reverted previous commit and added a comment explaining why CByteArrayFormat should...
[wxWidgets.git] / tests / mbconv / mbconvtest.cpp
1 ///////////////////////////////////////////////////////////////////////////////
2 // Name: tests/mbconv/main.cpp
3 // Purpose: wxMBConv unit test
4 // Author: Vadim Zeitlin, Mike Wetherell, Vince Harron
5 // Created: 14.02.04
6 // RCS-ID: $Id$
7 // Copyright: (c) 2003 TT-Solutions, (c) 2005 Mike Wetherell, Vince Harron
8 ///////////////////////////////////////////////////////////////////////////////
9
10 // ----------------------------------------------------------------------------
11 // headers
12 // ----------------------------------------------------------------------------
13
14 #include "testprec.h"
15
16 #ifdef __BORLANDC__
17 #pragma hdrstop
18 #endif
19
20 #ifndef WX_PRECOMP
21 #include "wx/wx.h"
22 #endif // WX_PRECOMP
23
24 #include "wx/strconv.h"
25 #include "wx/string.h"
26 #include "wx/txtstrm.h"
27 #include "wx/mstream.h"
28
29 #if defined wxHAVE_TCHAR_SUPPORT && !defined HAVE_WCHAR_H
30 #define HAVE_WCHAR_H
31 #endif
32
33 // ----------------------------------------------------------------------------
34 // Some wide character constants. "\uXXXX" escapes aren't supported by old
35 // compilers such as VC++ 5 and g++ 2.95.
36 // ----------------------------------------------------------------------------
37
38 wchar_t u41[] = { 0x41, 0 };
39 wchar_t u7f[] = { 0x7f, 0 };
40
41 wchar_t u80[] = { 0x80, 0 };
42 wchar_t u391[] = { 0x391, 0 };
43 wchar_t u7ff[] = { 0x7ff, 0 };
44
45 wchar_t u800[] = { 0x800, 0 };
46 wchar_t u2620[] = { 0x2620, 0 };
47 wchar_t ufffd[] = { 0xfffd, 0 };
48
49 #if SIZEOF_WCHAR_T == 4
50 wchar_t u10000[] = { 0x10000, 0 };
51 wchar_t u1000a5[] = { 0x1000a5, 0 };
52 wchar_t u10fffd[] = { 0x10fffd, 0 };
53 #else
54 wchar_t u10000[] = { 0xd800, 0xdc00, 0 };
55 wchar_t u1000a5[] = { 0xdbc0, 0xdca5, 0 };
56 wchar_t u10fffd[] = { 0xdbff, 0xdffd, 0 };
57 #endif
58
59 // ----------------------------------------------------------------------------
60 // test class
61 // ----------------------------------------------------------------------------
62
63 class MBConvTestCase : public CppUnit::TestCase
64 {
65 public:
66 MBConvTestCase() { }
67
68 private:
69 CPPUNIT_TEST_SUITE( MBConvTestCase );
70 CPPUNIT_TEST( UTF32LETests );
71 CPPUNIT_TEST( UTF32BETests );
72 CPPUNIT_TEST( WC2CP1250 );
73 CPPUNIT_TEST( UTF7Tests );
74 CPPUNIT_TEST( UTF8Tests );
75 CPPUNIT_TEST( UTF16LETests );
76 CPPUNIT_TEST( UTF16BETests );
77 CPPUNIT_TEST( CP932Tests );
78 CPPUNIT_TEST( CP1252Tests ); // depends on UTF8 Decoder functioning correctly
79 CPPUNIT_TEST( LibcTests );
80 CPPUNIT_TEST( IconvTests );
81 CPPUNIT_TEST( FontmapTests );
82 #ifdef HAVE_WCHAR_H
83 CPPUNIT_TEST( UTF8_41 );
84 CPPUNIT_TEST( UTF8_7f );
85 CPPUNIT_TEST( UTF8_80 );
86 CPPUNIT_TEST( UTF8_c2_7f );
87 CPPUNIT_TEST( UTF8_c2_80 );
88 CPPUNIT_TEST( UTF8_ce_91 );
89 CPPUNIT_TEST( UTF8_df_bf );
90 CPPUNIT_TEST( UTF8_df_c0 );
91 CPPUNIT_TEST( UTF8_e0_a0_7f );
92 CPPUNIT_TEST( UTF8_e0_a0_80 );
93 CPPUNIT_TEST( UTF8_e2_98_a0 );
94 CPPUNIT_TEST( UTF8_ef_bf_bd );
95 CPPUNIT_TEST( UTF8_ef_bf_c0 );
96 CPPUNIT_TEST( UTF8_f0_90_80_7f );
97 CPPUNIT_TEST( UTF8_f0_90_80_80 );
98 CPPUNIT_TEST( UTF8_f4_8f_bf_bd );
99 CPPUNIT_TEST( UTF8PUA_f4_80_82_a5 );
100 CPPUNIT_TEST( UTF8Octal_backslash245 );
101 #endif // HAVE_WCHAR_H
102 CPPUNIT_TEST_SUITE_END();
103
104 void WC2CP1250();
105 void UTF7Tests();
106 void UTF8Tests();
107 void UTF16LETests();
108 void UTF16BETests();
109 void UTF32LETests();
110 void UTF32BETests();
111 void CP932Tests();
112 void CP1252Tests();
113 void LibcTests();
114 void FontmapTests();
115 void IconvTests();
116
117 // verifies that the specified multibyte sequence decodes to the specified wchar_t sequence
118 void TestDecoder(
119 const wchar_t* wideBuffer, // the same character sequence as multiBuffer, encoded as wchar_t
120 size_t wideChars, // the number of wide characters at wideBuffer
121 const char* multiBuffer, // a multibyte encoded character sequence that can be decoded by "converter"
122 size_t multiBytes, // the byte length of the multibyte character sequence that can be decoded by "converter"
123 wxMBConv* converter, // the wxMBConv object that can decode multiBuffer into a wide character sequence
124 int sizeofNull // number of bytes occupied by terminating null in this encoding
125 );
126
127 // verifies that the specified wchar_t sequence encodes to the specified multibyte sequence
128 void TestEncoder(
129 const wchar_t* wideBuffer, // the same character sequence as multiBuffer, encoded as wchar_t
130 size_t wideChars, // the number of wide characters at wideBuffer
131 const char* multiBuffer, // a multibyte encoded character sequence that can be decoded by "converter"
132 size_t multiBytes, // the byte length of the multibyte character sequence that can be decoded by "converter"
133 wxMBConv* converter, // the wxMBConv object that can decode multiBuffer into a wide character sequence
134 int sizeofNull // number of bytes occupied by terminating null in this encoding
135 );
136
137 #if wxUSE_UNICODE && wxUSE_STREAMS
138 // use wxTextInputStream to exercise wxMBConv interface
139 // (this reveals some bugs in certain wxMBConv subclasses)
140 void TestStreamDecoder(
141 const wchar_t* wideBuffer, // the same character sequence as multiBuffer, encoded as wchar_t
142 size_t wideChars, // the number of wide characters at wideBuffer
143 const char* multiBuffer, // a multibyte encoded character sequence that can be decoded by "converter"
144 size_t multiBytes, // the byte length of the multibyte character sequence that can be decoded by "converter"
145 wxMBConv* converter // the wxMBConv object that can decode multiBuffer into a wide character sequence
146 );
147
148 // use wxTextOutputStream to exercise wxMBConv interface
149 // (this reveals some bugs in certain wxMBConv subclasses)
150 void TestStreamEncoder(
151 const wchar_t* wideBuffer, // the same character sequence as multiBuffer, encoded as wchar_t
