fifth_functor_noderiv<T>(x), guess, factor, is_rising, tol, it);
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// because the iteration count is updating,
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// you can't call with a literal maximum iterations value thus:
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//bracket_and_solve_root(fifth_functor_noderiv<T>(x), guess, factor, is_rising, tol, 20);
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// Can show how many iterations (this information is lost outside fifth_noderiv).
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cout << "Iterations " << it << endl;
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if (it >= maxit)
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{ // Failed to converge (or is jumping between bracket values).
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cout << "Unable to locate solution in chosen iterations:"
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" Current best guess is between " << r.first << " and " << r.second << endl;
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}
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T distance = float_distance(r.first, r.second);
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if (distance > 0)
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{ //
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std::cout << distance << " bits separate the bracketing values." << std::endl;
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for (int i = 0; i < distance; i++)
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{ // Show all the values within the bracketing values.
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std::cout << float_advance(r.first, i) << std::endl;
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}
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}
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else
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{ // distance == 0 and r.second == r.first
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std::cout << "Converged to a single value " << r.first << std::endl;
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}
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return r.first + (r.second - r.first) / 2; // return midway between bracketed interval.
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} // T fifth_noderiv(T x)
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//] [/root_finding_fifth_noderiv]
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// maxit = 10
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// Unable to locate solution in chosen iterations: Current best guess is between 3.0365889718756613 and 3.0365889718756627
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/*`
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We now solve the same problem, but using more information about the function,
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to show how this can speed up finding the best estimate of the root.
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For this function, the 1st differential (the slope of the tangent to a curve at any point) is known.
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[@http://en.wikipedia.org/wiki/Derivative#Derivatives_of_elementary_functions Derivatives]
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gives some reminders.
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Using the rule that the derivative of x^n for positive n (actually all nonzero n) is nx^n-1,
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allows use to get the 1st differential as 3x^2.
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To see how this extra information is used to find the root, view this demo:
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[@http://en.wikipedia.org/wiki/Newton%27s_methodNewton Newton-Raphson iterations].
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We need to define a different functor that returns
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both the evaluation of the function to solve, along with its first derivative:
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To \'return\' two values, we use a pair of floating-point values:
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*/
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//[root_finding_fifth_functor_1stderiv
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template <class T>
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struct fifth_functor_1stderiv
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{ // Functor returning function and 1st derivative.
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fifth_functor_1stderiv(T const& target) : value(target)
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{ // Constructor stores the value to be 'fifth_rooted'.
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}
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std::pair<T, T> operator()(T const& z) // z is best estimate so far.
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{ // Return both f(x) and first derivative f'(x).
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T fx = z*z*z*z*z - value; // Difference estimate fx = x^5 - value.
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T d1x = 5 * z*z*z*z; // 1st derivative d1x = 5x^4.
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return std::make_pair(fx, d1x); // 'return' both fx and d1x.
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}
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private:
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T value; // to be 'fifth_rooted'.
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}; // fifth_functor_1stderiv
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//] [/root_finding_fifth_functor_1stderiv]
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/*`Our fifth root function using fifth_functor_1stderiv is now:*/
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//[root_finding_fifth_1deriv
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template <class T>
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T fifth_1deriv(T x)
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{ //! \return fifth root of x using 1st derivative and Newton_Raphson.
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using namespace std; // For frexp, ldexp, numeric_limits.
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using namespace boost::math::tools; // For newton_raphson_iterate.
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int exponent;
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frexp(x, &exponent); // Get exponent of x (ignore mantissa).
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T guess = ldexp(1., exponent / 5); // Rough guess is to divide the exponent by three.
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// Set an initial bracket interval.
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T min = ldexp(0.5, exponent / 5); // Minimum possible value is half our guess.
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T max = ldexp(2., exponent / 5);// Maximum possible value is twice our guess.
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// digits used to control how accurate to try to make the result.
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int digits = std::numeric_limits<T>::digits; // Maximum possible binary digits accuracy for type T.
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const boost::uintmax_t maxit = 20; // Optionally limit the number of iterations.
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boost::uintmax_t it = maxit; // limit the number of iterations.
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//cout << "Max Iterations " << maxit << endl; //
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T result = newton_raphson_iterate(fifth_functor_1stderiv<T>(x), guess, min, max, digits, it);
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// Can check and show how many iterations (updated by newton_raphson_iterate).
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cout << it << " iterations (from max of " << maxit << ")" << endl;
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return result;
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} // fifth_1deriv
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//] [/root_finding_fifth_1deriv]
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// int get_digits = (digits * 2) /3; // Two thirds of maximum possible accuracy.
