GNU Octave  3.8.0
A high-level interpreted language, primarily intended for numerical computations, mostly compatible with Matlab
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op-cs-cs.cc
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1 /*
2 
3 Copyright (C) 1996-2013 John W. Eaton
4 
5 This file is part of Octave.
6 
7 Octave is free software; you can redistribute it and/or modify it
8 under the terms of the GNU General Public License as published by the
9 Free Software Foundation; either version 3 of the License, or (at your
10 option) any later version.
11 
12 Octave is distributed in the hope that it will be useful, but WITHOUT
13 ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
14 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
15 for more details.
16 
17 You should have received a copy of the GNU General Public License
18 along with Octave; see the file COPYING. If not, see
19 <http://www.gnu.org/licenses/>.
20 
21 */
22 
23 #ifdef HAVE_CONFIG_H
24 #include <config.h>
25 #endif
26 
27 #include "Array-util.h"
28 
29 #include "gripes.h"
30 #include "oct-obj.h"
31 #include "ov.h"
32 #include "ov-complex.h"
33 #include "ov-cx-mat.h"
34 #include "ov-flt-cx-mat.h"
35 #include "ov-typeinfo.h"
36 #include "ov-null-mat.h"
37 #include "ops.h"
38 #include "xdiv.h"
39 #include "xpow.h"
40 
41 // unary complex scalar ops.
42 
43 DEFUNOP (not, complex)
44 {
46  Complex x = v.complex_value ();
47  if (xisnan (x))
49  return octave_value (x == 0.0);
50 }
51 
52 DEFUNOP_OP (uplus, complex, /* no-op */)
53 DEFUNOP_OP (uminus, complex, -)
54 DEFUNOP_OP (transpose, complex, /* no-op */)
55 
56 DEFUNOP (hermitian, complex)
57 {
59 
60  return octave_value (conj (v.complex_value ()));
61 }
62 
63 DEFNCUNOP_METHOD (incr, complex, increment)
64 DEFNCUNOP_METHOD (decr, complex, decrement)
65 
66 // complex scalar by complex scalar ops.
67 
68 DEFBINOP_OP (add, complex, complex, +)
69 DEFBINOP_OP (sub, complex, complex, -)
70 DEFBINOP_OP (mul, complex, complex, *)
71 
72 DEFBINOP (div, complex, complex)
73 {
75 
77 
78  if (d == 0.0)
80 
81  return octave_value (v1.complex_value () / d);
82 }
83 
84 DEFBINOP_FN (pow, complex, complex, xpow)
85 
86 DEFBINOP (ldiv, complex, complex)
87 {
89 
91 
92  if (d == 0.0)
94 
95  return octave_value (v2.complex_value () / d);
96 }
97 
98 DEFCMPLXCMPOP_OP (lt, complex, complex, <)
99 DEFCMPLXCMPOP_OP (le, complex, complex, <=)
100 DEFCMPLXCMPOP_OP (eq, complex, complex, ==)
101 DEFCMPLXCMPOP_OP (ge, complex, complex, >=)
102 DEFCMPLXCMPOP_OP (gt, complex, complex, >)
103 DEFCMPLXCMPOP_OP (ne, complex, complex, !=)
104 
105 DEFBINOP_OP (el_mul, complex, complex, *)
106 
107 DEFBINOP (el_div, complex, complex)
108 {
110 
111  Complex d = v2.complex_value ();
112 
113  if (d == 0.0)
115 
116  return octave_value (v1.complex_value () / d);
117 }
118 
119 DEFBINOP_FN (el_pow, complex, complex, xpow)
120 
121 DEFBINOP (el_ldiv, complex, complex)
122 {
124 
125  Complex d = v1.complex_value ();
126 
127  if (d == 0.0)
129 
130  return octave_value (v2.complex_value () / d);
131 }
132 
133 DEFBINOP (el_and, complex, complex)
134 {
136 
137  return v1.complex_value () != 0.0 && v2.complex_value () != 0.0;
138 }
139 
140 DEFBINOP (el_or, complex, complex)
141 {
143 
144  return v1.complex_value () != 0.0 || v2.complex_value () != 0.0;
145 }
146 
147 DEFNDCATOP_FN (cs_cs, complex, complex, complex_array, complex_array, concat)
148 
149 CONVDECL (complex_to_float_complex)
150 {
151  CAST_CONV_ARG (const octave_complex&);
152 
154  static_cast<FloatComplex>
155  (v.complex_value ())));
156 }
157 
158 void
160 {
166 
169 
188 
190 
192 
198 
200  complex_to_float_complex);
201 }