152 size_t wideChars, // the number of wide characters at wideBuffer
153 const char* multiBuffer, // a multibyte encoded character sequence that can be decoded by "converter"
154 size_t multiBytes, // the byte length of the multibyte character sequence that can be decoded by "converter"
155 wxMBConv* converter // the wxMBConv object that can decode multiBuffer into a wide character sequence
156 );
157 #endif
158
159 // tests the encoding and decoding capability of an wxMBConv object
160 //
161 // decodes the utf-8 bytes into wide characters
162 // encodes the wide characters to compare against input multiBuffer
163 // decodes the multiBuffer to compare against wide characters
164 // decodes the multiBuffer into wide characters
165 void TestCoder(
166 const char* multiBuffer, // a multibyte encoded character sequence that can be decoded by "converter"
167 size_t multiBytes, // the byte length of the multibyte character sequence that can be decoded by "converter"
168 const char* utf8Buffer, // the same character sequence as multiBuffer, encoded as UTF-8
169 size_t utf8Bytes, // the byte length of the UTF-8 encoded character sequence
170 wxMBConv* converter, // the wxMBConv object that can decode multiBuffer into a wide character sequence
171 int sizeofNull // the number of bytes occupied by a terminating null in the converter's encoding
172 );
173
174 #ifdef HAVE_WCHAR_H
175 // UTF-8 tests. Test the first, last and one in the middle for sequences
176 // of each length
177 void UTF8_41() { UTF8("\x41", u41); }
178 void UTF8_7f() { UTF8("\x7f", u7f); }
179 void UTF8_80() { UTF8("\x80", NULL); }
180
181 void UTF8_c2_7f() { UTF8("\xc2\x7f", NULL); }
182 void UTF8_c2_80() { UTF8("\xc2\x80", u80); }
183 void UTF8_ce_91() { UTF8("\xce\x91", u391); }
184 void UTF8_df_bf() { UTF8("\xdf\xbf", u7ff); }
185 void UTF8_df_c0() { UTF8("\xdf\xc0", NULL); }
186
187 void UTF8_e0_a0_7f() { UTF8("\xe0\xa0\x7f", NULL); }
188 void UTF8_e0_a0_80() { UTF8("\xe0\xa0\x80", u800); }
189 void UTF8_e2_98_a0() { UTF8("\xe2\x98\xa0", u2620); }
190 void UTF8_ef_bf_bd() { UTF8("\xef\xbf\xbd", ufffd); }
191 void UTF8_ef_bf_c0() { UTF8("\xef\xbf\xc0", NULL); }
192
193 void UTF8_f0_90_80_7f() { UTF8("\xf0\x90\x80\x7f", NULL); }
194 void UTF8_f0_90_80_80() { UTF8("\xf0\x90\x80\x80", u10000); }
195 void UTF8_f4_8f_bf_bd() { UTF8("\xf4\x8f\xbf\xbd", u10fffd); }
196
197 // test 'escaping the escape characters' for the two escaping schemes
198 void UTF8PUA_f4_80_82_a5() { UTF8PUA("\xf4\x80\x82\xa5", u1000a5); }
199 void UTF8Octal_backslash245() { UTF8Octal("\\245", L"\\245"); }
200
201 // implementation for the utf-8 tests (see comments below)
202 void UTF8(const char *charSequence, const wchar_t *wideSequence);
203 void UTF8PUA(const char *charSequence, const wchar_t *wideSequence);
204 void UTF8Octal(const char *charSequence, const wchar_t *wideSequence);
205 void UTF8(const char *charSequence, const wchar_t *wideSequence, int option);
206 #endif // HAVE_WCHAR_H
207
208 DECLARE_NO_COPY_CLASS(MBConvTestCase)
209 };
210
211 // register in the unnamed registry so that these tests are run by default
212 CPPUNIT_TEST_SUITE_REGISTRATION( MBConvTestCase );
213
214 // also include in it's own registry so that these tests can be run alone
215 CPPUNIT_TEST_SUITE_NAMED_REGISTRATION( MBConvTestCase, "MBConv" );
216
217 void MBConvTestCase::WC2CP1250()
218 {
219 static const struct Data
220 {
221 const wchar_t *wc;
222 const char *cp1250;
223 } data[] =
224 {
225 { L"hello", "hello" }, // test that it works in simplest case
226 { L"\xBD of \xBD is \xBC", NULL }, // this should fail as cp1250 doesn't have 1/2
227 };
228
229 wxCSConv cs1250(wxFONTENCODING_CP1250);
230 for ( size_t n = 0; n < WXSIZEOF(data); n++ )
231 {
232 const Data& d = data[n];
233 if (d.cp1250)
234 {
235 CPPUNIT_ASSERT( strcmp(cs1250.cWC2MB(d.wc), d.cp1250) == 0 );
236 }
237 else
238 {
239 CPPUNIT_ASSERT( (const char*)cs1250.cWC2MB(d.wc) == NULL );
240 }
241 }
242 }
243
244 // Print an unsigned character array as a C unsigned character array.
245 // NB: Please don't remove this function even though it's not used anywhere,
246 // it's very useful when debugging a failed test.
247 wxString CByteArrayFormat( const void* data, size_t len, const wxChar* name )
248 {
249 const unsigned char* bytes = (unsigned char*)data;
250 wxString result;
251
252 result.Printf( _T("const static unsigned char %s[%i] = \n{"), name, (int)len );
253
254 for ( size_t i = 0; i < len; i++ )
255 {
256 if ( i != 0 )
257 {
258 result.append( _T(",") );
259 }
260 if ((i%16)==0)
261 {
262 result.append( _T("\n ") );
263 }
264 wxString byte = wxString::Format( _T("0x%02x"), bytes[i] );
265 result.append(byte);
266 }
267 result.append( _T("\n};\n") );
268 return result;
269 }
270
271 // The following bytes represent the same string, containing Japanese and English
272 // characters, encoded in several different formats.
273
274 // encoded by iconv
275 const static unsigned char welcome_utf7_iconv[84] =
276 {
277 0x57,0x65,0x6c,0x63,0x6f,0x6d,0x65,0x20,0x74,0x6f,0x20,0x6f,0x75,0x72,0x20,0x63,
278 0x79,0x62,0x65,0x72,0x20,0x73,0x70,0x61,0x63,0x65,0x20,0x66,0x6f,0x72,0x63,0x65,
279 0x2e,0x20,0x20,0x2b,0x4d,0x46,0x6b,0x77,0x55,0x49,0x74,0x6d,0x57,0x39,0x38,0x77,
280 0x61,0x35,0x62,0x37,0x69,0x6e,0x45,0x77,0x6b,0x6a,0x42,0x5a,0x4d,0x49,0x73,0x77,
281 0x65,0x7a,0x42,0x47,0x4d,0x45,0x77,0x77,0x52,0x44,0x42,0x45,0x4d,0x47,0x63,0x77,
282 0x57,0x54,0x41,0x43
283 };
284 // encoded by wxWindows (iconv can decode this successfully)
285 const static unsigned char welcome_utf7_wx[109] =
286 {
287 0x57,0x65,0x6c,0x63,0x6f,0x6d,0x65,0x2b,0x41,0x43,0x41,0x2d,0x74,0x6f,0x2b,0x41,
288 0x43,0x41,0x2d,0x6f,0x75,0x72,0x2b,0x41,0x43,0x41,0x2d,0x63,0x79,0x62,0x65,0x72,
289 0x2b,0x41,0x43,0x41,0x2d,0x73,0x70,0x61,0x63,0x65,0x2b,0x41,0x43,0x41,0x2d,0x66,
290 0x6f,0x72,0x63,0x65,0x2e,0x2b,0x41,0x43,0x41,0x41,0x49,0x44,0x42,0x5a,0x4d,0x46,
291 0x43,0x4c,0x5a,0x6c,0x76,0x66,0x4d,0x47,0x75,0x57,0x2b,0x34,0x70,0x78,0x4d,0x4a,
