dc27c3e67548593eca5e6e9d23717dc77c81d72e
[reactos.git] / rostests / winetests / ntdll / rtlstr.c
1 /* Unit test suite for Rtl string functions
2 *
3 * Copyright 2002 Robert Shearman
4 * Copyright 2003 Thomas Mertes
5 *
6 * This library is free software; you can redistribute it and/or
7 * modify it under the terms of the GNU Lesser General Public
8 * License as published by the Free Software Foundation; either
9 * version 2.1 of the License, or (at your option) any later version.
10 *
11 * This library is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
14 * Lesser General Public License for more details.
15 *
16 * You should have received a copy of the GNU Lesser General Public
17 * License along with this library; if not, write to the Free Software
18 * Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301, USA
19 *
20 * NOTES
21 * We use function pointers here as there is no import library for NTDLL on
22 * windows.
23 */
24
25 #include <stdlib.h>
26
27 #define INITGUID
28
29 #include "ntdll_test.h"
30 #include "winnls.h"
31 #include "guiddef.h"
32
33 #define HASH_STRING_ALGORITHM_X65599 1
34 #define HASH_STRING_ALGORITHM_INVALID 0xffffffff
35
36 /* Function ptrs for ntdll calls */
37 static HMODULE hntdll = 0;
38 static NTSTATUS (WINAPI *pRtlAnsiStringToUnicodeString)(PUNICODE_STRING, PCANSI_STRING, BOOLEAN);
39 static NTSTATUS (WINAPI *pRtlAppendAsciizToString)(STRING *, LPCSTR);
40 static NTSTATUS (WINAPI *pRtlAppendStringToString)(STRING *, const STRING *);
41 static NTSTATUS (WINAPI *pRtlAppendUnicodeStringToString)(UNICODE_STRING *, const UNICODE_STRING *);
42 static NTSTATUS (WINAPI *pRtlAppendUnicodeToString)(UNICODE_STRING *, LPCWSTR);
43 static NTSTATUS (WINAPI *pRtlCharToInteger)(PCSZ, ULONG, int *);
44 static VOID (WINAPI *pRtlCopyString)(STRING *, const STRING *);
45 static BOOLEAN (WINAPI *pRtlCreateUnicodeString)(PUNICODE_STRING, LPCWSTR);
46 static BOOLEAN (WINAPI *pRtlCreateUnicodeStringFromAsciiz)(PUNICODE_STRING, LPCSTR);
47 static NTSTATUS (WINAPI *pRtlDowncaseUnicodeString)(UNICODE_STRING *, const UNICODE_STRING *, BOOLEAN);
48 static NTSTATUS (WINAPI *pRtlDuplicateUnicodeString)(int, UNICODE_STRING *, UNICODE_STRING *);
49 static BOOLEAN (WINAPI *pRtlEqualUnicodeString)(const UNICODE_STRING *, const UNICODE_STRING *, BOOLEAN);
50 static NTSTATUS (WINAPI *pRtlFindCharInUnicodeString)(int, const UNICODE_STRING *, const UNICODE_STRING *, USHORT *);
51 static VOID (WINAPI *pRtlFreeAnsiString)(PSTRING);
52 static VOID (WINAPI *pRtlFreeUnicodeString)(PUNICODE_STRING);
53 static VOID (WINAPI *pRtlInitAnsiString)(PSTRING, LPCSTR);
54 static VOID (WINAPI *pRtlInitString)(PSTRING, LPCSTR);
55 static VOID (WINAPI *pRtlInitUnicodeString)(PUNICODE_STRING, LPCWSTR);
56 static NTSTATUS (WINAPI *pRtlInitUnicodeStringEx)(PUNICODE_STRING, LPCWSTR);
57 static NTSTATUS (WINAPI *pRtlIntegerToChar)(ULONG, ULONG, ULONG, PCHAR);
58 static NTSTATUS (WINAPI *pRtlIntegerToUnicodeString)(ULONG, ULONG, UNICODE_STRING *);
59 static NTSTATUS (WINAPI *pRtlMultiAppendUnicodeStringBuffer)(UNICODE_STRING *, LONG, UNICODE_STRING *);
60 static NTSTATUS (WINAPI *pRtlUnicodeStringToAnsiString)(STRING *, const UNICODE_STRING *, BOOLEAN);
61 static NTSTATUS (WINAPI *pRtlUnicodeStringToInteger)(const UNICODE_STRING *, int, int *);
62 static WCHAR (WINAPI *pRtlUpcaseUnicodeChar)(WCHAR);
63 static NTSTATUS (WINAPI *pRtlUpcaseUnicodeString)(UNICODE_STRING *, const UNICODE_STRING *, BOOLEAN);
64 static CHAR (WINAPI *pRtlUpperChar)(CHAR);
65 static NTSTATUS (WINAPI *pRtlUpperString)(STRING *, const STRING *);
66 static NTSTATUS (WINAPI *pRtlValidateUnicodeString)(LONG, UNICODE_STRING *);
67 static NTSTATUS (WINAPI *pRtlGUIDFromString)(const UNICODE_STRING*,GUID*);
68 static NTSTATUS (WINAPI *pRtlStringFromGUID)(const GUID*, UNICODE_STRING*);
69 static BOOLEAN (WINAPI *pRtlIsTextUnicode)(LPVOID, INT, INT *);
70 static NTSTATUS (WINAPI *pRtlHashUnicodeString)(PCUNICODE_STRING,BOOLEAN,ULONG,ULONG*);
71 static NTSTATUS (WINAPI *pRtlUnicodeToUTF8N)(CHAR *, ULONG, ULONG *, const WCHAR *, ULONG);
72 static NTSTATUS (WINAPI *pRtlUTF8ToUnicodeN)(WCHAR *, ULONG, ULONG *, const CHAR *, ULONG);
73
74 /*static VOID (WINAPI *pRtlFreeOemString)(PSTRING);*/
75 /*static VOID (WINAPI *pRtlCopyUnicodeString)(UNICODE_STRING *, const UNICODE_STRING *);*/
76 /*static VOID (WINAPI *pRtlEraseUnicodeString)(UNICODE_STRING *);*/
77 /*static LONG (WINAPI *pRtlCompareString)(const STRING *,const STRING *,BOOLEAN);*/
78 /*static LONG (WINAPI *pRtlCompareUnicodeString)(const UNICODE_STRING *,const UNICODE_STRING *,BOOLEAN);*/
79 /*static BOOLEAN (WINAPI *pRtlEqualString)(const STRING *,const STRING *,BOOLEAN);*/
80 /*static BOOLEAN (WINAPI *pRtlPrefixString)(const STRING *, const STRING *, BOOLEAN);*/
81 /*static BOOLEAN (WINAPI *pRtlPrefixUnicodeString)(const UNICODE_STRING *, const UNICODE_STRING *, BOOLEAN);*/
82 /*static NTSTATUS (WINAPI *pRtlOemStringToUnicodeString)(PUNICODE_STRING, const STRING *, BOOLEAN);*/
83 /*static NTSTATUS (WINAPI *pRtlUnicodeStringToOemString)(STRING *, const UNICODE_STRING *, BOOLEAN);*/
84 /*static NTSTATUS (WINAPI *pRtlMultiByteToUnicodeN)(LPWSTR, DWORD, LPDWORD, LPCSTR, DWORD);*/
85 /*static NTSTATUS (WINAPI *pRtlOemToUnicodeN)(LPWSTR, DWORD, LPDWORD, LPCSTR, DWORD);*/
86 /*static NTSTATUS (WINAPI *pRtlUpcaseUnicodeStringToAnsiString)(STRING *, const UNICODE_STRING *, BOOLEAN);*/
87 /*static NTSTATUS (WINAPI *pRtlUpcaseUnicodeStringToOemString)(STRING *, const UNICODE_STRING *, BOOLEAN);*/
88 /*static NTSTATUS (WINAPI *pRtlUpcaseUnicodeToMultiByteN)(LPSTR, DWORD, LPDWORD, LPCWSTR, DWORD);*/
89 /*static NTSTATUS (WINAPI *pRtlUpcaseUnicodeToOemN)(LPSTR, DWORD, LPDWORD, LPCWSTR, DWORD);*/
90 /*static UINT (WINAPI *pRtlOemToUnicodeSize)(const STRING *);*/
91 /*static DWORD (WINAPI *pRtlAnsiStringToUnicodeSize)(const STRING *);*/
92
93
94 static WCHAR* AtoW( const char* p )
95 {
96 WCHAR* buffer;
97 DWORD len = MultiByteToWideChar( CP_ACP, 0, p, -1, NULL, 0 );
98 buffer = HeapAlloc(GetProcessHeap(), 0, len * sizeof(WCHAR) );
99 MultiByteToWideChar( CP_ACP, 0, p, -1, buffer, len );
100 return buffer;
101 }
102
103
104 static void InitFunctionPtrs(void)
105 {
106 hntdll = LoadLibraryA("ntdll.dll");
107 ok(hntdll != 0, "LoadLibrary failed\n");
108 if (hntdll) {
109 pRtlAnsiStringToUnicodeString = (void *)GetProcAddress(hntdll, "RtlAnsiStringToUnicodeString");
110 pRtlAppendAsciizToString = (void *)GetProcAddress(hntdll, "RtlAppendAsciizToString");
111 pRtlAppendStringToString = (void *)GetProcAddress(hntdll, "RtlAppendStringToString");
112 pRtlAppendUnicodeStringToString = (void *)GetProcAddress(hntdll, "RtlAppendUnicodeStringToString");
113 pRtlAppendUnicodeToString = (void *)GetProcAddress(hntdll, "RtlAppendUnicodeToString");
114 pRtlCharToInteger = (void *)GetProcAddress(hntdll, "RtlCharToInteger");
115 pRtlCopyString = (void *)GetProcAddress(hntdll, "RtlCopyString");
116 pRtlCreateUnicodeString = (void *)GetProcAddress(hntdll, "RtlCreateUnicodeString");
117 pRtlCreateUnicodeStringFromAsciiz = (void *)GetProcAddress(hntdll, "RtlCreateUnicodeStringFromAsciiz");
118 pRtlDowncaseUnicodeString = (void *)GetProcAddress(hntdll, "RtlDowncaseUnicodeString");
119 pRtlDuplicateUnicodeString = (void *)GetProcAddress(hntdll, "RtlDuplicateUnicodeString");
120 pRtlEqualUnicodeString = (void *)GetProcAddress(hntdll, "RtlEqualUnicodeString");
121 pRtlFindCharInUnicodeString = (void *)GetProcAddress(hntdll, "RtlFindCharInUnicodeString");
122 pRtlFreeAnsiString = (void *)GetProcAddress(hntdll, "RtlFreeAnsiString");
123 pRtlFreeUnicodeString = (void *)GetProcAddress(hntdll, "RtlFreeUnicodeString");
124 pRtlInitAnsiString = (void *)GetProcAddress(hntdll, "RtlInitAnsiString");
125 pRtlInitString = (void *)GetProcAddress(hntdll, "RtlInitString");
126 pRtlInitUnicodeString = (void *)GetProcAddress(hntdll, "RtlInitUnicodeString");
