1 /* Complex square root of __float128 value.
2 Copyright (C) 1997-2012 Free Software Foundation, Inc.
3 This file is part of the GNU C Library.
4 Based on an algorithm by Stephen L. Moshier <moshier@world.std.com>.
5 Contributed by Ulrich Drepper <drepper@cygnus.com>, 1997.
7 The GNU C Library is free software; you can redistribute it and/or
8 modify it under the terms of the GNU Lesser General Public
9 License as published by the Free Software Foundation; either
10 version 2.1 of the License, or (at your option) any later version.
12 The GNU C Library is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
15 Lesser General Public License for more details.
17 You should have received a copy of the GNU Lesser General Public
18 License along with the GNU C Library; if not, see
19 <http://www.gnu.org/licenses/>. */
21 #include "quadmath-imp.h"
29 csqrtq (__complex128 x
)
32 int rcls
= fpclassifyq (__real__ x
);
33 int icls
= fpclassifyq (__imag__ x
);
35 if (__builtin_expect (rcls
<= QUADFP_INFINITE
|| icls
<= QUADFP_INFINITE
, 0))
37 if (icls
== QUADFP_INFINITE
)
39 __real__ res
= HUGE_VALQ
;
40 __imag__ res
= __imag__ x
;
42 else if (rcls
== QUADFP_INFINITE
)
44 if (__real__ x
< 0.0Q
)
46 __real__ res
= icls
== QUADFP_NAN
? nanq ("") : 0;
47 __imag__ res
= copysignq (HUGE_VALQ
, __imag__ x
);
51 __real__ res
= __real__ x
;
52 __imag__ res
= (icls
== QUADFP_NAN
53 ? nanq ("") : copysignq (0.0Q
, __imag__ x
));
58 __real__ res
= nanq ("");
59 __imag__ res
= nanq ("");
64 if (__builtin_expect (icls
== QUADFP_ZERO
, 0))
66 if (__real__ x
< 0.0Q
)
69 __imag__ res
= copysignq (sqrtq (-__real__ x
),
74 __real__ res
= fabsq (sqrtq (__real__ x
));
75 __imag__ res
= copysignq (0.0Q
, __imag__ x
);
78 else if (__builtin_expect (rcls
== QUADFP_ZERO
, 0))
81 if (fabsq (__imag__ x
) >= 2.0Q
* FLT128_MIN
)
82 r
= sqrtq (0.5Q
* fabsq (__imag__ x
));
84 r
= 0.5Q
* sqrtq (2.0Q
* fabsq (__imag__ x
));
87 __imag__ res
= copysignq (r
, __imag__ x
);
94 if (fabsq (__real__ x
) > FLT128_MAX
/ 4.0Q
)
97 __real__ x
= scalbnq (__real__ x
, -2 * scale
);
98 __imag__ x
= scalbnq (__imag__ x
, -2 * scale
);
100 else if (fabsq (__imag__ x
) > FLT128_MAX
/ 4.0Q
)
103 if (fabsq (__real__ x
) >= 4.0Q
* FLT128_MIN
)
104 __real__ x
= scalbnq (__real__ x
, -2 * scale
);
107 __imag__ x
= scalbnq (__imag__ x
, -2 * scale
);
109 else if (fabsq (__real__ x
) < FLT128_MIN
110 && fabsq (__imag__ x
) < FLT128_MIN
)
112 scale
= -(FLT128_MANT_DIG
/ 2);
113 __real__ x
= scalbnq (__real__ x
, -2 * scale
);
114 __imag__ x
= scalbnq (__imag__ x
, -2 * scale
);
117 d
= hypotq (__real__ x
, __imag__ x
);
118 /* Use the identity 2 Re res Im res = Im x
119 to avoid cancellation error in d +/- Re x. */
122 r
= sqrtq (0.5Q
* (d
+ __real__ x
));
123 s
= 0.5Q
* (__imag__ x
/ r
);
127 s
= sqrtq (0.5Q
* (d
- __real__ x
));
128 r
= fabsq (0.5Q
* (__imag__ x
/ s
));
133 r
= scalbnq (r
, scale
);
134 s
= scalbnq (s
, scale
);
138 __imag__ res
= copysignq (s
, __imag__ x
);