292 0x49,0x77,0x57,0x54,0x43,0x4c,0x4d,0x48,0x73,0x77,0x52,0x6a,0x42,0x4d,0x4d,0x45,
293 0x51,0x77,0x52,0x44,0x42,0x6e,0x4d,0x46,0x6b,0x77,0x41,0x67,0x2d
294 };
295 // encoded by iconv
296 const static unsigned char welcome_utf8[89] =
297 {
298 0x57,0x65,0x6c,0x63,0x6f,0x6d,0x65,0x20,0x74,0x6f,0x20,0x6f,0x75,0x72,0x20,0x63,
299 0x79,0x62,0x65,0x72,0x20,0x73,0x70,0x61,0x63,0x65,0x20,0x66,0x6f,0x72,0x63,0x65,
300 0x2e,0x20,0x20,0xe3,0x81,0x99,0xe3,0x81,0x90,0xe8,0xad,0xa6,0xe5,0xaf,0x9f,0xe3,
301 0x81,0xab,0xe9,0x9b,0xbb,0xe8,0xa9,0xb1,0xe3,0x82,0x92,0xe3,0x81,0x99,0xe3,0x82,
302 0x8b,0xe3,0x81,0xbb,0xe3,0x81,0x86,0xe3,0x81,0x8c,0xe3,0x81,0x84,0xe3,0x81,0x84,
303 0xe3,0x81,0xa7,0xe3,0x81,0x99,0xe3,0x80,0x82
304 };
305 // encoded by iconv
306 const static unsigned char welcome_utf16le[106] =
307 {
308 0x57,0x00,0x65,0x00,0x6c,0x00,0x63,0x00,0x6f,0x00,0x6d,0x00,0x65,0x00,0x20,0x00,
309 0x74,0x00,0x6f,0x00,0x20,0x00,0x6f,0x00,0x75,0x00,0x72,0x00,0x20,0x00,0x63,0x00,
310 0x79,0x00,0x62,0x00,0x65,0x00,0x72,0x00,0x20,0x00,0x73,0x00,0x70,0x00,0x61,0x00,
311 0x63,0x00,0x65,0x00,0x20,0x00,0x66,0x00,0x6f,0x00,0x72,0x00,0x63,0x00,0x65,0x00,
312 0x2e,0x00,0x20,0x00,0x20,0x00,0x59,0x30,0x50,0x30,0x66,0x8b,0xdf,0x5b,0x6b,0x30,
313 0xfb,0x96,0x71,0x8a,0x92,0x30,0x59,0x30,0x8b,0x30,0x7b,0x30,0x46,0x30,0x4c,0x30,
314 0x44,0x30,0x44,0x30,0x67,0x30,0x59,0x30,0x02,0x30
315 };
316 // encoded by iconv
317 const static unsigned char welcome_utf16be[106] =
318 {
319 0x00,0x57,0x00,0x65,0x00,0x6c,0x00,0x63,0x00,0x6f,0x00,0x6d,0x00,0x65,0x00,0x20,
320 0x00,0x74,0x00,0x6f,0x00,0x20,0x00,0x6f,0x00,0x75,0x00,0x72,0x00,0x20,0x00,0x63,
321 0x00,0x79,0x00,0x62,0x00,0x65,0x00,0x72,0x00,0x20,0x00,0x73,0x00,0x70,0x00,0x61,
322 0x00,0x63,0x00,0x65,0x00,0x20,0x00,0x66,0x00,0x6f,0x00,0x72,0x00,0x63,0x00,0x65,
323 0x00,0x2e,0x00,0x20,0x00,0x20,0x30,0x59,0x30,0x50,0x8b,0x66,0x5b,0xdf,0x30,0x6b,
324 0x96,0xfb,0x8a,0x71,0x30,0x92,0x30,0x59,0x30,0x8b,0x30,0x7b,0x30,0x46,0x30,0x4c,
325 0x30,0x44,0x30,0x44,0x30,0x67,0x30,0x59,0x30,0x02
326 };
327 // encoded by iconv
328 const static unsigned char welcome_utf32le[212] =
329 {
330 0x57,0x00,0x00,0x00,0x65,0x00,0x00,0x00,0x6c,0x00,0x00,0x00,0x63,0x00,0x00,0x00,
331 0x6f,0x00,0x00,0x00,0x6d,0x00,0x00,0x00,0x65,0x00,0x00,0x00,0x20,0x00,0x00,0x00,
332 0x74,0x00,0x00,0x00,0x6f,0x00,0x00,0x00,0x20,0x00,0x00,0x00,0x6f,0x00,0x00,0x00,
333 0x75,0x00,0x00,0x00,0x72,0x00,0x00,0x00,0x20,0x00,0x00,0x00,0x63,0x00,0x00,0x00,
334 0x79,0x00,0x00,0x00,0x62,0x00,0x00,0x00,0x65,0x00,0x00,0x00,0x72,0x00,0x00,0x00,
335 0x20,0x00,0x00,0x00,0x73,0x00,0x00,0x00,0x70,0x00,0x00,0x00,0x61,0x00,0x00,0x00,
336 0x63,0x00,0x00,0x00,0x65,0x00,0x00,0x00,0x20,0x00,0x00,0x00,0x66,0x00,0x00,0x00,
337 0x6f,0x00,0x00,0x00,0x72,0x00,0x00,0x00,0x63,0x00,0x00,0x00,0x65,0x00,0x00,0x00,
338 0x2e,0x00,0x00,0x00,0x20,0x00,0x00,0x00,0x20,0x00,0x00,0x00,0x59,0x30,0x00,0x00,
339 0x50,0x30,0x00,0x00,0x66,0x8b,0x00,0x00,0xdf,0x5b,0x00,0x00,0x6b,0x30,0x00,0x00,
340 0xfb,0x96,0x00,0x00,0x71,0x8a,0x00,0x00,0x92,0x30,0x00,0x00,0x59,0x30,0x00,0x00,
341 0x8b,0x30,0x00,0x00,0x7b,0x30,0x00,0x00,0x46,0x30,0x00,0x00,0x4c,0x30,0x00,0x00,
342 0x44,0x30,0x00,0x00,0x44,0x30,0x00,0x00,0x67,0x30,0x00,0x00,0x59,0x30,0x00,0x00,
343 0x02,0x30,0x00,0x00
344 };
345 // encoded by iconv
346 const static unsigned char welcome_utf32be[212] =
347 {
348 0x00,0x00,0x00,0x57,0x00,0x00,0x00,0x65,0x00,0x00,0x00,0x6c,0x00,0x00,0x00,0x63,
349 0x00,0x00,0x00,0x6f,0x00,0x00,0x00,0x6d,0x00,0x00,0x00,0x65,0x00,0x00,0x00,0x20,
350 0x00,0x00,0x00,0x74,0x00,0x00,0x00,0x6f,0x00,0x00,0x00,0x20,0x00,0x00,0x00,0x6f,
351 0x00,0x00,0x00,0x75,0x00,0x00,0x00,0x72,0x00,0x00,0x00,0x20,0x00,0x00,0x00,0x63,
352 0x00,0x00,0x00,0x79,0x00,0x00,0x00,0x62,0x00,0x00,0x00,0x65,0x00,0x00,0x00,0x72,
353 0x00,0x00,0x00,0x20,0x00,0x00,0x00,0x73,0x00,0x00,0x00,0x70,0x00,0x00,0x00,0x61,
354 0x00,0x00,0x00,0x63,0x00,0x00,0x00,0x65,0x00,0x00,0x00,0x20,0x00,0x00,0x00,0x66,
355 0x00,0x00,0x00,0x6f,0x00,0x00,0x00,0x72,0x00,0x00,0x00,0x63,0x00,0x00,0x00,0x65,
356 0x00,0x00,0x00,0x2e,0x00,0x00,0x00,0x20,0x00,0x00,0x00,0x20,0x00,0x00,0x30,0x59,
357 0x00,0x00,0x30,0x50,0x00,0x00,0x8b,0x66,0x00,0x00,0x5b,0xdf,0x00,0x00,0x30,0x6b,
358 0x00,0x00,0x96,0xfb,0x00,0x00,0x8a,0x71,0x00,0x00,0x30,0x92,0x00,0x00,0x30,0x59,
359 0x00,0x00,0x30,0x8b,0x00,0x00,0x30,0x7b,0x00,0x00,0x30,0x46,0x00,0x00,0x30,0x4c,
360 0x00,0x00,0x30,0x44,0x00,0x00,0x30,0x44,0x00,0x00,0x30,0x67,0x00,0x00,0x30,0x59,
361 0x00,0x00,0x30,0x02
362 };
363 // encoded by iconv
364 const static unsigned char welcome_cp932[71] =
365 {
366 0x57,0x65,0x6c,0x63,0x6f,0x6d,0x65,0x20,0x74,0x6f,0x20,0x6f,0x75,0x72,0x20,0x63,
367 0x79,0x62,0x65,0x72,0x20,0x73,0x70,0x61,0x63,0x65,0x20,0x66,0x6f,0x72,0x63,0x65,
368 0x2e,0x20,0x20,0x82,0xb7,0x82,0xae,0x8c,0x78,0x8e,0x40,0x82,0xc9,0x93,0x64,0x98,
369 0x62,0x82,0xf0,0x82,0xb7,0x82,0xe9,0x82,0xd9,0x82,0xa4,0x82,0xaa,0x82,0xa2,0x82,
370 0xa2,0x82,0xc5,0x82,0xb7,0x81,0x42
371 };
372
373 #if wxBYTE_ORDER == wxBIG_ENDIAN
374 #if SIZEOF_WCHAR_T == 2
375 #define welcome_wchar_t welcome_utf16be
376 #elif SIZEOF_WCHAR_T == 4
377 #define welcome_wchar_t welcome_utf32be
378 #endif
379 #elif wxBYTE_ORDER == wxLITTLE_ENDIAN
380 #if SIZEOF_WCHAR_T == 2
381 #define welcome_wchar_t welcome_utf16le
382 #elif SIZEOF_WCHAR_T == 4
383 #define welcome_wchar_t welcome_utf32le
384 #endif
385 #endif
386
387 void MBConvTestCase::UTF7Tests()
388 {
389 TestDecoder
390 (
391 (const wchar_t*)welcome_wchar_t,
392 sizeof(welcome_wchar_t)/sizeof(wchar_t),
393 (const char*)welcome_utf7_iconv,
394 sizeof(welcome_utf7_iconv),
395 &wxConvUTF7,
396 1
397 );
398 TestDecoder
399 (
400 (const wchar_t*)welcome_wchar_t,
401 sizeof(welcome_wchar_t)/sizeof(wchar_t),
402 (const char*)welcome_utf7_wx,
403 sizeof(welcome_utf7_wx),
404 &wxConvUTF7,
405 1
406 );
407 #if 0
408 // wxWidget's UTF-7 encoder generates different byte sequences than iconv's.
409 // but both seem to be equally legal.
410 // This test won't work and that's okay.