127 pRtlInitUnicodeStringEx = (void *)GetProcAddress(hntdll, "RtlInitUnicodeStringEx");
128 pRtlIntegerToChar = (void *)GetProcAddress(hntdll, "RtlIntegerToChar");
129 pRtlIntegerToUnicodeString = (void *)GetProcAddress(hntdll, "RtlIntegerToUnicodeString");
130 pRtlMultiAppendUnicodeStringBuffer = (void *)GetProcAddress(hntdll, "RtlMultiAppendUnicodeStringBuffer");
131 pRtlUnicodeStringToAnsiString = (void *)GetProcAddress(hntdll, "RtlUnicodeStringToAnsiString");
132 pRtlUnicodeStringToInteger = (void *)GetProcAddress(hntdll, "RtlUnicodeStringToInteger");
133 pRtlUpcaseUnicodeChar = (void *)GetProcAddress(hntdll, "RtlUpcaseUnicodeChar");
134 pRtlUpcaseUnicodeString = (void *)GetProcAddress(hntdll, "RtlUpcaseUnicodeString");
135 pRtlUpperChar = (void *)GetProcAddress(hntdll, "RtlUpperChar");
136 pRtlUpperString = (void *)GetProcAddress(hntdll, "RtlUpperString");
137 pRtlValidateUnicodeString = (void *)GetProcAddress(hntdll, "RtlValidateUnicodeString");
138 pRtlGUIDFromString = (void *)GetProcAddress(hntdll, "RtlGUIDFromString");
139 pRtlStringFromGUID = (void *)GetProcAddress(hntdll, "RtlStringFromGUID");
140 pRtlIsTextUnicode = (void *)GetProcAddress(hntdll, "RtlIsTextUnicode");
141 pRtlHashUnicodeString = (void*)GetProcAddress(hntdll, "RtlHashUnicodeString");
142 pRtlUnicodeToUTF8N = (void*)GetProcAddress(hntdll, "RtlUnicodeToUTF8N");
143 pRtlUTF8ToUnicodeN = (void*)GetProcAddress(hntdll, "RtlUTF8ToUnicodeN");
144 }
145 }
146
147 static void test_RtlInitString(void)
148 {
149 static const char teststring[] = "Some Wild String";
150 STRING str;
151
152 str.Length = 0;
153 str.MaximumLength = 0;
154 str.Buffer = (void *)0xdeadbeef;
155 pRtlInitString(&str, teststring);
156 ok(str.Length == sizeof(teststring) - sizeof(char), "Length uninitialized\n");
157 ok(str.MaximumLength == sizeof(teststring), "MaximumLength uninitialized\n");
158 ok(str.Buffer == teststring, "Buffer not equal to teststring\n");
159 ok(strcmp(str.Buffer, "Some Wild String") == 0, "Buffer written to\n");
160 pRtlInitString(&str, NULL);
161 ok(str.Length == 0, "Length uninitialized\n");
162 ok(str.MaximumLength == 0, "MaximumLength uninitialized\n");
163 ok(str.Buffer == NULL, "Buffer not equal to NULL\n");
164 /* pRtlInitString(NULL, teststring); */
165 }
166
167
168 static void test_RtlInitUnicodeString(void)
169 {
170 #define STRINGW {'S','o','m','e',' ','W','i','l','d',' ','S','t','r','i','n','g',0}
171 static const WCHAR teststring[] = STRINGW;
172 static const WCHAR originalstring[] = STRINGW;
173 #undef STRINGW
174 UNICODE_STRING uni;
175
176 uni.Length = 0;
177 uni.MaximumLength = 0;
178 uni.Buffer = (void *)0xdeadbeef;
179 pRtlInitUnicodeString(&uni, teststring);
180 ok(uni.Length == sizeof(teststring) - sizeof(WCHAR), "Length uninitialized\n");
181 ok(uni.MaximumLength == sizeof(teststring), "MaximumLength uninitialized\n");
182 ok(uni.Buffer == teststring, "Buffer not equal to teststring\n");
183 ok(lstrcmpW(uni.Buffer, originalstring) == 0, "Buffer written to\n");
184 pRtlInitUnicodeString(&uni, NULL);
185 ok(uni.Length == 0, "Length uninitialized\n");
186 ok(uni.MaximumLength == 0, "MaximumLength uninitialized\n");
187 ok(uni.Buffer == NULL, "Buffer not equal to NULL\n");
188 /* pRtlInitUnicodeString(NULL, teststring); */
189 }
190
191
192 #define TESTSTRING2_LEN 1000000
193 /* #define TESTSTRING2_LEN 32766 */
194
195
196 static void test_RtlInitUnicodeStringEx(void)
197 {
198 static const WCHAR teststring[] = {'S','o','m','e',' ','W','i','l','d',' ','S','t','r','i','n','g',0};
199 WCHAR *teststring2;
200 UNICODE_STRING uni;
201 NTSTATUS result;
202
203 if (!pRtlInitUnicodeStringEx)
204 {
205 win_skip("RtlInitUnicodeStringEx is not available\n");
206 return;
207 }
208
209 teststring2 = HeapAlloc(GetProcessHeap(), 0, (TESTSTRING2_LEN + 1) * sizeof(WCHAR));
210 memset(teststring2, 'X', TESTSTRING2_LEN * sizeof(WCHAR));
211 teststring2[TESTSTRING2_LEN] = '\0';
212
213 uni.Length = 12345;
214 uni.MaximumLength = 12345;
215 uni.Buffer = (void *) 0xdeadbeef;
216 result = pRtlInitUnicodeStringEx(&uni, teststring);
217 ok(result == STATUS_SUCCESS,
218 "pRtlInitUnicodeStringEx(&uni, 0) returns %x, expected 0\n",
219 result);
220 ok(uni.Length == 32,
221 "pRtlInitUnicodeStringEx(&uni, 0) sets Length to %u, expected %u\n",
222 uni.Length, 32);
223 ok(uni.MaximumLength == 34,
224 "pRtlInitUnicodeStringEx(&uni, 0) sets MaximumLength to %u, expected %u\n",
225 uni.MaximumLength, 34);
226 ok(uni.Buffer == teststring,
227 "pRtlInitUnicodeStringEx(&uni, 0) sets Buffer to %p, expected %p\n",
228 uni.Buffer, teststring);
229
230 uni.Length = 12345;
231 uni.MaximumLength = 12345;
232 uni.Buffer = (void *) 0xdeadbeef;
233 pRtlInitUnicodeString(&uni, teststring);
234 ok(uni.Length == 32,
235 "pRtlInitUnicodeString(&uni, 0) sets Length to %u, expected %u\n",
236 uni.Length, 32);
237 ok(uni.MaximumLength == 34,
238 "pRtlInitUnicodeString(&uni, 0) sets MaximumLength to %u, expected %u\n",
239 uni.MaximumLength, 34);
240 ok(uni.Buffer == teststring,
241 "pRtlInitUnicodeString(&uni, 0) sets Buffer to %p, expected %p\n",
242 uni.Buffer, teststring);
243
244 uni.Length = 12345;
245 uni.MaximumLength = 12345;
246 uni.Buffer = (void *) 0xdeadbeef;
247 result = pRtlInitUnicodeStringEx(&uni, teststring2);
248 ok(result == STATUS_NAME_TOO_LONG,
249 "pRtlInitUnicodeStringEx(&uni, 0) returns %x, expected %x\n",
250 result, STATUS_NAME_TOO_LONG);
251 ok(uni.Length == 12345 ||
252 uni.Length == 0, /* win2k3 */
253 "pRtlInitUnicodeStringEx(&uni, 0) sets Length to %u, expected 12345 or 0\n",
254 uni.Length);
255 ok(uni.MaximumLength == 12345 ||
256 uni.MaximumLength == 0, /* win2k3 */
257 "pRtlInitUnicodeStringEx(&uni, 0) sets MaximumLength to %u, expected 12345 or 0\n",
258 uni.MaximumLength);
259 ok(uni.Buffer == (void *) 0xdeadbeef ||
260 uni.Buffer == teststring2, /* win2k3 */
261 "pRtlInitUnicodeStringEx(&uni, 0) sets Buffer to %p, expected %x or %p\n",
262 uni.Buffer, 0xdeadbeef, teststring2);
263
264 uni.Length = 12345;
265 uni.MaximumLength = 12345;
266 uni.Buffer = (void *) 0xdeadbeef;
267 pRtlInitUnicodeString(&uni, teststring2);
268 ok(uni.Length == 33920 /* <= Win2000 */ || uni.Length == 65532 /* >= Win XP */,
269 "pRtlInitUnicodeString(&uni, 0) sets Length to %u, expected %u\n",
270 uni.Length, 65532);
271 ok(uni.MaximumLength == 33922 /* <= Win2000 */ || uni.MaximumLength == 65534 /* >= Win XP */,
272 "pRtlInitUnicodeString(&uni, 0) sets MaximumLength to %u, expected %u\n",
273 uni.MaximumLength, 65534);
274 ok(uni.Buffer == teststring2,
275 "pRtlInitUnicodeString(&uni, 0) sets Buffer to %p, expected %p\n",
276 uni.Buffer, teststring2);
277 ok(memcmp(uni.Buffer, teststring2, (TESTSTRING2_LEN + 1) * sizeof(WCHAR)) == 0,
278 "pRtlInitUnicodeString(&uni, 0) changes Buffer\n");
279
280 uni.Length = 12345;
281 uni.MaximumLength = 12345;
282 uni.Buffer = (void *) 0xdeadbeef;
283 result = pRtlInitUnicodeStringEx(&uni, 0);
284 ok(result == STATUS_SUCCESS,
285 "pRtlInitUnicodeStringEx(&uni, 0) returns %x, expected 0\n",
286 result);
287 ok(uni.Length == 0,
288 "pRtlInitUnicodeStringEx(&uni, 0) sets Length to %u, expected %u\n",
289 uni.Length, 0);
290 ok(uni.MaximumLength == 0,
291 "pRtlInitUnicodeStringEx(&uni, 0) sets MaximumLength to %u, expected %u\n",
292 uni.MaximumLength, 0);
293 ok(uni.Buffer == NULL,
294 "pRtlInitUnicodeStringEx(&uni, 0) sets Buffer to %p, expected %p\n",
295 uni.Buffer, NULL);
296
297 uni.Length = 12345;
298 uni.MaximumLength = 12345;
299 uni.Buffer = (void *) 0xdeadbeef;
300 pRtlInitUnicodeString(&uni, 0);
301 ok(uni.Length == 0,
302 "pRtlInitUnicodeString(&uni, 0) sets Length to %u, expected %u\n",
303 uni.Length, 0);
304 ok(uni.MaximumLength == 0,
305 "pRtlInitUnicodeString(&uni, 0) sets MaximumLength to %u, expected %u\n",
306 uni.MaximumLength, 0);
307 ok(uni.Buffer == NULL,