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//boost::uintmax_t maxit = (std::numeric_limits<boost::uintmax_t>::max)();
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// the default (std::numeric_limits<boost::uintmax_t>::max)() = 18446744073709551615
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// which is more than we might wish to wait for!!! so we can reduce it
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/*`
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Finally need to define yet another functor that returns
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both the evaluation of the function to solve,
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along with its first and second derivatives:
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f''(x) = 3 * 3x
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To \'return\' three values, we use a tuple of three floating-point values:
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*/
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//[root_finding_fifth_functor_2deriv
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template <class T>
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struct fifth_functor_2deriv
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{ // Functor returning both 1st and 2nd derivatives.
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fifth_functor_2deriv(T const& to_find_root_of) : value(to_find_root_of)
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{ // Constructor stores value to find root of, for example:
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}
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// using boost::math::tuple; // to return three values.
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std::tuple<T, T, T> operator()(T const& x)
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{ // Return both f(x) and f'(x) and f''(x).
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T fx = x*x*x*x*x - value; // Difference (estimate x^3 - value).
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T dx = 5 * x*x*x*x; // 1st derivative = 5x^4.
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T d2x = 20 * x*x*x; // 2nd derivative = 20 x^3
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return std::make_tuple(fx, dx, d2x); // 'return' fx, dx and d2x.
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}
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private:
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T value; // to be 'fifth_rooted'.
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}; // struct fifth_functor_2deriv
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//] [/root_finding_fifth_functor_2deriv]
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/*`Our fifth function is now:*/
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//[root_finding_fifth_2deriv
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template <class T>
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T fifth_2deriv(T x)
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{ // return fifth root of x using 1st and 2nd derivatives and Halley.
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using namespace std; // Help ADL of std functions.
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using namespace boost::math; // halley_iterate
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int exponent;
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frexp(x, &exponent); // Get exponent of z (ignore mantissa).
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T guess = ldexp(1., exponent / 5); // Rough guess is to divide the exponent by three.
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T min = ldexp(0.5, exponent / 5); // Minimum possible value is half our guess.
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T max = ldexp(2., exponent / 5); // Maximum possible value is twice our guess.
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int digits = std::numeric_limits<T>::digits / 2; // Half maximum possible binary digits accuracy for type T.
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const boost::uintmax_t maxit = 50;
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boost::uintmax_t it = maxit;
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T result = halley_iterate(fifth_functor_2deriv<T>(x), guess, min, max, digits, it);
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// Can show how many iterations (updated by halley_iterate).
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cout << it << " iterations (from max of " << maxit << ")" << endl;
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return result;
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} // fifth_2deriv(x)
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//] [/root_finding_fifth_2deriv]
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int main()
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{
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//[root_finding_example_1
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cout << "fifth Root finding (fifth) Example." << endl;
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// Show all possibly significant decimal digits.
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cout.precision(std::numeric_limits<double>::max_digits10);
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// or use cout.precision(max_digits10 = 2 + std::numeric_limits<double>::digits * 3010/10000);
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try
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{ // Always use try'n'catch blocks with Boost.Math to get any error messages.
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double v27 = 3125; // Example of a value that has an exact integer fifth root.
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// exact value of fifth root is exactly 5.
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std::cout << "Fifth root of " << v27 << " is " << 5 << std::endl;
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double v28 = v27+1; // Example of a value whose fifth root is *not* exactly representable.
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// Value of fifth root is 5.0003199590478625588206333405631053401128722314376 (50 decimal digits precision)
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// and to std::numeric_limits<double>::max_digits10 double precision (usually 17) is
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double root5v2 = static_cast<double>(5.0003199590478625588206333405631053401128722314376);
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std::cout << "Fifth root of " << v28 << " is " << root5v2 << std::endl;
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// Using bracketing:
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double r = fifth_noderiv(v27);
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cout << "fifth_noderiv(" << v27 << ") = " << r << endl;
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r = fifth_noderiv(v28);
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cout << "fifth_noderiv(" << v28 << ") = " << r << endl;
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// Using 1st differential Newton-Raphson:
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r = fifth_1deriv(v27);
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cout << "fifth_1deriv(" << v27 << ") = " << r << endl;
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r = fifth_1deriv(v28);
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cout << "fifth_1deriv(" << v28 << ") = " << r << endl;
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// Using Halley with 1st and 2nd differentials.
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r = fifth_2deriv(v27);
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cout << "fifth_2deriv(" << v27 << ") = " << r << endl;
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r = fifth_2deriv(v28);
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cout << "fifth_2deriv(" << v28 << ") = " << r << endl;
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}
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catch (const std::exception& e)
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{ // Always useful to include try & catch blocks because default policies
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// are to throw exceptions on arguments that cause errors like underflow, overflow.
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// Lacking try & catch blocks, the program will abort without a message below,
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// which may give some helpful clues as to the cause of the exception.