411 TestEncoder
412 (
413 (const wchar_t*)welcome_wchar_t,
414 sizeof(welcome_wchar_t)/sizeof(wchar_t),
415 (const char*)welcome_utf7_iconv,
416 sizeof(welcome_utf7_iconv),
417 &wxConvUTF7,
418 1
419 );
420 #endif
421 TestEncoder
422 (
423 (const wchar_t*)welcome_wchar_t,
424 sizeof(welcome_wchar_t)/sizeof(wchar_t),
425 (const char*)welcome_utf7_wx,
426 sizeof(welcome_utf7_wx),
427 &wxConvUTF7,
428 1
429 );
430 }
431
432 void MBConvTestCase::UTF8Tests()
433 {
434 TestDecoder
435 (
436 (const wchar_t*)welcome_wchar_t,
437 sizeof(welcome_wchar_t)/sizeof(wchar_t),
438 (const char*)welcome_utf8,
439 sizeof(welcome_utf8),
440 &wxConvUTF8,
441 1
442 );
443 TestEncoder
444 (
445 (const wchar_t*)welcome_wchar_t,
446 sizeof(welcome_wchar_t)/sizeof(wchar_t),
447 (const char*)welcome_utf8,
448 sizeof(welcome_utf8),
449 &wxConvUTF8,
450 1
451 );
452 }
453
454 void MBConvTestCase::UTF16LETests()
455 {
456 wxMBConvUTF16LE convUTF16LE;
457 TestDecoder
458 (
459 (const wchar_t*)welcome_wchar_t,
460 sizeof(welcome_wchar_t)/sizeof(wchar_t),
461 (const char*)welcome_utf16le,
462 sizeof(welcome_utf16le),
463 &convUTF16LE,
464 2
465 );
466 TestEncoder
467 (
468 (const wchar_t*)welcome_wchar_t,
469 sizeof(welcome_wchar_t)/sizeof(wchar_t),
470 (const char*)welcome_utf16le,
471 sizeof(welcome_utf16le),
472 &convUTF16LE,
473 2
474 );
475 }
476
477 void MBConvTestCase::UTF16BETests()
478 {
479 wxMBConvUTF16BE convUTF16BE;
480 TestDecoder
481 (
482 (const wchar_t*)welcome_wchar_t,
483 sizeof(welcome_wchar_t)/sizeof(wchar_t),
484 (const char*)welcome_utf16be,
485 sizeof(welcome_utf16be),
486 &convUTF16BE,
487 2
488 );
489 TestEncoder
490 (
491 (const wchar_t*)welcome_wchar_t,
492 sizeof(welcome_wchar_t)/sizeof(wchar_t),
493 (const char*)welcome_utf16be,
494 sizeof(welcome_utf16be),
495 &convUTF16BE,
496 2
497 );
498 }
499
500 void MBConvTestCase::UTF32LETests()
501 {
502 wxMBConvUTF32LE convUTF32LE;
503 TestDecoder
504 (
505 (const wchar_t*)welcome_wchar_t,
506 sizeof(welcome_wchar_t)/sizeof(wchar_t),
507 (const char*)welcome_utf32le,
508 sizeof(welcome_utf32le),
509 &convUTF32LE,
510 4
511 );
512 TestEncoder
513 (
514 (const wchar_t*)welcome_wchar_t,
515 sizeof(welcome_wchar_t)/sizeof(wchar_t),
516 (const char*)welcome_utf32le,
517 sizeof(welcome_utf32le),
518 &convUTF32LE,
519 4
520 );
521 }
522
523 void MBConvTestCase::UTF32BETests()
524 {
525 wxMBConvUTF32BE convUTF32BE;
526 TestDecoder
527 (
528 (const wchar_t*)welcome_wchar_t,
529 sizeof(welcome_wchar_t)/sizeof(wchar_t),
530 (const char*)welcome_utf32be,
531 sizeof(welcome_utf32be),
532 &convUTF32BE,
533 4
534 );
535 TestEncoder
536 (
537 (const wchar_t*)welcome_wchar_t,
538 sizeof(welcome_wchar_t)/sizeof(wchar_t),
539 (const char*)welcome_utf32be,
540 sizeof(welcome_utf32be),
541 &convUTF32BE,
542 4
543 );
544 }
545
546 void MBConvTestCase::CP932Tests()
547 {
548 wxCSConv convCP932( wxFONTENCODING_CP932 );
549 TestDecoder
550 (
551 (const wchar_t*)welcome_wchar_t,
552 sizeof(welcome_wchar_t)/sizeof(wchar_t),
553 (const char*)welcome_cp932,
554 sizeof(welcome_cp932),
555 &convCP932,
556 1
557 );
558 TestEncoder
559 (
560 (const wchar_t*)welcome_wchar_t,
561 sizeof(welcome_wchar_t)/sizeof(wchar_t),
562 (const char*)welcome_cp932,
563 sizeof(welcome_cp932),
564 &convCP932,
565 1
566 );
567 }
568
569 // a character sequence encoded as iso8859-1 (iconv)
570 static const unsigned char iso8859_1[251] =
571 {
572 0x05,0x06,0x07,0x08,0x09,0x0a,0x0b,0x0c,0x0d,0x0e,0x0f,0x10,0x11,0x12,0x13,0x14,
573 0x15,0x16,0x17,0x18,0x19,0x1a,0x1b,0x1c,0x1d,0x1e,0x1f,0x20,0x21,0x22,0x23,0x24,
574 0x25,0x26,0x27,0x28,0x29,0x2a,0x2b,0x2c,0x2d,0x2e,0x2f,0x30,0x31,0x32,0x33,0x34,
575 0x35,0x36,0x37,0x38,0x39,0x3a,0x3b,0x3c,0x3d,0x3e,0x3f,0x40,0x41,0x42,0x43,0x44,
576 0x45,0x46,0x47,0x48,0x49,0x4a,0x4b,0x4c,0x4d,0x4e,0x4f,0x50,0x51,0x52,0x53,0x54,
577 0x55,0x56,0x57,0x58,0x59,0x5a,0x5b,0x5c,0x5d,0x5e,0x5f,0x60,0x61,0x62,0x63,0x64,
578 0x65,0x66,0x67,0x68,0x69,0x6a,0x6b,0x6c,0x6d,0x6e,0x6f,0x70,0x71,0x72,0x73,0x74,
579 0x75,0x76,0x77,0x78,0x79,0x7a,0x7b,0x7c,0x7d,0x7e,0x7f,0x80,0x81,0x82,0x83,0x84,
580 0x85,0x86,0x87,0x88,0x89,0x8a,0x8b,0x8c,0x8d,0x8e,0x8f,0x90,0x91,0x92,0x93,0x94,
581 0x95,0x96,0x97,0x98,0x99,0x9a,0x9b,0x9c,0x9d,0x9e,0x9f,0xa0,0xa1,0xa2,0xa3,0xa4,
582 0xa5,0xa6,0xa7,0xa8,0xa9,0xaa,0xab,0xac,0xad,0xae,0xaf,0xb0,0xb1,0xb2,0xb3,0xb4,
583 0xb5,0xb6,0xb7,0xb8,0xb9,0xba,0xbb,0xbc,0xbd,0xbe,0xbf,0xc0,0xc1,0xc2,0xc3,0xc4,
584 0xc5,0xc6,0xc7,0xc8,0xc9,0xca,0xcb,0xcc,0xcd,0xce,0xcf,0xd0,0xd1,0xd2,0xd3,0xd4,
585 0xd5,0xd6,0xd7,0xd8,0xd9,0xda,0xdb,0xdc,0xdd,0xde,0xdf,0xe0,0xe1,0xe2,0xe3,0xe4,
586 0xe5,0xe6,0xe7,0xe8,0xe9,0xea,0xeb,0xec,0xed,0xee,0xef,0xf0,0xf1,0xf2,0xf3,0xf4,
587 0xf5,0xf6,0xf7,0xf8,0xf9,0xfa,0xfb,0xfc,0xfd,0xfe,0xff
588 };
589 // the above character sequence encoded as UTF-8 (iconv)