308 "pRtlInitUnicodeString(&uni, 0) sets Buffer to %p, expected %p\n",
309 uni.Buffer, NULL);
310
311 HeapFree(GetProcessHeap(), 0, teststring2);
312 }
313
314
315 typedef struct {
316 int add_nul;
317 int source_Length;
318 int source_MaximumLength;
319 int source_buf_size;
320 const char *source_buf;
321 int dest_Length;
322 int dest_MaximumLength;
323 int dest_buf_size;
324 const char *dest_buf;
325 int res_Length;
326 int res_MaximumLength;
327 int res_buf_size;
328 const char *res_buf;
329 NTSTATUS result;
330 } dupl_ustr_t;
331
332 static const dupl_ustr_t dupl_ustr[] = {
333 { 0, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 32, 32, 32, "This is a string", STATUS_SUCCESS},
334 { 0, 32, 32, 32, "This is a string", 40, 42, 42, "--------------------", 32, 32, 32, "This is a string", STATUS_SUCCESS},
335 { 0, 32, 30, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
336 { 0, 32, 34, 34, "This is a string", 40, 42, 42, NULL, 32, 32, 32, "This is a string", STATUS_SUCCESS},
337 { 0, 32, 32, 32, "This is a string", 40, 42, 42, NULL, 32, 32, 32, "This is a string", STATUS_SUCCESS},
338 { 0, 32, 30, 34, "This is a string", 40, 42, 42, NULL, 40, 42, 0, NULL, STATUS_INVALID_PARAMETER},
339 { 1, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 32, 34, 34, "This is a string", STATUS_SUCCESS},
340 { 1, 32, 32, 32, "This is a string", 40, 42, 42, "--------------------", 32, 34, 34, "This is a string", STATUS_SUCCESS},
341 { 1, 32, 30, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
342 { 1, 32, 34, 34, "This is a string", 40, 42, 42, NULL, 32, 34, 34, "This is a string", STATUS_SUCCESS},
343 { 1, 32, 32, 32, "This is a string", 40, 42, 42, NULL, 32, 34, 34, "This is a string", STATUS_SUCCESS},
344 { 1, 32, 30, 34, "This is a string", 40, 42, 42, NULL, 40, 42, 0, NULL, STATUS_INVALID_PARAMETER},
345 { 2, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
346 { 2, 32, 32, 32, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
347 { 2, 32, 30, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
348 { 2, 32, 34, 34, "This is a string", 40, 42, 42, NULL, 40, 42, 0, NULL, STATUS_INVALID_PARAMETER},
349 { 2, 32, 32, 32, "This is a string", 40, 42, 42, NULL, 40, 42, 0, NULL, STATUS_INVALID_PARAMETER},
350 { 2, 32, 30, 34, "This is a string", 40, 42, 42, NULL, 40, 42, 0, NULL, STATUS_INVALID_PARAMETER},
351 { 3, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 32, 34, 34, "This is a string", STATUS_SUCCESS},
352 { 3, 32, 32, 32, "This is a string", 40, 42, 42, "--------------------", 32, 34, 34, "This is a string", STATUS_SUCCESS},
353 { 3, 32, 30, 32, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
354 { 3, 32, 34, 34, "This is a string", 40, 42, 42, NULL, 32, 34, 34, "This is a string", STATUS_SUCCESS},
355 { 3, 32, 32, 32, "This is a string", 40, 42, 42, NULL, 32, 34, 34, "This is a string", STATUS_SUCCESS},
356 { 3, 32, 30, 32, "This is a string", 40, 42, 42, NULL, 40, 42, 0, NULL, STATUS_INVALID_PARAMETER},
357 { 4, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
358 { 5, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
359 { 6, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
360 { 7, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
361 { 8, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
362 { 9, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
363 {10, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
364 {11, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
365 {12, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
366 {13, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
367 {14, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
368 {15, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
369 {16, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
370 {-1, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
371 {-5, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
372 {-9, 32, 34, 34, "This is a string", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
373 { 0, 0, 2, 2, "", 40, 42, 42, "--------------------", 0, 0, 0, NULL, STATUS_SUCCESS},
374 { 0, 0, 0, 0, "", 40, 42, 42, "--------------------", 0, 0, 0, NULL, STATUS_SUCCESS},
375 { 0, 0, 2, 2, "", 40, 42, 42, NULL, 0, 0, 0, NULL, STATUS_SUCCESS},
376 { 0, 0, 0, 0, "", 40, 42, 42, NULL, 0, 0, 0, NULL, STATUS_SUCCESS},
377 { 0, 0, 2, 2, NULL, 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
378 { 0, 0, 0, 0, NULL, 40, 42, 42, "--------------------", 0, 0, 0, NULL, STATUS_SUCCESS},
379 { 0, 0, 2, 2, NULL, 40, 42, 42, NULL, 40, 42, 0, NULL, STATUS_INVALID_PARAMETER},
380 { 0, 0, 0, 0, NULL, 40, 42, 42, NULL, 0, 0, 0, NULL, STATUS_SUCCESS},
381 { 1, 0, 2, 2, "", 40, 42, 42, "--------------------", 0, 0, 0, NULL, STATUS_SUCCESS},
382 { 1, 0, 0, 0, "", 40, 42, 42, "--------------------", 0, 0, 0, NULL, STATUS_SUCCESS},
383 { 1, 0, 2, 2, "", 40, 42, 42, NULL, 0, 0, 0, NULL, STATUS_SUCCESS},
384 { 1, 0, 0, 0, "", 40, 42, 42, NULL, 0, 0, 0, NULL, STATUS_SUCCESS},
385 { 1, 0, 2, 2, NULL, 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
386 { 1, 0, 0, 0, NULL, 40, 42, 42, "--------------------", 0, 0, 0, NULL, STATUS_SUCCESS},
387 { 1, 0, 2, 2, NULL, 40, 42, 42, NULL, 40, 42, 0, NULL, STATUS_INVALID_PARAMETER},
388 { 1, 0, 0, 0, NULL, 40, 42, 42, NULL, 0, 0, 0, NULL, STATUS_SUCCESS},
389 { 2, 0, 2, 2, "", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
390 { 2, 0, 0, 0, "", 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
391 { 2, 0, 2, 2, "", 40, 42, 42, NULL, 40, 42, 0, NULL, STATUS_INVALID_PARAMETER},
392 { 2, 0, 0, 0, "", 40, 42, 42, NULL, 40, 42, 0, NULL, STATUS_INVALID_PARAMETER},
393 { 2, 0, 2, 2, NULL, 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
394 { 2, 0, 0, 0, NULL, 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
395 { 2, 0, 2, 2, NULL, 40, 42, 42, NULL, 40, 42, 0, NULL, STATUS_INVALID_PARAMETER},
396 { 2, 0, 0, 0, NULL, 40, 42, 42, NULL, 40, 42, 0, NULL, STATUS_INVALID_PARAMETER},
397 { 3, 0, 2, 2, "", 40, 42, 42, "--------------------", 0, 2, 2, "", STATUS_SUCCESS},
398 { 3, 0, 0, 0, "", 40, 42, 42, "--------------------", 0, 2, 2, "", STATUS_SUCCESS},
399 { 3, 0, 2, 2, "", 40, 42, 42, NULL, 0, 2, 2, "", STATUS_SUCCESS},
400 { 3, 0, 0, 0, "", 40, 42, 42, NULL, 0, 2, 2, "", STATUS_SUCCESS},
401 { 3, 0, 2, 2, NULL, 40, 42, 42, "--------------------", 40, 42, 42, "--------------------", STATUS_INVALID_PARAMETER},
402 { 3, 0, 0, 0, NULL, 40, 42, 42, "--------------------", 0, 2, 2, "", STATUS_SUCCESS},
403 { 3, 0, 2, 2, NULL, 40, 42, 42, NULL, 40, 42, 0, NULL, STATUS_INVALID_PARAMETER},
404 { 3, 0, 0, 0, NULL, 40, 42, 42, NULL, 0, 2, 2, "", STATUS_SUCCESS},
405 };
406 #define NB_DUPL_USTR (sizeof(dupl_ustr)/sizeof(*dupl_ustr))
407
408
409 static void test_RtlDuplicateUnicodeString(void)
410 {
411 size_t pos;
412 WCHAR source_buf[257];
413 WCHAR dest_buf[257];
414 WCHAR res_buf[257];
415 UNICODE_STRING source_str;
416 UNICODE_STRING dest_str;
417 UNICODE_STRING res_str;
418 CHAR dest_ansi_buf[257];
419 STRING dest_ansi_str;
420 NTSTATUS result;
421 unsigned int test_num;
422
423 if (!pRtlDuplicateUnicodeString)
424 {
425 win_skip("RtlDuplicateUnicodeString is not available\n");
426 return;
427 }
428
429 for (test_num = 0; test_num < NB_DUPL_USTR; test_num++) {
430 source_str.Length = dupl_ustr[test_num].source_Length;
431 source_str.MaximumLength = dupl_ustr[test_num].source_MaximumLength;
432 if (dupl_ustr[test_num].source_buf != NULL) {
433 for (pos = 0; pos < dupl_ustr[test_num].source_buf_size/sizeof(WCHAR); pos++) {
434 source_buf[pos] = dupl_ustr[test_num].source_buf[pos];
435 }
436 source_str.Buffer = source_buf;
437 } else {
438 source_str.Buffer = NULL;
439 }
440 dest_str.Length = dupl_ustr[test_num].dest_Length;
441 dest_str.MaximumLength = dupl_ustr[test_num].dest_MaximumLength;
442 if (dupl_ustr[test_num].dest_buf != NULL) {
