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| <a name="math_toolkit.complex_implementation"></a><a class="link" href="complex_implementation.html" title="Implementation and Accuracy">Implementation and
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|     Accuracy</a>
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| <p>
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|       Although there are deceptively simple formulae available for all of these functions,
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|       a naive implementation that used these formulae would fail catastrophically
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|       for some input values. The Boost versions of these functions have been implemented
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|       using the methodology described in "Implementing the Complex Arcsine and
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|       Arccosine Functions Using Exception Handling" by T. E. Hull Thomas F.
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|       Fairgrieve and Ping Tak Peter Tang, ACM Transactions on Mathematical Software,
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|       Vol. 23, No. 3, September 1997. This means that the functions are well defined
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|       over the entire complex number range, and produce accurate values even at the
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|       extremes of that range, where as a naive formula would cause overflow or underflow
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|       to occur during the calculation, even though the result is actually a representable
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|       value. The maximum theoretical relative error for all of these functions is
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|       less than 9.5ε for every machine-representable point in the complex plane. Please
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|       refer to comments in the header files themselves and to the above mentioned
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|       paper for more information on the implementation methodology.
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| <td align="right"><div class="copyright-footer">Copyright © 2006-2010, 2012-2014 Nikhar Agrawal,
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|       Anton Bikineev, Paul A. Bristow, Marco Guazzone, Christopher Kormanyos, Hubert
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|       Holin, Bruno Lalande, John Maddock, Jeremy Murphy, Johan Råde, Gautam Sewani,
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|       Benjamin Sobotta, Thijs van den Berg, Daryle Walker and Xiaogang Zhang<p>
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|         Distributed under the Boost Software License, Version 1.0. (See accompanying
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|         file LICENSE_1_0.txt or copy at <a href="http://www.boost.org/LICENSE_1_0.txt" target="_top">http://www.boost.org/LICENSE_1_0.txt</a>)
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