590 static const unsigned char iso8859_1_utf8[379] =
591 {
592 0x05,0x06,0x07,0x08,0x09,0x0a,0x0b,0x0c,0x0d,0x0e,0x0f,0x10,0x11,0x12,0x13,0x14,
593 0x15,0x16,0x17,0x18,0x19,0x1a,0x1b,0x1c,0x1d,0x1e,0x1f,0x20,0x21,0x22,0x23,0x24,
594 0x25,0x26,0x27,0x28,0x29,0x2a,0x2b,0x2c,0x2d,0x2e,0x2f,0x30,0x31,0x32,0x33,0x34,
595 0x35,0x36,0x37,0x38,0x39,0x3a,0x3b,0x3c,0x3d,0x3e,0x3f,0x40,0x41,0x42,0x43,0x44,
596 0x45,0x46,0x47,0x48,0x49,0x4a,0x4b,0x4c,0x4d,0x4e,0x4f,0x50,0x51,0x52,0x53,0x54,
597 0x55,0x56,0x57,0x58,0x59,0x5a,0x5b,0x5c,0x5d,0x5e,0x5f,0x60,0x61,0x62,0x63,0x64,
598 0x65,0x66,0x67,0x68,0x69,0x6a,0x6b,0x6c,0x6d,0x6e,0x6f,0x70,0x71,0x72,0x73,0x74,
599 0x75,0x76,0x77,0x78,0x79,0x7a,0x7b,0x7c,0x7d,0x7e,0x7f,0xc2,0x80,0xc2,0x81,0xc2,
600 0x82,0xc2,0x83,0xc2,0x84,0xc2,0x85,0xc2,0x86,0xc2,0x87,0xc2,0x88,0xc2,0x89,0xc2,
601 0x8a,0xc2,0x8b,0xc2,0x8c,0xc2,0x8d,0xc2,0x8e,0xc2,0x8f,0xc2,0x90,0xc2,0x91,0xc2,
602 0x92,0xc2,0x93,0xc2,0x94,0xc2,0x95,0xc2,0x96,0xc2,0x97,0xc2,0x98,0xc2,0x99,0xc2,
603 0x9a,0xc2,0x9b,0xc2,0x9c,0xc2,0x9d,0xc2,0x9e,0xc2,0x9f,0xc2,0xa0,0xc2,0xa1,0xc2,
604 0xa2,0xc2,0xa3,0xc2,0xa4,0xc2,0xa5,0xc2,0xa6,0xc2,0xa7,0xc2,0xa8,0xc2,0xa9,0xc2,
605 0xaa,0xc2,0xab,0xc2,0xac,0xc2,0xad,0xc2,0xae,0xc2,0xaf,0xc2,0xb0,0xc2,0xb1,0xc2,
606 0xb2,0xc2,0xb3,0xc2,0xb4,0xc2,0xb5,0xc2,0xb6,0xc2,0xb7,0xc2,0xb8,0xc2,0xb9,0xc2,
607 0xba,0xc2,0xbb,0xc2,0xbc,0xc2,0xbd,0xc2,0xbe,0xc2,0xbf,0xc3,0x80,0xc3,0x81,0xc3,
608 0x82,0xc3,0x83,0xc3,0x84,0xc3,0x85,0xc3,0x86,0xc3,0x87,0xc3,0x88,0xc3,0x89,0xc3,
609 0x8a,0xc3,0x8b,0xc3,0x8c,0xc3,0x8d,0xc3,0x8e,0xc3,0x8f,0xc3,0x90,0xc3,0x91,0xc3,
610 0x92,0xc3,0x93,0xc3,0x94,0xc3,0x95,0xc3,0x96,0xc3,0x97,0xc3,0x98,0xc3,0x99,0xc3,
611 0x9a,0xc3,0x9b,0xc3,0x9c,0xc3,0x9d,0xc3,0x9e,0xc3,0x9f,0xc3,0xa0,0xc3,0xa1,0xc3,
612 0xa2,0xc3,0xa3,0xc3,0xa4,0xc3,0xa5,0xc3,0xa6,0xc3,0xa7,0xc3,0xa8,0xc3,0xa9,0xc3,
613 0xaa,0xc3,0xab,0xc3,0xac,0xc3,0xad,0xc3,0xae,0xc3,0xaf,0xc3,0xb0,0xc3,0xb1,0xc3,
614 0xb2,0xc3,0xb3,0xc3,0xb4,0xc3,0xb5,0xc3,0xb6,0xc3,0xb7,0xc3,0xb8,0xc3,0xb9,0xc3,
615 0xba,0xc3,0xbb,0xc3,0xbc,0xc3,0xbd,0xc3,0xbe,0xc3,0xbf
616 };
617
618 // a character sequence encoded as CP1252 (iconv)
619 static const unsigned char CP1252[246] =
620 {
621 0x05,0x06,0x07,0x08,0x09,0x0a,0x0b,0x0c,0x0d,0x0e,0x0f,0x10,0x11,0x12,0x13,0x14,
622 0x15,0x16,0x17,0x18,0x19,0x1a,0x1b,0x1c,0x1d,0x1e,0x1f,0x20,0x21,0x22,0x23,0x24,
623 0x25,0x26,0x27,0x28,0x29,0x2a,0x2b,0x2c,0x2d,0x2e,0x2f,0x30,0x31,0x32,0x33,0x34,
624 0x35,0x36,0x37,0x38,0x39,0x3a,0x3b,0x3c,0x3d,0x3e,0x3f,0x40,0x41,0x42,0x43,0x44,
625 0x45,0x46,0x47,0x48,0x49,0x4a,0x4b,0x4c,0x4d,0x4e,0x4f,0x50,0x51,0x52,0x53,0x54,
626 0x55,0x56,0x57,0x58,0x59,0x5a,0x5b,0x5c,0x5d,0x5e,0x5f,0x60,0x61,0x62,0x63,0x64,
627 0x65,0x66,0x67,0x68,0x69,0x6a,0x6b,0x6c,0x6d,0x6e,0x6f,0x70,0x71,0x72,0x73,0x74,
628 0x75,0x76,0x77,0x78,0x79,0x7a,0x7b,0x7c,0x7d,0x7e,0x7f,0xa0,0xa1,0xa2,0xa3,0xa4,
629 0xa5,0xa6,0xa7,0xa8,0xa9,0xaa,0xab,0xac,0xad,0xae,0xaf,0xb0,0xb1,0xb2,0xb3,0xb4,
630 0xb5,0xb6,0xb7,0xb8,0xb9,0xba,0xbb,0xbc,0xbd,0xbe,0xbf,0xc0,0xc1,0xc2,0xc3,0xc4,
631 0xc5,0xc6,0xc7,0xc8,0xc9,0xca,0xcb,0xcc,0xcd,0xce,0xcf,0xd0,0xd1,0xd2,0xd3,0xd4,
632 0xd5,0xd6,0xd7,0xd8,0xd9,0xda,0xdb,0xdc,0xdd,0xde,0xdf,0xe0,0xe1,0xe2,0xe3,0xe4,
633 0xe5,0xe6,0xe7,0xe8,0xe9,0xea,0xeb,0xec,0xed,0xee,0xef,0xf0,0xf1,0xf2,0xf3,0xf4,
634 0xf5,0xf6,0xf7,0xf8,0xf9,0xfa,0xfb,0xfc,0xfd,0xfe,0xff,0x8c,0x9c,0x8a,0x9a,0x9f,
635 0x8e,0x9e,0x83,0x88,0x98,0x96,0x97,0x91,0x92,0x82,0x93,0x94,0x84,0x86,0x87,0x95,
636 0x85,0x89,0x8b,0x9b,0x80,0x99
637 };
638 // the above character sequence encoded as UTF-8 (iconv)
639 static const unsigned char CP1252_utf8[386] =
640 {
641 0x05,0x06,0x07,0x08,0x09,0x0a,0x0b,0x0c,0x0d,0x0e,0x0f,0x10,0x11,0x12,0x13,0x14,
642 0x15,0x16,0x17,0x18,0x19,0x1a,0x1b,0x1c,0x1d,0x1e,0x1f,0x20,0x21,0x22,0x23,0x24,
643 0x25,0x26,0x27,0x28,0x29,0x2a,0x2b,0x2c,0x2d,0x2e,0x2f,0x30,0x31,0x32,0x33,0x34,
644 0x35,0x36,0x37,0x38,0x39,0x3a,0x3b,0x3c,0x3d,0x3e,0x3f,0x40,0x41,0x42,0x43,0x44,
645 0x45,0x46,0x47,0x48,0x49,0x4a,0x4b,0x4c,0x4d,0x4e,0x4f,0x50,0x51,0x52,0x53,0x54,
646 0x55,0x56,0x57,0x58,0x59,0x5a,0x5b,0x5c,0x5d,0x5e,0x5f,0x60,0x61,0x62,0x63,0x64,
647 0x65,0x66,0x67,0x68,0x69,0x6a,0x6b,0x6c,0x6d,0x6e,0x6f,0x70,0x71,0x72,0x73,0x74,
648 0x75,0x76,0x77,0x78,0x79,0x7a,0x7b,0x7c,0x7d,0x7e,0x7f,0xc2,0xa0,0xc2,0xa1,0xc2,
649 0xa2,0xc2,0xa3,0xc2,0xa4,0xc2,0xa5,0xc2,0xa6,0xc2,0xa7,0xc2,0xa8,0xc2,0xa9,0xc2,
650 0xaa,0xc2,0xab,0xc2,0xac,0xc2,0xad,0xc2,0xae,0xc2,0xaf,0xc2,0xb0,0xc2,0xb1,0xc2,
651 0xb2,0xc2,0xb3,0xc2,0xb4,0xc2,0xb5,0xc2,0xb6,0xc2,0xb7,0xc2,0xb8,0xc2,0xb9,0xc2,
652 0xba,0xc2,0xbb,0xc2,0xbc,0xc2,0xbd,0xc2,0xbe,0xc2,0xbf,0xc3,0x80,0xc3,0x81,0xc3,
653 0x82,0xc3,0x83,0xc3,0x84,0xc3,0x85,0xc3,0x86,0xc3,0x87,0xc3,0x88,0xc3,0x89,0xc3,
654 0x8a,0xc3,0x8b,0xc3,0x8c,0xc3,0x8d,0xc3,0x8e,0xc3,0x8f,0xc3,0x90,0xc3,0x91,0xc3,