443 for (pos = 0; pos < dupl_ustr[test_num].dest_buf_size/sizeof(WCHAR); pos++) {
444 dest_buf[pos] = dupl_ustr[test_num].dest_buf[pos];
445 }
446 dest_str.Buffer = dest_buf;
447 } else {
448 dest_str.Buffer = NULL;
449 }
450 res_str.Length = dupl_ustr[test_num].res_Length;
451 res_str.MaximumLength = dupl_ustr[test_num].res_MaximumLength;
452 if (dupl_ustr[test_num].res_buf != NULL) {
453 for (pos = 0; pos < dupl_ustr[test_num].res_buf_size/sizeof(WCHAR); pos++) {
454 res_buf[pos] = dupl_ustr[test_num].res_buf[pos];
455 }
456 res_str.Buffer = res_buf;
457 } else {
458 res_str.Buffer = NULL;
459 }
460 result = pRtlDuplicateUnicodeString(dupl_ustr[test_num].add_nul, &source_str, &dest_str);
461 dest_ansi_str.Length = dest_str.Length / sizeof(WCHAR);
462 dest_ansi_str.MaximumLength = dest_ansi_str.Length + 1;
463 for (pos = 0; pos < dest_ansi_str.Length; pos++) {
464 dest_ansi_buf[pos] = (char)dest_buf[pos];
465 }
466 dest_ansi_buf[dest_ansi_str.Length] = '\0';
467 dest_ansi_str.Buffer = dest_ansi_buf;
468 ok(result == dupl_ustr[test_num].result,
469 "(test %d): RtlDuplicateUnicodeString(%d, source, dest) has result %x, expected %x\n",
470 test_num, dupl_ustr[test_num].add_nul, result, dupl_ustr[test_num].result);
471 ok(dest_str.Length == dupl_ustr[test_num].res_Length,
472 "(test %d): RtlDuplicateUnicodeString(%d, source, dest) destination has Length %d, expected %d\n",
473 test_num, dupl_ustr[test_num].add_nul, dest_str.Length, dupl_ustr[test_num].res_Length);
474 ok(dest_str.MaximumLength == dupl_ustr[test_num].res_MaximumLength,
475 "(test %d): RtlDuplicateUnicodeString(%d, source, dest) destination has MaximumLength %d, expected %d\n",
476 test_num, dupl_ustr[test_num].add_nul, dest_str.MaximumLength, dupl_ustr[test_num].res_MaximumLength);
477 if (result == STATUS_INVALID_PARAMETER) {
478 ok((dest_str.Buffer == NULL && res_str.Buffer == NULL) ||
479 dest_str.Buffer == dest_buf,
480 "(test %d): RtlDuplicateUnicodeString(%d, source, dest) destination buffer changed %p expected %p\n",
481 test_num, dupl_ustr[test_num].add_nul, dest_str.Buffer, dest_buf);
482 } else {
483 ok(dest_str.Buffer != dest_buf,
484 "(test %d): RtlDuplicateUnicodeString(%d, source, dest) has destination buffer unchanged %p\n",
485 test_num, dupl_ustr[test_num].add_nul, dest_str.Buffer);
486 }
487 if (dest_str.Buffer != NULL && dupl_ustr[test_num].res_buf != NULL) {
488 ok(memcmp(dest_str.Buffer, res_str.Buffer, dupl_ustr[test_num].res_buf_size) == 0,
489 "(test %d): RtlDuplicateUnicodeString(%d, source, dest) has destination \"%s\" expected \"%s\"\n",
490 test_num, dupl_ustr[test_num].add_nul, dest_ansi_str.Buffer, dupl_ustr[test_num].res_buf);
491 if(result == STATUS_SUCCESS) pRtlFreeUnicodeString(&dest_str);
492 } else {
493 ok(dest_str.Buffer == NULL && dupl_ustr[test_num].res_buf == NULL,
494 "(test %d): RtlDuplicateUnicodeString(%d, source, dest) has destination %p expected %p\n",
495 test_num, dupl_ustr[test_num].add_nul, dest_str.Buffer, dupl_ustr[test_num].res_buf);
496 }
497 }
498 }
499
500
501 static void test_RtlCopyString(void)
502 {
503 static const char teststring[] = "Some Wild String";
504 char deststring[] = " ";
505 STRING str;
506 STRING deststr;
507
508 pRtlInitString(&str, teststring);
509 pRtlInitString(&deststr, deststring);
510 pRtlCopyString(&deststr, &str);
511 ok(strncmp(str.Buffer, deststring, str.Length) == 0, "String not copied\n");
512 }
513
514
515 static void test_RtlUpperChar(void)
516 {
517 int ch;
518 int upper_ch;
519 int expected_upper_ch;
520 int byte_ch;
521
522 for (ch = -1; ch <= 1024; ch++) {
523 upper_ch = pRtlUpperChar(ch);
524 byte_ch = ch & 0xff;
525 if (byte_ch >= 'a' && byte_ch <= 'z') {
526 expected_upper_ch = (CHAR) (byte_ch - 'a' + 'A');
527 } else {
528 expected_upper_ch = (CHAR) byte_ch;
529 }
530 ok(upper_ch == expected_upper_ch,
531 "RtlUpperChar('%c'[=0x%x]) has result '%c'[=0x%x], expected '%c'[=0x%x]\n",
532 ch, ch, upper_ch, upper_ch, expected_upper_ch, expected_upper_ch);
533 }
534 }
535
536
537 static void test_RtlUpperString(void)
538 {
539 int i;
540 CHAR ch;
541 CHAR upper_ch;
542 char ascii_buf[257];
543 char result_buf[257];
544 char upper_buf[257];
545 STRING ascii_str;
546 STRING result_str;
547 STRING upper_str;
548
549 for (i = 0; i <= 255; i++) {
550 ch = (CHAR) i;
551 if (ch >= 'a' && ch <= 'z') {
552 upper_ch = ch - 'a' + 'A';
553 } else {
554 upper_ch = ch;
555 }
556 ascii_buf[i] = ch;
557 result_buf[i] = '\0';
558 upper_buf[i] = upper_ch;
559 }
560 ascii_buf[i] = '\0';
561 result_buf[i] = '\0';
562 upper_buf[i] = '\0';
563 ascii_str.Length = 256;
564 ascii_str.MaximumLength = 256;
565 ascii_str.Buffer = ascii_buf;
566 result_str.Length = 256;
567 result_str.MaximumLength = 256;
568 result_str.Buffer = result_buf;
569 upper_str.Length = 256;
570 upper_str.MaximumLength = 256;
571 upper_str.Buffer = upper_buf;
572
573 pRtlUpperString(&result_str, &ascii_str);
574 ok(memcmp(result_str.Buffer, upper_str.Buffer, 256) == 0,
575 "RtlUpperString does not work as expected\n");
576 }
577
578
579 static void test_RtlUpcaseUnicodeChar(void)
580 {
581 int i;
582 WCHAR ch;
583 WCHAR upper_ch;
584 WCHAR expected_upper_ch;
585
586 for (i = 0; i <= 255; i++) {
587 ch = (WCHAR) i;
588 upper_ch = pRtlUpcaseUnicodeChar(ch);
589 if (ch >= 'a' && ch <= 'z') {
590 expected_upper_ch = ch - 'a' + 'A';
591 } else if (ch >= 0xe0 && ch <= 0xfe && ch != 0xf7) {
592 expected_upper_ch = ch - 0x20;
593 } else if (ch == 0xff) {
594 expected_upper_ch = 0x178;
595 } else {
596 expected_upper_ch = ch;
597 }
598 ok(upper_ch == expected_upper_ch,
599 "RtlUpcaseUnicodeChar('%c'[=0x%x]) has result '%c'[=0x%x], expected: '%c'[=0x%x]\n",
600 ch, ch, upper_ch, upper_ch, expected_upper_ch, expected_upper_ch);
601 }
602 }
603
604
605 static void test_RtlUpcaseUnicodeString(void)
606 {
607 int i;
608 WCHAR ch;
609 WCHAR upper_ch;
610 WCHAR ascii_buf[257];
611 WCHAR result_buf[257];
612 WCHAR upper_buf[257];
613 UNICODE_STRING ascii_str;
614 UNICODE_STRING result_str;
615 UNICODE_STRING upper_str;
616
617 for (i = 0; i <= 255; i++) {
618 ch = (WCHAR) i;
619 if (ch >= 'a' && ch <= 'z') {
620 upper_ch = ch - 'a' + 'A';
621 } else if (ch >= 0xe0 && ch <= 0xfe && ch != 0xf7) {
622 upper_ch = ch - 0x20;
623 } else if (ch == 0xff) {
624 upper_ch = 0x178;
625 } else {
626 upper_ch = ch;
627 }
628 ascii_buf[i] = ch;
629 result_buf[i] = '\0';
630 upper_buf[i] = upper_ch;
631 }
632 ascii_buf[i] = '\0';
633 result_buf[i] = '\0';
634 upper_buf[i] = '\0';
635 ascii_str.Length = 512;
636 ascii_str.MaximumLength = 512;
637 ascii_str.Buffer = ascii_buf;
638 result_str.Length = 512;
639 result_str.MaximumLength = 512;
640 result_str.Buffer = result_buf;
641 upper_str.Length = 512;
642 upper_str.MaximumLength = 512;
643 upper_str.Buffer = upper_buf;
644
645 pRtlUpcaseUnicodeString(&result_str, &ascii_str, 0);
646 for (i = 0; i <= 255; i++) {
647 ok(result_str.Buffer[i] == upper_str.Buffer[i],
648 "RtlUpcaseUnicodeString works wrong: '%c'[=0x%x] is converted to '%c'[=0x%x], expected: '%c'[=0x%x]\n",
649 ascii_str.Buffer[i], ascii_str.Buffer[i],
650 result_str.Buffer[i], result_str.Buffer[i],
651 upper_str.Buffer[i], upper_str.Buffer[i]);
652 }
653 }
654
655
656 static void test_RtlDowncaseUnicodeString(void)
657 {
658 int i;
659 WCHAR ch;
660 WCHAR lower_ch;
661 WCHAR source_buf[1025];
662 WCHAR result_buf[1025];
663 WCHAR lower_buf[1025];
664 UNICODE_STRING source_str;
665 UNICODE_STRING result_str;
666 UNICODE_STRING lower_str;
667
668 for (i = 0; i < 1024; i++) {
669 ch = (WCHAR) i;
670 if (ch >= 'A' && ch <= 'Z') {
671 lower_ch = ch - 'A' + 'a';
672 } else if (ch >= 0xc0 && ch <= 0xde && ch != 0xd7) {
673 lower_ch = ch + 0x20;
674 } else if (ch >= 0x391 && ch <= 0x3ab && ch != 0x3a2) {
675 lower_ch = ch + 0x20;
676 } else {
677 switch (ch) {
678 case 0x178: lower_ch = 0xff; break;
679 case 0x181: lower_ch = 0x253; break;