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std::cout <<
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"\n""Message from thrown exception was:\n " << e.what() << std::endl;
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}
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//] [/root_finding_example_1
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return 0;
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} // int main()
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//[root_finding_example_output
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/*`
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Normal output is:
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[pre
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1> Description: Autorun "J:\Cpp\MathToolkit\test\Math_test\Release\root_finding_fifth.exe"
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1> fifth Root finding (fifth) Example.
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1> Fifth root of 3125 is 5
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1> Fifth root of 3126 is 5.0003199590478626
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1> Iterations 10
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1> Converged to a single value 5
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1> fifth_noderiv(3125) = 5
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1> Iterations 11
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1> 2 bits separate the bracketing values.
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1> 5.0003199590478609
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1> 5.0003199590478618
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1> fifth_noderiv(3126) = 5.0003199590478618
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1> 6 iterations (from max of 20)
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1> fifth_1deriv(3125) = 5
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1> 7 iterations (from max of 20)
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1> fifth_1deriv(3126) = 5.0003199590478626
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1> 4 iterations (from max of 50)
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1> fifth_2deriv(3125) = 5
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1> 4 iterations (from max of 50)
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1> fifth_2deriv(3126) = 5.0003199590478626
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[/pre]
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to get some (much!) diagnostic output we can add
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#define BOOST_MATH_INSTRUMENT
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[pre
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1> fifth Root finding (fifth) Example.
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:537 a = 4 b = 8 fa = -2101 fb = 29643 count = 18
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:340 a = 4.264742943548387 b = 8
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:352 a = 4.264742943548387 b = 5.1409225585147951
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:259 a = 4.264742943548387 b = 5.1409225585147951 d = 8 e = 4 fa = -1714.2037505671719 fb = 465.91652114644285 fd = 29643 fe = -2101
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:267 q11 = -3.735257056451613 q21 = -0.045655399937094755 q31 = 0.68893005658139972 d21 = -2.9047328414222999 d31 = -0.18724955838500826
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:275 q22 = -0.15074699539567221 q32 = 0.007740525571111408 d32 = -0.13385363287680208 q33 = 0.074868009790687237 c = 5.0362815354915851
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:388 a = 4.264742943548387 b = 5.0362815354915851
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:259 a = 4.264742943548387 b = 5.0362815354915851 d = 5.1409225585147951 e = 8 fa = -1714.2037505671719 fb = 115.03721886368339 fd = 465.91652114644285 fe = 29643
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:267 q11 = -0.045655399937094755 q21 = -0.034306988726112195 q31 = 0.7230181097615842 d21 = -0.1389480117493222 d31 = -0.048520482181613811
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:275 q22 = -0.00036345624935100459 q32 = 0.011175908093791367 d32 = -0.0030375853617102483 q33 = 0.00014618657296010219 c = 4.999083147976723
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:408 a = 4.999083147976723 b = 5.0362815354915851
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:433 a = 4.999083147976723 b = 5.0008904277935091
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:434 tol = -0.00036152225583956088
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:259 a = 4.999083147976723 b = 5.0008904277935091 d = 5.0362815354915851 e = 4.264742943548387 fa = -2.8641119933622576 fb = 2.7835781082976609 fd = 115.03721886368339 fe = -1714.2037505671719
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:267 q11 = -0.048520482181613811 q21 = -0.00087760104664616457 q31 = 0.00091652546535745522 d21 = -0.036268708744722128 d31 = -0.00089075435142862297
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:275 q22 = -1.9862562616034592e-005 q32 = 3.1952597740788757e-007 d32 = -1.2833778805050512e-005 q33 = 1.1763429980834706e-008 c = 5.0000000047314881
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:388 a = 4.999083147976723 b = 5.0000000047314881
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:259 a = 4.999083147976723 b = 5.0000000047314881 d = 5.0008904277935091 e = 5.0362815354915851 fa = -2.8641119933622576 fb = 1.4785900475544622e-005 fd = 2.7835781082976609 fe = 115.03721886368339
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:267 q11 = -0.00087760104664616457 q21 = -4.7298032238887272e-009 q31 = 0.00091685202154135855 d21 = -0.00089042779182425238 d31 = -4.7332236912279757e-009
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:275 q22 = -1.6486403607318402e-012 q32 = 1.7346209428817704e-012 d32 = -1.6858463963666777e-012 q33 = 9.0382569995250912e-016 c = 5
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1> I:\modular-boost\boost/math/tools/toms748_solve.hpp:592 max_iter = 10 count = 7
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1> Iterations 20
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1> 0 bits separate brackets.
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1> fifth_noderiv(3125) = 5
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]
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*/
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//] [/root_finding_example_output]
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