655 0x92,0xc3,0x93,0xc3,0x94,0xc3,0x95,0xc3,0x96,0xc3,0x97,0xc3,0x98,0xc3,0x99,0xc3,
656 0x9a,0xc3,0x9b,0xc3,0x9c,0xc3,0x9d,0xc3,0x9e,0xc3,0x9f,0xc3,0xa0,0xc3,0xa1,0xc3,
657 0xa2,0xc3,0xa3,0xc3,0xa4,0xc3,0xa5,0xc3,0xa6,0xc3,0xa7,0xc3,0xa8,0xc3,0xa9,0xc3,
658 0xaa,0xc3,0xab,0xc3,0xac,0xc3,0xad,0xc3,0xae,0xc3,0xaf,0xc3,0xb0,0xc3,0xb1,0xc3,
659 0xb2,0xc3,0xb3,0xc3,0xb4,0xc3,0xb5,0xc3,0xb6,0xc3,0xb7,0xc3,0xb8,0xc3,0xb9,0xc3,
660 0xba,0xc3,0xbb,0xc3,0xbc,0xc3,0xbd,0xc3,0xbe,0xc3,0xbf,0xc5,0x92,0xc5,0x93,0xc5,
661 0xa0,0xc5,0xa1,0xc5,0xb8,0xc5,0xbd,0xc5,0xbe,0xc6,0x92,0xcb,0x86,0xcb,0x9c,0xe2,
662 0x80,0x93,0xe2,0x80,0x94,0xe2,0x80,0x98,0xe2,0x80,0x99,0xe2,0x80,0x9a,0xe2,0x80,
663 0x9c,0xe2,0x80,0x9d,0xe2,0x80,0x9e,0xe2,0x80,0xa0,0xe2,0x80,0xa1,0xe2,0x80,0xa2,
664 0xe2,0x80,0xa6,0xe2,0x80,0xb0,0xe2,0x80,0xb9,0xe2,0x80,0xba,0xe2,0x82,0xac,0xe2,
665 0x84,0xa2
666 };
667
668 // a character sequence encoded as iso8859-5 (iconv)
669 static const unsigned char iso8859_5[251] =
670 {
671 0x05,0x06,0x07,0x08,0x09,0x0a,0x0b,0x0c,0x0d,0x0e,0x0f,0x10,0x11,0x12,0x13,0x14,
672 0x15,0x16,0x17,0x18,0x19,0x1a,0x1b,0x1c,0x1d,0x1e,0x1f,0x20,0x21,0x22,0x23,0x24,
673 0x25,0x26,0x27,0x28,0x29,0x2a,0x2b,0x2c,0x2d,0x2e,0x2f,0x30,0x31,0x32,0x33,0x34,
674 0x35,0x36,0x37,0x38,0x39,0x3a,0x3b,0x3c,0x3d,0x3e,0x3f,0x40,0x41,0x42,0x43,0x44,
675 0x45,0x46,0x47,0x48,0x49,0x4a,0x4b,0x4c,0x4d,0x4e,0x4f,0x50,0x51,0x52,0x53,0x54,
676 0x55,0x56,0x57,0x58,0x59,0x5a,0x5b,0x5c,0x5d,0x5e,0x5f,0x60,0x61,0x62,0x63,0x64,
677 0x65,0x66,0x67,0x68,0x69,0x6a,0x6b,0x6c,0x6d,0x6e,0x6f,0x70,0x71,0x72,0x73,0x74,
678 0x75,0x76,0x77,0x78,0x79,0x7a,0x7b,0x7c,0x7d,0x7e,0x7f,0x80,0x81,0x82,0x83,0x84,
679 0x85,0x86,0x87,0x88,0x89,0x8a,0x8b,0x8c,0x8d,0x8e,0x8f,0x90,0x91,0x92,0x93,0x94,
680 0x95,0x96,0x97,0x98,0x99,0x9a,0x9b,0x9c,0x9d,0x9e,0x9f,0xa0,0xfd,0xad,0xa1,0xa2,
681 0xa3,0xa4,0xa5,0xa6,0xa7,0xa8,0xa9,0xaa,0xab,0xac,0xae,0xaf,0xb0,0xb1,0xb2,0xb3,
682 0xb4,0xb5,0xb6,0xb7,0xb8,0xb9,0xba,0xbb,0xbc,0xbd,0xbe,0xbf,0xc0,0xc1,0xc2,0xc3,
683 0xc4,0xc5,0xc6,0xc7,0xc8,0xc9,0xca,0xcb,0xcc,0xcd,0xce,0xcf,0xd0,0xd1,0xd2,0xd3,
684 0xd4,0xd5,0xd6,0xd7,0xd8,0xd9,0xda,0xdb,0xdc,0xdd,0xde,0xdf,0xe0,0xe1,0xe2,0xe3,
685 0xe4,0xe5,0xe6,0xe7,0xe8,0xe9,0xea,0xeb,0xec,0xed,0xee,0xef,0xf1,0xf2,0xf3,0xf4,
686 0xf5,0xf6,0xf7,0xf8,0xf9,0xfa,0xfb,0xfc,0xfe,0xff,0xf0
687 };
688 // the above character sequence encoded as UTF-8 (iconv)
689 static const unsigned char iso8859_5_utf8[380] =
690 {
691 0x05,0x06,0x07,0x08,0x09,0x0a,0x0b,0x0c,0x0d,0x0e,0x0f,0x10,0x11,0x12,0x13,0x14,
692 0x15,0x16,0x17,0x18,0x19,0x1a,0x1b,0x1c,0x1d,0x1e,0x1f,0x20,0x21,0x22,0x23,0x24,
693 0x25,0x26,0x27,0x28,0x29,0x2a,0x2b,0x2c,0x2d,0x2e,0x2f,0x30,0x31,0x32,0x33,0x34,
694 0x35,0x36,0x37,0x38,0x39,0x3a,0x3b,0x3c,0x3d,0x3e,0x3f,0x40,0x41,0x42,0x43,0x44,
695 0x45,0x46,0x47,0x48,0x49,0x4a,0x4b,0x4c,0x4d,0x4e,0x4f,0x50,0x51,0x52,0x53,0x54,
696 0x55,0x56,0x57,0x58,0x59,0x5a,0x5b,0x5c,0x5d,0x5e,0x5f,0x60,0x61,0x62,0x63,0x64,
697 0x65,0x66,0x67,0x68,0x69,0x6a,0x6b,0x6c,0x6d,0x6e,0x6f,0x70,0x71,0x72,0x73,0x74,
698 0x75,0x76,0x77,0x78,0x79,0x7a,0x7b,0x7c,0x7d,0x7e,0x7f,0xc2,0x80,0xc2,0x81,0xc2,
699 0x82,0xc2,0x83,0xc2,0x84,0xc2,0x85,0xc2,0x86,0xc2,0x87,0xc2,0x88,0xc2,0x89,0xc2,
700 0x8a,0xc2,0x8b,0xc2,0x8c,0xc2,0x8d,0xc2,0x8e,0xc2,0x8f,0xc2,0x90,0xc2,0x91,0xc2,
701 0x92,0xc2,0x93,0xc2,0x94,0xc2,0x95,0xc2,0x96,0xc2,0x97,0xc2,0x98,0xc2,0x99,0xc2,
702 0x9a,0xc2,0x9b,0xc2,0x9c,0xc2,0x9d,0xc2,0x9e,0xc2,0x9f,0xc2,0xa0,0xc2,0xa7,0xc2,
703 0xad,0xd0,0x81,0xd0,0x82,0xd0,0x83,0xd0,0x84,0xd0,0x85,0xd0,0x86,0xd0,0x87,0xd0,
704 0x88,0xd0,0x89,0xd0,0x8a,0xd0,0x8b,0xd0,0x8c,0xd0,0x8e,0xd0,0x8f,0xd0,0x90,0xd0,
705 0x91,0xd0,0x92,0xd0,0x93,0xd0,0x94,0xd0,0x95,0xd0,0x96,0xd0,0x97,0xd0,0x98,0xd0,
706 0x99,0xd0,0x9a,0xd0,0x9b,0xd0,0x9c,0xd0,0x9d,0xd0,0x9e,0xd0,0x9f,0xd0,0xa0,0xd0,
707 0xa1,0xd0,0xa2,0xd0,0xa3,0xd0,0xa4,0xd0,0xa5,0xd0,0xa6,0xd0,0xa7,0xd0,0xa8,0xd0,
708 0xa9,0xd0,0xaa,0xd0,0xab,0xd0,0xac,0xd0,0xad,0xd0,0xae,0xd0,0xaf,0xd0,0xb0,0xd0,
709 0xb1,0xd0,0xb2,0xd0,0xb3,0xd0,0xb4,0xd0,0xb5,0xd0,0xb6,0xd0,0xb7,0xd0,0xb8,0xd0,
710 0xb9,0xd0,0xba,0xd0,0xbb,0xd0,0xbc,0xd0,0xbd,0xd0,0xbe,0xd0,0xbf,0xd1,0x80,0xd1,
711 0x81,0xd1,0x82,0xd1,0x83,0xd1,0x84,0xd1,0x85,0xd1,0x86,0xd1,0x87,0xd1,0x88,0xd1,
712 0x89,0xd1,0x8a,0xd1,0x8b,0xd1,0x8c,0xd1,0x8d,0xd1,0x8e,0xd1,0x8f,0xd1,0x91,0xd1,
713 0x92,0xd1,0x93,0xd1,0x94,0xd1,0x95,0xd1,0x96,0xd1,0x97,0xd1,0x98,0xd1,0x99,0xd1,
714 0x9a,0xd1,0x9b,0xd1,0x9c,0xd1,0x9e,0xd1,0x9f,0xe2,0x84,0x96
715 };
716
717 // DecodeUTF8
718 // decodes the specified *unterminated* UTF-8 byte array
719 wxWCharBuffer DecodeUTF8(
720 const void* data, // an unterminated UTF-8 encoded byte array
721 size_t size // the byte length of data
722 )
723 {
724 // the decoder requires a null terminated buffer.
725 // the input data is not null terminated.