680 case 0x186: lower_ch = 0x254; break;
681 case 0x189: lower_ch = 0x256; break;
682 case 0x18a: lower_ch = 0x257; break;
683 case 0x18e: lower_ch = 0x1dd; break;
684 case 0x18f: lower_ch = 0x259; break;
685 case 0x190: lower_ch = 0x25b; break;
686 case 0x193: lower_ch = 0x260; break;
687 case 0x194: lower_ch = 0x263; break;
688 case 0x196: lower_ch = 0x269; break;
689 case 0x197: lower_ch = 0x268; break;
690 case 0x19c: lower_ch = 0x26f; break;
691 case 0x19d: lower_ch = 0x272; break;
692 case 0x19f: lower_ch = 0x275; break;
693 case 0x1a9: lower_ch = 0x283; break;
694 case 0x1ae: lower_ch = 0x288; break;
695 case 0x1b1: lower_ch = 0x28a; break;
696 case 0x1b2: lower_ch = 0x28b; break;
697 case 0x1b7: lower_ch = 0x292; break;
698 case 0x1c4: lower_ch = 0x1c6; break;
699 case 0x1c7: lower_ch = 0x1c9; break;
700 case 0x1ca: lower_ch = 0x1cc; break;
701 case 0x1f1: lower_ch = 0x1f3; break;
702 case 0x386: lower_ch = 0x3ac; break;
703 case 0x388: lower_ch = 0x3ad; break;
704 case 0x389: lower_ch = 0x3ae; break;
705 case 0x38a: lower_ch = 0x3af; break;
706 case 0x38c: lower_ch = 0x3cc; break;
707 case 0x38e: lower_ch = 0x3cd; break;
708 case 0x38f: lower_ch = 0x3ce; break;
709 default: lower_ch = ch; break;
710 } /* switch */
711 }
712 source_buf[i] = ch;
713 result_buf[i] = '\0';
714 lower_buf[i] = lower_ch;
715 }
716 source_buf[i] = '\0';
717 result_buf[i] = '\0';
718 lower_buf[i] = '\0';
719 source_str.Length = 2048;
720 source_str.MaximumLength = 2048;
721 source_str.Buffer = source_buf;
722 result_str.Length = 2048;
723 result_str.MaximumLength = 2048;
724 result_str.Buffer = result_buf;
725 lower_str.Length = 2048;
726 lower_str.MaximumLength = 2048;
727 lower_str.Buffer = lower_buf;
728
729 pRtlDowncaseUnicodeString(&result_str, &source_str, 0);
730 for (i = 0; i <= 1024; i++) {
731 ok(result_str.Buffer[i] == lower_str.Buffer[i] || result_str.Buffer[i] == source_str.Buffer[i] + 1,
732 "RtlDowncaseUnicodeString works wrong: '%c'[=0x%x] is converted to '%c'[=0x%x], expected: '%c'[=0x%x]\n",
733 source_str.Buffer[i], source_str.Buffer[i],
734 result_str.Buffer[i], result_str.Buffer[i],
735 lower_str.Buffer[i], lower_str.Buffer[i]);
736 }
737 }
738
739
740 typedef struct {
741 int ansi_Length;
742 int ansi_MaximumLength;
743 int ansi_buf_size;
744 const char *ansi_buf;
745 int uni_Length;
746 int uni_MaximumLength;
747 int uni_buf_size;
748 const char *uni_buf;
749 BOOLEAN doalloc;
750 int res_Length;
751 int res_MaximumLength;
752 int res_buf_size;
753 const char *res_buf;
754 NTSTATUS result;
755 } ustr2astr_t;
756
757 static const ustr2astr_t ustr2astr[] = {
758 { 10, 12, 12, "------------", 0, 0, 0, "", TRUE, 0, 1, 1, "", STATUS_SUCCESS},
759 { 10, 12, 12, "------------", 12, 12, 12, "abcdef", TRUE, 6, 7, 7, "abcdef", STATUS_SUCCESS},
760 { 0, 2, 12, "------------", 12, 12, 12, "abcdef", TRUE, 6, 7, 7, "abcdef", STATUS_SUCCESS},
761 { 10, 12, 12, NULL, 12, 12, 12, "abcdef", TRUE, 6, 7, 7, "abcdef", STATUS_SUCCESS},
762 { 0, 0, 12, "------------", 12, 12, 12, "abcdef", FALSE, 6, 0, 0, "", STATUS_BUFFER_OVERFLOW},
763 { 0, 1, 12, "------------", 12, 12, 12, "abcdef", FALSE, 0, 1, 1, "", STATUS_BUFFER_OVERFLOW},
764 { 0, 2, 12, "------------", 12, 12, 12, "abcdef", FALSE, 1, 2, 2, "a", STATUS_BUFFER_OVERFLOW},
765 { 0, 3, 12, "------------", 12, 12, 12, "abcdef", FALSE, 2, 3, 3, "ab", STATUS_BUFFER_OVERFLOW},
766 { 0, 5, 12, "------------", 12, 12, 12, "abcdef", FALSE, 4, 5, 5, "abcd", STATUS_BUFFER_OVERFLOW},
767 { 8, 5, 12, "------------", 12, 12, 12, "abcdef", FALSE, 4, 5, 5, "abcd", STATUS_BUFFER_OVERFLOW},
768 { 8, 6, 12, "------------", 12, 12, 12, "abcdef", FALSE, 5, 6, 6, "abcde", STATUS_BUFFER_OVERFLOW},
769 { 8, 7, 12, "------------", 12, 12, 12, "abcdef", FALSE, 6, 7, 7, "abcdef", STATUS_SUCCESS},
770 { 8, 7, 12, "------------", 0, 12, 12, NULL, FALSE, 0, 7, 0, "", STATUS_SUCCESS},
771 #if 0
772 /* crashes on Japanese and Chinese XP */
773 { 0, 0, 12, NULL, 10, 10, 12, NULL, FALSE, 5, 0, 0, NULL, STATUS_BUFFER_OVERFLOW},
774 #endif
775 };
776 #define NB_USTR2ASTR (sizeof(ustr2astr)/sizeof(*ustr2astr))
777
778
779 static void test_RtlUnicodeStringToAnsiString(void)
780 {
781 size_t pos;
782 CHAR ansi_buf[257];
783 WCHAR uni_buf[257];
784 STRING ansi_str;
785 UNICODE_STRING uni_str;
786 NTSTATUS result;
787 unsigned int test_num;
788
789 for (test_num = 0; test_num < NB_USTR2ASTR; test_num++) {
790 ansi_str.Length = ustr2astr[test_num].ansi_Length;
791 ansi_str.MaximumLength = ustr2astr[test_num].ansi_MaximumLength;
792 if (ustr2astr[test_num].ansi_buf != NULL) {
793 memcpy(ansi_buf, ustr2astr[test_num].ansi_buf, ustr2astr[test_num].ansi_buf_size);
794 ansi_buf[ustr2astr[test_num].ansi_buf_size] = '\0';
795 ansi_str.Buffer = ansi_buf;
796 } else {
797 ansi_str.Buffer = NULL;
798 }
799 uni_str.Length = ustr2astr[test_num].uni_Length;
800 uni_str.MaximumLength = ustr2astr[test_num].uni_MaximumLength;
801 if (ustr2astr[test_num].uni_buf != NULL) {
802 for (pos = 0; pos < ustr2astr[test_num].uni_buf_size/sizeof(WCHAR); pos++) {
803 uni_buf[pos] = ustr2astr[test_num].uni_buf[pos];
804 }
805 uni_str.Buffer = uni_buf;
806 } else {
807 uni_str.Buffer = NULL;
808 }
809 result = pRtlUnicodeStringToAnsiString(&ansi_str, &uni_str, ustr2astr[test_num].doalloc);
810 ok(result == ustr2astr[test_num].result,
811 "(test %d): RtlUnicodeStringToAnsiString(ansi, uni, %d) has result %x, expected %x\n",
812 test_num, ustr2astr[test_num].doalloc, result, ustr2astr[test_num].result);
813 ok(ansi_str.Length == ustr2astr[test_num].res_Length,
814 "(test %d): RtlUnicodeStringToAnsiString(ansi, uni, %d) ansi has Length %d, expected %d\n",
815 test_num, ustr2astr[test_num].doalloc, ansi_str.Length, ustr2astr[test_num].res_Length);
816 ok(ansi_str.MaximumLength == ustr2astr[test_num].res_MaximumLength,
817 "(test %d): RtlUnicodeStringToAnsiString(ansi, uni, %d) ansi has MaximumLength %d, expected %d\n",
818 test_num, ustr2astr[test_num].doalloc, ansi_str.MaximumLength, ustr2astr[test_num].res_MaximumLength);
819 ok(memcmp(ansi_str.Buffer, ustr2astr[test_num].res_buf, ustr2astr[test_num].res_buf_size) == 0,
820 "(test %d): RtlUnicodeStringToAnsiString(ansi, uni, %d) has ansi \"%s\" expected \"%s\"\n",
821 test_num, ustr2astr[test_num].doalloc, ansi_str.Buffer, ustr2astr[test_num].res_buf);
822 if(result == STATUS_SUCCESS && ustr2astr[test_num].doalloc)
823 pRtlFreeAnsiString(&ansi_str);
824 }
825 }
826
827
828 typedef struct {
829 int dest_Length;
830 int dest_MaximumLength;
831 int dest_buf_size;
832 const char *dest_buf;
833 const char *src;
834 int res_Length;
835 int res_MaximumLength;
836 int res_buf_size;
837 const char *res_buf;
838 NTSTATUS result;
839 } app_asc2str_t;
840
841 static const app_asc2str_t app_asc2str[] = {
842 { 5, 12, 15, "TestS01234abcde", "tring", 10, 12, 15, "TestStringabcde", STATUS_SUCCESS},
843 { 5, 11, 15, "TestS01234abcde", "tring", 10, 11, 15, "TestStringabcde", STATUS_SUCCESS},
844 { 5, 10, 15, "TestS01234abcde", "tring", 10, 10, 15, "TestStringabcde", STATUS_SUCCESS},
845 { 5, 9, 15, "TestS01234abcde", "tring", 5, 9, 15, "TestS01234abcde", STATUS_BUFFER_TOO_SMALL},
846 { 5, 0, 15, "TestS01234abcde", "tring", 5, 0, 15, "TestS01234abcde", STATUS_BUFFER_TOO_SMALL},
847 { 5, 14, 15, "TestS01234abcde", "tring", 10, 14, 15, "TestStringabcde", STATUS_SUCCESS},
848 { 5, 14, 15, "TestS01234abcde", NULL, 5, 14, 15, "TestS01234abcde", STATUS_SUCCESS},
849 { 5, 14, 15, NULL, NULL, 5, 14, 15, NULL, STATUS_SUCCESS},
850 { 5, 12, 15, "Tst\0S01234abcde", "tr\0i", 7, 12, 15, "Tst\0Str234abcde", STATUS_SUCCESS},
851 };
852 #define NB_APP_ASC2STR (sizeof(app_asc2str)/sizeof(*app_asc2str))
853
854
855 static void test_RtlAppendAsciizToString(void)
856 {
857 CHAR dest_buf[257];
858 STRING dest_str;
859 NTSTATUS result;
860 unsigned int test_num;
861
862 for (test_num = 0; test_num < NB_APP_ASC2STR; test_num++) {