726 // copy to null terminated buffer
727
728 wxCharBuffer nullTerminated( size+1 );
729 memcpy( nullTerminated.data(), data, size );
730 nullTerminated.data()[size] = 0;
731 return wxConvUTF8.cMB2WC(nullTerminated.data());
732 }
733
734 // tests the encoding and decoding capability of an wxMBConv object
735 //
736 // decodes the utf-8 bytes into wide characters
737 // encodes the wide characters to compare against input multiBuffer
738 // decodes the multiBuffer to compare against wide characters
739 // decodes the multiBuffer into wide characters
740 void MBConvTestCase::TestCoder(
741 const char* multiBuffer, // a multibyte encoded character sequence that can be decoded by "converter"
742 size_t multiBytes, // the byte length of the multibyte character sequence that can be decoded by "converter"
743 const char* utf8Buffer, // the same character sequence as multiBuffer, encoded as UTF-8
744 size_t utf8Bytes, // the byte length of the UTF-8 encoded character sequence
745 wxMBConv* converter, // the wxMBConv object thta can decode multiBuffer into a wide character sequence
746 int sizeofNull // the number of bytes occupied by a terminating null in the converter's encoding
747 )
748 {
749 // wide character size and endian-ess varies from platform to platform
750 // compiler support for wide character literals varies from compiler to compiler
751 // so we should store the wide character version as UTF-8 and depend on
752 // the UTF-8 converter's ability to decode it to platform specific wide characters
753 // this test is invalid if the UTF-8 converter can't decode
754 wxWCharBuffer wideBuffer((size_t)0);
755 wideBuffer = DecodeUTF8( utf8Buffer, utf8Bytes );
756 size_t wideChars = wxWcslen( wideBuffer.data() );
757
758 TestDecoder
759 (
760 wideBuffer.data(),
761 wideChars,
762 (const char*)multiBuffer,
763 multiBytes,
764 converter,
765 sizeofNull
766 );
767 TestEncoder
768 (
769 wideBuffer.data(),
770 wideChars,
771 (const char*)multiBuffer,
772 multiBytes,
773 converter,
774 sizeofNull
775 );
776 }
777
778
779 WXDLLIMPEXP_BASE wxMBConv* new_wxMBConv_wxwin( const wxChar* name );
780
781 void MBConvTestCase::FontmapTests()
782 {
783 #ifdef wxUSE_FONTMAP
784 wxMBConv* converter = new_wxMBConv_wxwin( _T("CP1252") );
785 if ( !converter )
786 {
787 return;
788 }
789 TestCoder(
790 (const char*)CP1252,
791 sizeof(CP1252),
792 (const char*)CP1252_utf8,
793 sizeof(CP1252_utf8),
794 converter,
795 1
796 );
797 delete converter;
798 #endif
799 }
800
801
802 WXDLLIMPEXP_BASE wxMBConv* new_wxMBConv_iconv( const wxChar* name );
803
804 void MBConvTestCase::IconvTests()
805 {
806 #ifdef HAVE_ICONV
807 wxMBConv* converter = new_wxMBConv_iconv( _T("CP932") );
808 if ( !converter )
809 {
810 return;
811 }
812 TestCoder(
813 (const char*)welcome_cp932,
814 sizeof(welcome_cp932),
815 (const char*)welcome_utf8,
816 sizeof(welcome_utf8),
817 converter,
818 1
819 );
820 delete converter;
821 #endif
822 }
823
824 void MBConvTestCase::CP1252Tests()
825 {
826 wxCSConv convCP1252( wxFONTENCODING_CP1252 );
827 TestCoder(
828 (const char*)CP1252,
829 sizeof(CP1252),
830 (const char*)CP1252_utf8,
831 sizeof(CP1252_utf8),
832 &convCP1252,
833 1
834 );
835 }
836
837 void MBConvTestCase::LibcTests()
838 {
839 // There isn't a locale that all systems support (except "C"), so leave
840 // this one disabled for non-Windows systems for the moment, until
841 // a solution can be found.
842 #ifdef __WXMSW__
843
844 #ifdef __WXMSW__
845 setlocale( LC_ALL, "English_United States.1252" );
846 const unsigned char* systemMB = CP1252;
847 size_t systemMB_size = sizeof(CP1252);
848 const unsigned char* systemMB_utf8 = CP1252_utf8;
849 size_t systemMB_utf8_size = sizeof(CP1252_utf8);
850 #else
851 setlocale( LC_ALL, "en_US.iso8859-1" );
852 const unsigned char* systemMB = iso8859_1;
853 size_t systemMB_size = sizeof(iso8859_1);
854 const unsigned char* systemMB_utf8 = iso8859_1_utf8;
855 size_t systemMB_utf8_size = sizeof(iso8859_1_utf8);
856 #endif
857 wxMBConvLibc convLibc;
858 TestCoder(
859 (const char*)systemMB,
860 systemMB_size,
861 (const char*)systemMB_utf8,
862 systemMB_utf8_size,
863 &convLibc,
864 1
865 );
866
867 #endif // __WXMSW__
868 }
869
870 // verifies that the specified mb sequences decode to the specified wc sequence
871 void MBConvTestCase::TestDecoder(
872 const wchar_t* wideBuffer, // the same character sequence as multiBuffer, encoded as wchar_t
873 size_t wideChars, // the number of wide characters at wideBuffer
874 const char* multiBuffer, // a multibyte encoded character sequence that can be decoded by "converter"
875 size_t multiBytes, // the byte length of the multibyte character sequence that can be decoded by "converter"
876 wxMBConv* converter, // the wxMBConv object that can decode multiBuffer into a wide character sequence
877 int sizeofNull // number of bytes occupied by terminating null in this encoding
878 )
879 {
880 const unsigned UNINITIALIZED = 0xcd;
881
882 // copy the input bytes into a null terminated buffer
883 wxCharBuffer inputCopy( multiBytes+sizeofNull );
884 memcpy( inputCopy.data(), multiBuffer, multiBytes );
885 memset( &inputCopy.data()[multiBytes], 0, sizeofNull );
886
887 // calculate the output size
888 size_t outputWritten = converter->MB2WC
889 (
890 0,
891 (const char*)inputCopy.data(),
892 0
893 );
894 // make sure the correct output length was calculated
895 CPPUNIT_ASSERT( outputWritten == wideChars );
896
897 // convert the string
898 size_t guardChars = 8; // to make sure we're not overrunning the output buffer
899 size_t nullCharacters = 1;
900 size_t outputBufferChars = outputWritten + nullCharacters + guardChars;
901 wxWCharBuffer outputBuffer(outputBufferChars);
902 memset( outputBuffer.data(), UNINITIALIZED, outputBufferChars*sizeof(wchar_t) );
903
904 outputWritten = converter->MB2WC
905 (
906 outputBuffer.data(),
907 (const char*)inputCopy.data(),
908 outputBufferChars
909 );
910 // make sure the correct number of characters were outputs
911 CPPUNIT_ASSERT( outputWritten == wideChars );
912
913 // make sure the characters generated are correct
914 CPPUNIT_ASSERT( 0 == memcmp( outputBuffer, wideBuffer, wideChars*sizeof(wchar_t) ) );
915
916 // the output buffer should be null terminated
917 CPPUNIT_ASSERT( outputBuffer[outputWritten] == 0 );
918
919 // make sure the rest of the output buffer is untouched
920 for ( size_t i = (wideChars+1)*sizeof(wchar_t); i < (outputBufferChars*sizeof(wchar_t)); i++ )
921 {
922 CPPUNIT_ASSERT( ((unsigned char*)outputBuffer.data())[i] == UNINITIALIZED );
923 }
924
925 #if wxUSE_UNICODE && wxUSE_STREAMS
926 TestStreamDecoder( wideBuffer, wideChars, multiBuffer, multiBytes, converter );
927 #endif
928 }
929
930 // verifies that the specified wc sequences encodes to the specified mb sequence
931 void MBConvTestCase::TestEncoder(
932 const wchar_t* wideBuffer, // the same character sequence as multiBuffer, encoded as wchar_t
933 size_t wideChars, // the number of wide characters at wideBuffer
934 const char* multiBuffer, // a multibyte encoded character sequence that can be decoded by "converter"
935 size_t multiBytes, // the byte length of the multibyte character sequence that can be decoded by "converter"
936 wxMBConv* converter, // the wxMBConv object that can decode multiBuffer into a wide character sequence
937 int sizeofNull // number of bytes occupied by terminating null in this encoding
938 )
939 {
940 const unsigned UNINITIALIZED = 0xcd;
941
942 // copy the input bytes into a null terminated buffer
943 wxWCharBuffer inputCopy( wideChars + 1 );
944 memcpy( inputCopy.data(), wideBuffer, (wideChars*sizeof(wchar_t)) );
945 inputCopy.data()[wideChars] = 0;
946
947 // calculate the output size
948 size_t outputWritten = converter->WC2MB
949 (
950 0,
951 (const wchar_t*)inputCopy.data(),
952 0
953 );
954 // make sure the correct output length was calculated
955 CPPUNIT_ASSERT( outputWritten == multiBytes );
956
957 // convert the string
958 size_t guardBytes = 8; // to make sure we're not overrunning the output buffer
959 size_t outputBufferSize = outputWritten + sizeofNull + guardBytes;
960 wxCharBuffer outputBuffer(outputBufferSize);
961 memset( outputBuffer.data(), UNINITIALIZED, outputBufferSize );
962
963 outputWritten = converter->WC2MB
964 (
965 outputBuffer.data(),
966 (const wchar_t*)inputCopy.data(),
967 outputBufferSize
968 );
969
970 // make sure the correct number of characters were output
971 CPPUNIT_ASSERT( outputWritten == multiBytes );
972
973 // make sure the characters generated are correct
974 CPPUNIT_ASSERT( 0 == memcmp( outputBuffer, multiBuffer, multiBytes ) );
975
976 size_t i;
977
978 // the output buffer should be null terminated
979 for ( i = multiBytes; i < multiBytes + sizeofNull; i++ )
980 {
981 CPPUNIT_ASSERT( ((unsigned char*)outputBuffer.data())[i] == 0 );
982 }
983
984 // make sure the rest of the output buffer is untouched
985 for ( i = multiBytes + sizeofNull; i < outputBufferSize; i++ )
986 {
987 CPPUNIT_ASSERT( ((unsigned char*)outputBuffer.data())[i] == UNINITIALIZED );
988 }
989
990 #if wxUSE_UNICODE && wxUSE_STREAMS
991 TestStreamEncoder( wideBuffer, wideChars, multiBuffer, multiBytes, converter );
992 #endif
993 }
994
995 #if wxUSE_UNICODE && wxUSE_STREAMS
996 // use wxTextInputStream to exercise wxMBConv interface
997 // (this reveals some bugs in certain wxMBConv subclasses)
998 void MBConvTestCase::TestStreamDecoder(
999 const wchar_t* wideBuffer, // the same character sequence as multiBuffer, encoded as wchar_t
1000 size_t wideChars, // the number of wide characters at wideBuffer
1001 const char* multiBuffer, // a multibyte encoded character sequence that can be decoded by "converter"
1002 size_t multiBytes, // the byte length of the multibyte character sequence that can be decoded by "converter"
1003 wxMBConv* converter // the wxMBConv object that can decode multiBuffer into a wide character sequence
1004 )
1005 {
1006 // this isn't meant to test wxMemoryInputStream or wxTextInputStream
1007 // it's meant to test the way wxTextInputStream uses wxMBConv
1008 // (which has exposed some problems with wxMBConv)
1009 wxMemoryInputStream memoryInputStream( multiBuffer, multiBytes );
1010 wxTextInputStream textInputStream( memoryInputStream, wxT(""), *converter );
1011 for ( size_t i = 0; i < wideChars; i++ )
1012 {
1013 wxChar wc = textInputStream.GetChar();
1014 CPPUNIT_ASSERT( wc == wideBuffer[i] );
1015 }
1016 CPPUNIT_ASSERT( 0 == textInputStream.GetChar() );
1017 CPPUNIT_ASSERT( memoryInputStream.Eof() );
1018 }
1019 #endif
1020
1021 #if wxUSE_UNICODE && wxUSE_STREAMS
1022 // use wxTextInputStream to exercise wxMBConv interface
1023 // (this reveals some bugs in certain wxMBConv subclasses)
1024 void MBConvTestCase::TestStreamEncoder(
1025 const wchar_t* wideBuffer, // the same character sequence as multiBuffer, encoded as wchar_t
1026 size_t wideChars, // the number of wide characters at wideBuffer
1027 const char* multiBuffer, // a multibyte encoded character sequence that can be decoded by "converter"
1028 size_t multiBytes, // the byte length of the multibyte character sequence that can be decoded by "converter"
1029 wxMBConv* converter // the wxMBConv object that can decode multiBuffer into a wide character sequence
1030 )
1031 {
1032 // this isn't meant to test wxMemoryOutputStream or wxTextOutputStream
1033 // it's meant to test the way wxTextOutputStream uses wxMBConv
1034 // (which has exposed some problems with wxMBConv)
1035 wxMemoryOutputStream memoryOutputStream;
1036 // wxEOL_UNIX will pass \n \r unchanged
1037 wxTextOutputStream textOutputStream( memoryOutputStream, wxEOL_UNIX, *converter );
1038 for ( size_t i = 0; i < wideChars; i++ )
1039 {
1040 textOutputStream.PutChar( wideBuffer[i] );
1041 }
1042 CPPUNIT_ASSERT_EQUAL( (wxFileOffset)multiBytes, memoryOutputStream.TellO() );
1043 wxCharBuffer copy( memoryOutputStream.TellO() );
1044 memoryOutputStream.CopyTo( copy.data(), memoryOutputStream.TellO());
1045 CPPUNIT_ASSERT_EQUAL( 0, memcmp( copy.data(), multiBuffer, multiBytes ) );
1046 }
1047 #endif
1048
1049
1050 // ----------------------------------------------------------------------------
1051 // UTF-8 tests
1052 // ----------------------------------------------------------------------------
1053
1054 #ifdef HAVE_WCHAR_H
1055
1056 // Check that 'charSequence' translates to 'wideSequence' and back.
1057 // Invalid sequences can be tested by giving NULL for 'wideSequence'. Even
1058 // invalid sequences should roundtrip when an option is given and this is
1059 // checked.
1060 //
1061 void MBConvTestCase::UTF8(const char *charSequence,
1062 const wchar_t *wideSequence)
1063 {
1064 UTF8(charSequence, wideSequence, wxMBConvUTF8::MAP_INVALID_UTF8_NOT);
1065 UTF8(charSequence, wideSequence, wxMBConvUTF8::MAP_INVALID_UTF8_TO_PUA);
1066 UTF8(charSequence, wideSequence, wxMBConvUTF8::MAP_INVALID_UTF8_TO_OCTAL);
1067 }
1068
1069 // Use this alternative when 'charSequence' contains a PUA character. Such
1070 // sequences should still roundtrip ok, and this is checked.
1071 //
1072 void MBConvTestCase::UTF8PUA(const char *charSequence,
1073 const wchar_t *wideSequence)
1074 {
1075 UTF8(charSequence, wideSequence, wxMBConvUTF8::MAP_INVALID_UTF8_NOT);
1076 UTF8(charSequence, NULL, wxMBConvUTF8::MAP_INVALID_UTF8_TO_PUA);
1077 UTF8(charSequence, wideSequence, wxMBConvUTF8::MAP_INVALID_UTF8_TO_OCTAL);
1078 }
1079
1080 // Use this alternative when 'charSequence' contains an octal escape sequence.
1081 // Such sequences should still roundtrip ok, and this is checked.
1082 //
1083 void MBConvTestCase::UTF8Octal(const char *charSequence,
1084 const wchar_t *wideSequence)
1085 {
1086 UTF8(charSequence, wideSequence, wxMBConvUTF8::MAP_INVALID_UTF8_NOT);
1087 UTF8(charSequence, wideSequence, wxMBConvUTF8::MAP_INVALID_UTF8_TO_PUA);
1088 UTF8(charSequence, NULL, wxMBConvUTF8::MAP_INVALID_UTF8_TO_OCTAL);
1089 }
1090
1091 // in case wcscpy is missing
1092 //
1093 static wchar_t *wx_wcscpy(wchar_t *dest, const wchar_t *src)
1094 {
1095 wchar_t *d = dest;
1096 while ((*d++ = *src++) != 0)
1097 ;
1098 return dest;
1099 }
1100
1101 // in case wcscat is missing
1102 //
1103 static wchar_t *wx_wcscat(wchar_t *dest, const wchar_t *src)
1104 {
1105 wchar_t *d = dest;
1106 while (*d)
1107 d++;
1108 while ((*d++ = *src++) != 0)
1109 ;
1110 return dest;
1111 }
1112
1113 // in case wcscmp is missing
1114 //
1115 static int wx_wcscmp(const wchar_t *s1, const wchar_t *s2)
1116 {
1117 while (*s1 == *s2 && *s1 != 0)
1118 {
1119 s1++;
1120 s2++;
1121 }
1122 return *s1 - *s2;
1123 }
1124
1125 // in case wcslen is missing
1126 //
1127 static size_t wx_wcslen(const wchar_t *s)
1128 {
1129 const wchar_t *t = s;
1130 while (*t != 0)
1131 t++;
1132 return t - s;
1133 }
1134
1135 // include the option in the error messages so it's possible to see which
1136 // test failed
1137 #define UTF8ASSERT(expr) CPPUNIT_ASSERT_MESSAGE(#expr + errmsg, expr)
1138
1139 // The test implementation
1140 //
1141 void MBConvTestCase::UTF8(const char *charSequence,
1142 const wchar_t *wideSequence,
1143 int option)
1144 {
1145 const size_t BUFSIZE = 128;
1146 wxASSERT(strlen(charSequence) * 3 + 10 < BUFSIZE);
1147 char bytes[BUFSIZE];
1148
1149 // include the option in the error messages so it's possible to see
1150 // which test failed
1151 sprintf(bytes, " (with option == %d)", option);
1152 std::string errmsg(bytes);
1153
1154 // put the charSequence at the start, middle and end of a string
1155 strcpy(bytes, charSequence);
1156 strcat(bytes, "ABC");
1157 strcat(bytes, charSequence);
1158 strcat(bytes, "XYZ");
1159 strcat(bytes, charSequence);
1160
1161 // translate it into wide characters
1162 wxMBConvUTF8 utf8(option);
1163 wchar_t widechars[BUFSIZE];
1164 size_t lenResult = utf8.MB2WC(NULL, bytes, 0);
1165 size_t result = utf8.MB2WC(widechars, bytes, BUFSIZE);
1166 UTF8ASSERT(result == lenResult);
1167
1168 // check we got the expected result
1169 if (wideSequence) {
1170 UTF8ASSERT(result != (size_t)-1);
1171 wxASSERT(result < BUFSIZE);
1172
1173 wchar_t expected[BUFSIZE];
1174 wx_wcscpy(expected, wideSequence);
1175 wx_wcscat(expected, L"ABC");
1176 wx_wcscat(expected, wideSequence);
1177 wx_wcscat(expected, L"XYZ");
1178 wx_wcscat(expected, wideSequence);
1179
1180 UTF8ASSERT(wx_wcscmp(widechars, expected) == 0);
1181 UTF8ASSERT(wx_wcslen(widechars) == result);
1182 }
1183 else {
1184 // If 'wideSequence' is NULL, then the result is expected to be
1185 // invalid. Normally that is as far as we can go, but if there is an
1186 // option then the conversion should succeed anyway, and it should be
1187 // possible to translate back to the original
1188 if (!option) {
1189 UTF8ASSERT(result == (size_t)-1);
1190 return;
1191 }
1192 else {
1193 UTF8ASSERT(result != (size_t)-1);
1194 }
1195 }
1196
1197 // translate it back and check we get the original
1198 char bytesAgain[BUFSIZE];
1199 size_t lenResultAgain = utf8.WC2MB(NULL, widechars, 0);
1200 size_t resultAgain = utf8.WC2MB(bytesAgain, widechars, BUFSIZE);
1201 UTF8ASSERT(resultAgain == lenResultAgain);
1202 UTF8ASSERT(resultAgain != (size_t)-1);
1203 wxASSERT(resultAgain < BUFSIZE);
1204
1205 UTF8ASSERT(strcmp(bytes, bytesAgain) == 0);
1206 UTF8ASSERT(strlen(bytesAgain) == resultAgain);
1207 }
1208
1209 #endif // HAVE_WCHAR_H