863 dest_str.Length = app_asc2str[test_num].dest_Length;
864 dest_str.MaximumLength = app_asc2str[test_num].dest_MaximumLength;
865 if (app_asc2str[test_num].dest_buf != NULL) {
866 memcpy(dest_buf, app_asc2str[test_num].dest_buf, app_asc2str[test_num].dest_buf_size);
867 dest_buf[app_asc2str[test_num].dest_buf_size] = '\0';
868 dest_str.Buffer = dest_buf;
869 } else {
870 dest_str.Buffer = NULL;
871 }
872 result = pRtlAppendAsciizToString(&dest_str, app_asc2str[test_num].src);
873 ok(result == app_asc2str[test_num].result,
874 "(test %d): RtlAppendAsciizToString(dest, src) has result %x, expected %x\n",
875 test_num, result, app_asc2str[test_num].result);
876 ok(dest_str.Length == app_asc2str[test_num].res_Length,
877 "(test %d): RtlAppendAsciizToString(dest, src) dest has Length %d, expected %d\n",
878 test_num, dest_str.Length, app_asc2str[test_num].res_Length);
879 ok(dest_str.MaximumLength == app_asc2str[test_num].res_MaximumLength,
880 "(test %d): RtlAppendAsciizToString(dest, src) dest has MaximumLength %d, expected %d\n",
881 test_num, dest_str.MaximumLength, app_asc2str[test_num].res_MaximumLength);
882 if (dest_str.Buffer == dest_buf) {
883 ok(memcmp(dest_buf, app_asc2str[test_num].res_buf, app_asc2str[test_num].res_buf_size) == 0,
884 "(test %d): RtlAppendAsciizToString(dest, src) has dest \"%s\" expected \"%s\"\n",
885 test_num, dest_buf, app_asc2str[test_num].res_buf);
886 } else {
887 ok(dest_str.Buffer == app_asc2str[test_num].res_buf,
888 "(test %d): RtlAppendAsciizToString(dest, src) dest has Buffer %p expected %p\n",
889 test_num, dest_str.Buffer, app_asc2str[test_num].res_buf);
890 }
891 }
892 }
893
894
895 typedef struct {
896 int dest_Length;
897 int dest_MaximumLength;
898 int dest_buf_size;
899 const char *dest_buf;
900 int src_Length;
901 int src_MaximumLength;
902 int src_buf_size;
903 const char *src_buf;
904 int res_Length;
905 int res_MaximumLength;
906 int res_buf_size;
907 const char *res_buf;
908 NTSTATUS result;
909 } app_str2str_t;
910
911 static const app_str2str_t app_str2str[] = {
912 { 5, 12, 15, "TestS01234abcde", 5, 5, 7, "tringZY", 10, 12, 15, "TestStringabcde", STATUS_SUCCESS},
913 { 5, 11, 15, "TestS01234abcde", 5, 5, 7, "tringZY", 10, 11, 15, "TestStringabcde", STATUS_SUCCESS},
914 { 5, 10, 15, "TestS01234abcde", 5, 5, 7, "tringZY", 10, 10, 15, "TestStringabcde", STATUS_SUCCESS},
915 { 5, 9, 15, "TestS01234abcde", 5, 5, 7, "tringZY", 5, 9, 15, "TestS01234abcde", STATUS_BUFFER_TOO_SMALL},
916 { 5, 0, 15, "TestS01234abcde", 0, 0, 7, "tringZY", 5, 0, 15, "TestS01234abcde", STATUS_SUCCESS},
917 { 5, 14, 15, "TestS01234abcde", 0, 0, 7, "tringZY", 5, 14, 15, "TestS01234abcde", STATUS_SUCCESS},
918 { 5, 14, 15, "TestS01234abcde", 0, 0, 7, NULL, 5, 14, 15, "TestS01234abcde", STATUS_SUCCESS},
919 { 5, 14, 15, NULL, 0, 0, 7, NULL, 5, 14, 15, NULL, STATUS_SUCCESS},
920 { 5, 12, 15, "Tst\0S01234abcde", 4, 4, 7, "tr\0iZY", 9, 12, 15, "Tst\0Str\0i4abcde", STATUS_SUCCESS},
921 };
922 #define NB_APP_STR2STR (sizeof(app_str2str)/sizeof(*app_str2str))
923
924
925 static void test_RtlAppendStringToString(void)
926 {
927 CHAR dest_buf[257];
928 CHAR src_buf[257];
929 STRING dest_str;
930 STRING src_str;
931 NTSTATUS result;
932 unsigned int test_num;
933
934 for (test_num = 0; test_num < NB_APP_STR2STR; test_num++) {
935 dest_str.Length = app_str2str[test_num].dest_Length;
936 dest_str.MaximumLength = app_str2str[test_num].dest_MaximumLength;
937 if (app_str2str[test_num].dest_buf != NULL) {
938 memcpy(dest_buf, app_str2str[test_num].dest_buf, app_str2str[test_num].dest_buf_size);
939 dest_buf[app_str2str[test_num].dest_buf_size] = '\0';
940 dest_str.Buffer = dest_buf;
941 } else {
942 dest_str.Buffer = NULL;
943 }
944 src_str.Length = app_str2str[test_num].src_Length;
945 src_str.MaximumLength = app_str2str[test_num].src_MaximumLength;
946 if (app_str2str[test_num].src_buf != NULL) {
947 memcpy(src_buf, app_str2str[test_num].src_buf, app_str2str[test_num].src_buf_size);
948 src_buf[app_str2str[test_num].src_buf_size] = '\0';
949 src_str.Buffer = src_buf;
950 } else {
951 src_str.Buffer = NULL;
952 }
953 result = pRtlAppendStringToString(&dest_str, &src_str);
954 ok(result == app_str2str[test_num].result,
955 "(test %d): RtlAppendStringToString(dest, src) has result %x, expected %x\n",
956 test_num, result, app_str2str[test_num].result);
957 ok(dest_str.Length == app_str2str[test_num].res_Length,
958 "(test %d): RtlAppendStringToString(dest, src) dest has Length %d, expected %d\n",
959 test_num, dest_str.Length, app_str2str[test_num].res_Length);
960 ok(dest_str.MaximumLength == app_str2str[test_num].res_MaximumLength,
961 "(test %d): RtlAppendStringToString(dest, src) dest has MaximumLength %d, expected %d\n",
962 test_num, dest_str.MaximumLength, app_str2str[test_num].res_MaximumLength);
963 if (dest_str.Buffer == dest_buf) {
964 ok(memcmp(dest_buf, app_str2str[test_num].res_buf, app_str2str[test_num].res_buf_size) == 0,
965 "(test %d): RtlAppendStringToString(dest, src) has dest \"%s\" expected \"%s\"\n",
966 test_num, dest_buf, app_str2str[test_num].res_buf);
967 } else {
968 ok(dest_str.Buffer == app_str2str[test_num].res_buf,
969 "(test %d): RtlAppendStringToString(dest, src) dest has Buffer %p expected %p\n",
970 test_num, dest_str.Buffer, app_str2str[test_num].res_buf);
971 }
972 }
973 }
974
975
976 typedef struct {
977 int dest_Length;
978 int dest_MaximumLength;
979 int dest_buf_size;
980 const char *dest_buf;
981 const char *src;
982 int res_Length;
983 int res_MaximumLength;
984 int res_buf_size;
985 const char *res_buf;
986 NTSTATUS result;
987 } app_uni2str_t;
988
989 static const app_uni2str_t app_uni2str[] = {
990 { 4, 12, 14, "Fake0123abcdef", "Ustr\0", 8, 12, 14, "FakeUstr\0\0cdef", STATUS_SUCCESS},
991 { 4, 11, 14, "Fake0123abcdef", "Ustr\0", 8, 11, 14, "FakeUstr\0\0cdef", STATUS_SUCCESS},
992 { 4, 10, 14, "Fake0123abcdef", "Ustr\0", 8, 10, 14, "FakeUstr\0\0cdef", STATUS_SUCCESS},
993 /* In the following test the native function writes beyond MaximumLength
994 * { 4, 9, 14, "Fake0123abcdef", "Ustr\0", 8, 9, 14, "FakeUstrabcdef", STATUS_SUCCESS},
995 */
996 { 4, 8, 14, "Fake0123abcdef", "Ustr\0", 8, 8, 14, "FakeUstrabcdef", STATUS_SUCCESS},
997 { 4, 7, 14, "Fake0123abcdef", "Ustr\0", 4, 7, 14, "Fake0123abcdef", STATUS_BUFFER_TOO_SMALL},
998 { 4, 0, 14, "Fake0123abcdef", "Ustr\0", 4, 0, 14, "Fake0123abcdef", STATUS_BUFFER_TOO_SMALL},
999 { 4, 14, 14, "Fake0123abcdef", "Ustr\0", 8, 14, 14, "FakeUstr\0\0cdef", STATUS_SUCCESS},
1000 { 4, 14, 14, "Fake0123abcdef", NULL, 4, 14, 14, "Fake0123abcdef", STATUS_SUCCESS},
1001 { 4, 14, 14, NULL, NULL, 4, 14, 14, NULL, STATUS_SUCCESS},
1002 { 4, 14, 14, "Fake0123abcdef", "U\0stri\0", 10, 14, 14, "FakeU\0stri\0\0ef", STATUS_SUCCESS},
1003 { 6, 14, 16, "Te\0\0stabcdefghij", "St\0\0ri", 8, 14, 16, "Te\0\0stSt\0\0efghij", STATUS_SUCCESS},
1004 };
1005 #define NB_APP_UNI2STR (sizeof(app_uni2str)/sizeof(*app_uni2str))
1006
1007
1008 static void test_RtlAppendUnicodeToString(void)
1009 {
1010 WCHAR dest_buf[257];
1011 UNICODE_STRING dest_str;
1012 NTSTATUS result;
1013 unsigned int test_num;
1014
1015 for (test_num = 0; test_num < NB_APP_UNI2STR; test_num++) {
1016 dest_str.Length = app_uni2str[test_num].dest_Length;
1017 dest_str.MaximumLength = app_uni2str[test_num].dest_MaximumLength;
1018 if (app_uni2str[test_num].dest_buf != NULL) {
1019 memcpy(dest_buf, app_uni2str[test_num].dest_buf, app_uni2str[test_num].dest_buf_size);
1020 dest_buf[app_uni2str[test_num].dest_buf_size/sizeof(WCHAR)] = '\0';
1021 dest_str.Buffer = dest_buf;
1022 } else {
1023 dest_str.Buffer = NULL;
1024 }
1025 result = pRtlAppendUnicodeToString(&dest_str, (LPCWSTR) app_uni2str[test_num].src);
1026 ok(result == app_uni2str[test_num].result,
1027 "(test %d): RtlAppendUnicodeToString(dest, src) has result %x, expected %x\n",
1028 test_num, result, app_uni2str[test_num].result);
1029 ok(dest_str.Length == app_uni2str[test_num].res_Length,
1030 "(test %d): RtlAppendUnicodeToString(dest, src) dest has Length %d, expected %d\n",
1031 test_num, dest_str.Length, app_uni2str[test_num].res_Length);
1032 ok(dest_str.MaximumLength == app_uni2str[test_num].res_MaximumLength,
1033 "(test %d): RtlAppendUnicodeToString(dest, src) dest has MaximumLength %d, expected %d\n",
1034 test_num, dest_str.MaximumLength, app_uni2str[test_num].res_MaximumLength);
1035 if (dest_str.Buffer == dest_buf) {
1036 ok(memcmp(dest_buf, app_uni2str[test_num].res_buf, app_uni2str[test_num].res_buf_size) == 0,
1037 "(test %d): RtlAppendUnicodeToString(dest, src) has dest \"%s\" expected \"%s\"\n",
1038 test_num, (char *) dest_buf, app_uni2str[test_num].res_buf);
1039 } else {
1040 ok(dest_str.Buffer == (WCHAR *) app_uni2str[test_num].res_buf,
1041 "(test %d): RtlAppendUnicodeToString(dest, src) dest has Buffer %p expected %p\n",
1042 test_num, dest_str.Buffer, app_uni2str[test_num].res_buf);
1043 }
1044 }
1045 }
1046
1047
1048 typedef struct {
1049 int dest_Length;
1050 int dest_MaximumLength;
1051 int dest_buf_size;
1052 const char *dest_buf;
1053 int src_Length;
1054 int src_MaximumLength;
1055 int src_buf_size;
1056 const char *src_buf;
1057 int res_Length;
1058 int res_MaximumLength;
1059 int res_buf_size;
1060 const char *res_buf;
1061 NTSTATUS result;
1062 } app_ustr2str_t;
1063
1064 static const app_ustr2str_t app_ustr2str[] = {
1065 { 4, 12, 14, "Fake0123abcdef", 4, 6, 8, "UstrZYXW", 8, 12, 14, "FakeUstr\0\0cdef", STATUS_SUCCESS},
1066 { 4, 11, 14, "Fake0123abcdef", 4, 6, 8, "UstrZYXW", 8, 11, 14, "FakeUstr\0\0cdef", STATUS_SUCCESS},
1067 { 4, 10, 14, "Fake0123abcdef", 4, 6, 8, "UstrZYXW", 8, 10, 14, "FakeUstr\0\0cdef", STATUS_SUCCESS},
1068 /* In the following test the native function writes beyond MaximumLength
1069 * { 4, 9, 14, "Fake0123abcdef", 4, 6, 8, "UstrZYXW", 8, 9, 14, "FakeUstrabcdef", STATUS_SUCCESS},
1070 */
1071 { 4, 8, 14, "Fake0123abcdef", 4, 6, 8, "UstrZYXW", 8, 8, 14, "FakeUstrabcdef", STATUS_SUCCESS},
1072 { 4, 7, 14, "Fake0123abcdef", 4, 6, 8, "UstrZYXW", 4, 7, 14, "Fake0123abcdef", STATUS_BUFFER_TOO_SMALL},
1073 { 4, 0, 14, "Fake0123abcdef", 0, 0, 8, "UstrZYXW", 4, 0, 14, "Fake0123abcdef", STATUS_SUCCESS},
1074 { 4, 14, 14, "Fake0123abcdef", 0, 0, 8, "UstrZYXW", 4, 14, 14, "Fake0123abcdef", STATUS_SUCCESS},
1075 { 4, 14, 14, "Fake0123abcdef", 0, 0, 8, NULL, 4, 14, 14, "Fake0123abcdef", STATUS_SUCCESS},
1076 { 4, 14, 14, NULL, 0, 0, 8, NULL, 4, 14, 14, NULL, STATUS_SUCCESS},
1077 { 6, 14, 16, "Te\0\0stabcdefghij", 6, 8, 8, "St\0\0riZY", 12, 14, 16, "Te\0\0stSt\0\0ri\0\0ij", STATUS_SUCCESS},
1078 };
1079 #define NB_APP_USTR2STR (sizeof(app_ustr2str)/sizeof(*app_ustr2str))
1080
1081
1082 static void test_RtlAppendUnicodeStringToString(void)
1083 {
1084 WCHAR dest_buf[257];
1085 WCHAR src_buf[257];
1086 UNICODE_STRING dest_str;
1087 UNICODE_STRING src_str;
1088 NTSTATUS result;
1089 unsigned int test_num;
1090
1091 for (test_num = 0; test_num < NB_APP_USTR2STR; test_num++) {
1092 dest_str.Length = app_ustr2str[test_num].dest_Length;
1093 dest_str.MaximumLength = app_ustr2str[test_num].dest_MaximumLength;
1094 if (app_ustr2str[test_num].dest_buf != NULL) {
1095 memcpy(dest_buf, app_ustr2str[test_num].dest_buf, app_ustr2str[test_num].dest_buf_size);
1096 dest_buf[app_ustr2str[test_num].dest_buf_size/sizeof(WCHAR)] = '\0';
1097 dest_str.Buffer = dest_buf;
1098 } else {
1099 dest_str.Buffer = NULL;
1100 }
1101 src_str.Length = app_ustr2str[test_num].src_Length;
1102 src_str.MaximumLength = app_ustr2str[test_num].src_MaximumLength;
1103 if (app_ustr2str[test_num].src_buf != NULL) {
1104 memcpy(src_buf, app_ustr2str[test_num].src_buf, app_ustr2str[test_num].src_buf_size);
1105 src_buf[app_ustr2str[test_num].src_buf_size/sizeof(WCHAR)] = '\0';
1106 src_str.Buffer = src_buf;
1107 } else {
1108 src_str.Buffer = NULL;
1109 }
1110 result = pRtlAppendUnicodeStringToString(&dest_str, &src_str);
1111 ok(result == app_ustr2str[test_num].result,
1112 "(test %d): RtlAppendStringToString(dest, src) has result %x, expected %x\n",
1113 test_num, result, app_ustr2str[test_num].result);
1114 ok(dest_str.Length == app_ustr2str[test_num].res_Length,
1115 "(test %d): RtlAppendStringToString(dest, src) dest has Length %d, expected %d\n",
1116 test_num, dest_str.Length, app_ustr2str[test_num].res_Length);
1117 ok(dest_str.MaximumLength == app_ustr2str[test_num].res_MaximumLength,
1118 "(test %d): RtlAppendStringToString(dest, src) dest has MaximumLength %d, expected %d\n",
1119 test_num, dest_str.MaximumLength, app_ustr2str[test_num].res_MaximumLength);
1120 if (dest_str.Buffer == dest_buf) {
1121 ok(memcmp(dest_buf, app_ustr2str[test_num].res_buf, app_ustr2str[test_num].res_buf_size) == 0,
1122 "(test %d): RtlAppendStringToString(dest, src) has dest \"%s\" expected \"%s\"\n",
1123 test_num, (char *) dest_buf, app_ustr2str[test_num].res_buf);
1124 } else {
1125 ok(dest_str.Buffer == (WCHAR *) app_ustr2str[test_num].res_buf,
1126 "(test %d): RtlAppendStringToString(dest, src) dest has Buffer %p expected %p\n",
1127 test_num, dest_str.Buffer, app_ustr2str[test_num].res_buf);
1128 }
1129 }
1130 }
1131
1132
1133 typedef struct {
1134 int flags;
1135 const char *main_str;
1136 const char *search_chars;
1137 USHORT pos;
1138 NTSTATUS result;
1139 } find_ch_in_ustr_t;
1140
1141 static const find_ch_in_ustr_t find_ch_in_ustr[] = {
1142 { 0, "Some Wild String", "S", 2, STATUS_SUCCESS},
1143 { 0, "This is a String", "String", 6, STATUS_SUCCESS},
1144 { 1, "This is a String", "String", 30, STATUS_SUCCESS},
1145 { 2, "This is a String", "String", 2, STATUS_SUCCESS},
1146 { 3, "This is a String", "String", 18, STATUS_SUCCESS},
1147 { 0, "This is a String", "Wild", 6, STATUS_SUCCESS},
1148 { 1, "This is a String", "Wild", 26, STATUS_SUCCESS},
1149 { 2, "This is a String", "Wild", 2, STATUS_SUCCESS},
1150 { 3, "This is a String", "Wild", 30, STATUS_SUCCESS},
1151 { 0, "abcdefghijklmnopqrstuvwxyz", "", 0, STATUS_NOT_FOUND},
1152 { 0, "abcdefghijklmnopqrstuvwxyz", "123", 0, STATUS_NOT_FOUND},
1153 { 0, "abcdefghijklmnopqrstuvwxyz", "a", 2, STATUS_SUCCESS},
1154 { 0, "abcdefghijklmnopqrstuvwxyz", "12a34", 2, STATUS_SUCCESS},
1155 { 0, "abcdefghijklmnopqrstuvwxyz", "12b34", 4, STATUS_SUCCESS},
1156 { 0, "abcdefghijklmnopqrstuvwxyz", "12y34", 50, STATUS_SUCCESS},
1157 { 0, "abcdefghijklmnopqrstuvwxyz", "12z34", 52, STATUS_SUCCESS},
1158 { 0, "abcdefghijklmnopqrstuvwxyz", "rvz", 36, STATUS_SUCCESS},
1159 { 0, "abcdefghijklmmlkjihgfedcba", "egik", 10, STATUS_SUCCESS},
1160 { 1, "abcdefghijklmnopqrstuvwxyz", "", 0, STATUS_NOT_FOUND},
1161 { 1, "abcdefghijklmnopqrstuvwxyz", "rvz", 50, STATUS_SUCCESS},
1162 { 1, "abcdefghijklmnopqrstuvwxyz", "ravy", 48, STATUS_SUCCESS},
1163 { 1, "abcdefghijklmnopqrstuvwxyz", "raxv", 46, STATUS_SUCCESS},
1164 { 2, "abcdefghijklmnopqrstuvwxyz", "", 2, STATUS_SUCCESS},
1165 { 2, "abcdefghijklmnopqrstuvwxyz", "rvz", 2, STATUS_SUCCESS},
1166 { 2, "abcdefghijklmnopqrstuvwxyz", "vaz", 4, STATUS_SUCCESS},
1167 { 2, "abcdefghijklmnopqrstuvwxyz", "ravbz", 6, STATUS_SUCCESS},
1168 { 3, "abcdefghijklmnopqrstuvwxyz", "", 50, STATUS_SUCCESS},
1169 { 3, "abcdefghijklmnopqrstuvwxyz", "123", 50, STATUS_SUCCESS},
1170 { 3, "abcdefghijklmnopqrstuvwxyz", "ahp", 50, STATUS_SUCCESS},
1171 { 3, "abcdefghijklmnopqrstuvwxyz", "rvz", 48, STATUS_SUCCESS},
1172 { 0, NULL, "abc", 0, STATUS_NOT_FOUND},
1173 { 1, NULL, "abc", 0, STATUS_NOT_FOUND},
1174 { 2, NULL, "abc", 0, STATUS_NOT_FOUND},
1175 { 3, NULL, "abc", 0, STATUS_NOT_FOUND},
1176 { 0, "abcdefghijklmnopqrstuvwxyz", NULL, 0, STATUS_NOT_FOUND},
1177 { 1, "abcdefghijklmnopqrstuvwxyz", NULL, 0, STATUS_NOT_FOUND},
1178 { 2, "abcdefghijklmnopqrstuvwxyz", NULL, 2, STATUS_SUCCESS},
1179 { 3, "abcdefghijklmnopqrstuvwxyz", NULL, 50, STATUS_SUCCESS},
1180 { 0, NULL, NULL, 0, STATUS_NOT_FOUND},
1181 { 1, NULL, NULL, 0, STATUS_NOT_FOUND},
1182 { 2, NULL, NULL, 0, STATUS_NOT_FOUND},
1183 { 3, NULL, NULL, 0, STATUS_NOT_FOUND},
1184 { 0, "abcdabcdabcdabcdabcdabcd", "abcd", 2, STATUS_SUCCESS},
1185 { 1, "abcdabcdabcdabcdabcdabcd", "abcd", 46, STATUS_SUCCESS},
1186 { 2, "abcdabcdabcdabcdabcdabcd", "abcd", 0, STATUS_NOT_FOUND},
1187 { 3, "abcdabcdabcdabcdabcdabcd", "abcd", 0, STATUS_NOT_FOUND},
1188 };
1189 #define NB_FIND_CH_IN_USTR (sizeof(find_ch_in_ustr)/sizeof(*find_ch_in_ustr))
1190
1191
1192 static void test_RtlFindCharInUnicodeString(void)
1193 {
1194 WCHAR main_str_buf[257];
1195 WCHAR search_chars_buf[257];
1196 UNICODE_STRING main_str;
1197 UNICODE_STRING search_chars;
1198 USHORT pos;
1199 NTSTATUS result;
1200 unsigned int idx;
1201 unsigned int test_num;
1202
1203 if (!pRtlFindCharInUnicodeString)
1204 {
1205 win_skip("RtlFindCharInUnicodeString is not available\n");
1206 return;
1207 }
1208
1209 for (test_num = 0; test_num < NB_FIND_CH_IN_USTR; test_num++) {
1210 if (find_ch_in_ustr[test_num].main_str != NULL) {
1211 main_str.Length = strlen(find_ch_in_ustr[test_num].main_str) * sizeof(WCHAR);
1212 main_str.MaximumLength = main_str.Length + sizeof(WCHAR);
1213 for (idx = 0; idx < main_str.Length / sizeof(WCHAR); idx++) {
1214 main_str_buf[idx] = find_ch_in_ustr[test_num].main_str[idx];
1215 }
1216 main_str.Buffer = main_str_buf;
1217 } else {
1218 main_str.Length = 0;
1219 main_str.MaximumLength = 0;
1220 main_str.Buffer = NULL;
1221 }
1222 if (find_ch_in_ustr[test_num].search_chars != NULL) {
1223 search_chars.Length = strlen(find_ch_in_ustr[test_num].search_chars) * sizeof(WCHAR);
1224 search_chars.MaximumLength = search_chars.Length + sizeof(WCHAR);
1225 for (idx = 0; idx < search_chars.Length / sizeof(WCHAR); idx++) {
1226 search_chars_buf[idx] = find_ch_in_ustr[test_num].search_chars[idx];
1227 }
1228 search_chars.Buffer = search_chars_buf;
1229 } else {
1230 search_chars.Length = 0;
1231 search_chars.MaximumLength = 0;
1232 search_chars.Buffer = NULL;
1233 }
1234 pos = 12345;
1235 result = pRtlFindCharInUnicodeString(find_ch_in_ustr[test_num].flags, &main_str, &search_chars, &pos);
1236 ok(result == find_ch_in_ustr[test_num].result,
1237 "(test %d): RtlFindCharInUnicodeString(%d, %s, %s, [out]) has result %x, expected %x\n",
1238 test_num, find_ch_in_ustr[test_num].flags,
1239 find_ch_in_ustr[test_num].main_str, find_ch_in_ustr[test_num].search_chars,
1240 result, find_ch_in_ustr[test_num].result);
1241 ok(pos == find_ch_in_ustr[test_num].pos,
1242 "(test %d): RtlFindCharInUnicodeString(%d, %s, %s, [out]) assigns %d to pos, expected %d\n",
1243 test_num, find_ch_in_ustr[test_num].flags,
1244 find_ch_in_ustr[test_num].main_str, find_ch_in_ustr[test_num].search_chars,
1245 pos, find_ch_in_ustr[test_num].pos);
1246 }
1247 }
1248
1249
1250 typedef struct {
1251 int base;
1252 const char *str;
1253 int value;
1254 NTSTATUS result, alternative;
1255 } str2int_t;
1256
1257 static const str2int_t str2int[] = {
1258 { 0, "1011101100", 1011101100, STATUS_SUCCESS},
1259 { 0, "1234567", 1234567, STATUS_SUCCESS},
1260 { 0, "-214", -214, STATUS_SUCCESS},
1261 { 0, "+214", 214, STATUS_SUCCESS}, /* The + sign is allowed also */
1262 { 0, "--214", 0, STATUS_SUCCESS}, /* Do not accept more than one sign */
1263 { 0, "-+214", 0, STATUS_SUCCESS},
1264 { 0, "++214", 0, STATUS_SUCCESS},
1265 { 0, "+-214", 0, STATUS_SUCCESS},
1266 { 0, "\001\002\003\00411", 11, STATUS_SUCCESS}, /* whitespace char 1 to 4 */
1267 { 0, "\005\006\007\01012", 12, STATUS_SUCCESS}, /* whitespace char 5 to 8 */
1268 { 0, "\011\012\013\01413", 13, STATUS_SUCCESS}, /* whitespace char 9 to 12 */
1269 { 0, "\015\016\017\02014", 14, STATUS_SUCCESS}, /* whitespace char 13 to 16 */
1270 { 0, "\021\022\023\02415", 15, STATUS_SUCCESS}, /* whitespace char 17 to 20 */
1271 { 0, "\025\026\027\03016", 16, STATUS_SUCCESS}, /* whitespace char 21 to 24 */
1272 { 0, "\031\032\033\03417", 17, STATUS_SUCCESS}, /* whitespace char 25 to 28 */
1273 { 0, "\035\036\037\04018", 18, STATUS_SUCCESS}, /* whitespace char 29 to 32 */
1274 { 0, " \n \r \t214", 214, STATUS_SUCCESS},
1275 { 0, " \n \r \t+214", 214, STATUS_SUCCESS}, /* Signs can be used after whitespace */
1276 { 0, " \n \r \t-214", -214, STATUS_SUCCESS},
1277 { 0, "+214 0", 214, STATUS_SUCCESS}, /* Space terminates the number */
1278 { 0, " 214.01", 214, STATUS_SUCCESS}, /* Decimal point not accepted */
1279 { 0, " 214,01", 214, STATUS_SUCCESS}, /* Decimal comma not accepted */
1280 { 0, "f81", 0, STATUS_SUCCESS},
1281 { 0, "0x12345", 0x12345, STATUS_SUCCESS}, /* Hex */
1282 { 0, "00x12345", 0, STATUS_SUCCESS},
1283 { 0, "0xx12345", 0, STATUS_SUCCESS},
1284 { 0, "1x34", 1, STATUS_SUCCESS},
1285 { 0, "-9999999999", -1410065407, STATUS_SUCCESS}, /* Big negative integer */
1286 { 0, "-2147483649", 2147483647, STATUS_SUCCESS}, /* Too small to fit in 32 Bits */
1287 { 0, "-2147483648", 0x80000000L, STATUS_SUCCESS}, /* Smallest negative integer */
1288 { 0, "-2147483647", -2147483647, STATUS_SUCCESS},
1289 { 0, "-1", -1, STATUS_SUCCESS},
1290 { 0, "0", 0, STATUS_SUCCESS},
1291 { 0, "1", 1, STATUS_SUCCESS},
1292 { 0, "2147483646", 2147483646, STATUS_SUCCESS},
1293 { 0, "2147483647", 2147483647, STATUS_SUCCESS}, /* Largest signed positive integer */
1294 { 0, "2147483648", 0x80000000L, STATUS_SUCCESS}, /* Positive int equal to smallest negative int */
1295 { 0, "2147483649", -2147483647, STATUS_SUCCESS},
1296 { 0, "4294967294", -2, STATUS_SUCCESS},
1297 { 0, "4294967295", -1, STATUS_SUCCESS}, /* Largest unsigned integer */
1298 { 0, "4294967296", 0, STATUS_SUCCESS}, /* Too big to fit in 32 Bits */
1299 { 0, "9999999999", 1410065407, STATUS_SUCCESS}, /* Big positive integer */
1300 { 0, "056789", 56789, STATUS_SUCCESS}, /* Leading zero and still decimal */
1301 { 0, "b1011101100", 0, STATUS_SUCCESS}, /* Binary (b-notation) */
1302 { 0, "-b1011101100", 0, STATUS_SUCCESS}, /* Negative Binary (b-notation) */
1303 { 0, "b10123456789", 0, STATUS_SUCCESS}, /* Binary with nonbinary digits (2-9) */
1304 { 0, "0b1011101100", 748, STATUS_SUCCESS}, /* Binary (0b-notation) */
1305 { 0, "-0b1011101100", -748, STATUS_SUCCESS}, /* Negative binary (0b-notation) */
1306 { 0, "0b10123456789", 5, STATUS_SUCCESS}, /* Binary with nonbinary digits (2-9) */
1307 { 0, "-0b10123456789", -5, STATUS_SUCCESS}, /* Negative binary with nonbinary digits (2-9) */
1308 { 0, "0b1", 1, STATUS_SUCCESS}, /* one digit binary */
1309 { 0, "0b2", 0, STATUS_SUCCESS}, /* empty binary */
1310 { 0, "0b", 0, STATUS_SUCCESS}, /* empty binary */
1311 { 0, "o1234567", 0, STATUS_SUCCESS}, /* Octal (o-notation) */
1312 { 0, "-o1234567", 0, STATUS_SUCCESS}, /* Negative Octal (o-notation) */
1313 { 0, "o56789", 0, STATUS_SUCCESS}, /* Octal with nonoctal digits (8 and 9) */
1314 { 0, "0o1234567", 01234567, STATUS_SUCCESS}, /* Octal (0o-notation) */
1315 { 0, "-0o1234567", -01234567, STATUS_SUCCESS}, /* Negative octal (0o-notation) */
1316 { 0, "0o56789", 0567, STATUS_SUCCESS}, /* Octal with nonoctal digits (8 and 9) */
1317 { 0, "-0o56789", -0567, STATUS_SUCCESS}, /* Negative octal with nonoctal digits (8 and 9) */
1318 { 0, "0o7", 7, STATUS_SUCCESS}, /* one digit octal */
1319 { 0, "0o8", 0, STATUS_SUCCESS}, /* empty octal */
1320 { 0, "0o", 0, STATUS_SUCCESS}, /* empty octal */
1321 { 0, "0d1011101100", 0, STATUS_SUCCESS}, /* explicit decimal with 0d */
1322 { 0, "x89abcdef", 0, STATUS_SUCCESS}, /* Hex with lower case digits a-f (x-notation) */
1323 { 0, "xFEDCBA00", 0, STATUS_SUCCESS}, /* Hex with upper case digits A-F (x-notation) */
1324 { 0, "-xFEDCBA00", 0, STATUS_SUCCESS}, /* Negative Hexadecimal (x-notation) */
1325 { 0, "0x89abcdef", 0x89abcdef, STATUS_SUCCESS}, /* Hex with lower case digits a-f (0x-notation) */
1326 { 0, "0xFEDCBA00", 0xFEDCBA00, STATUS_SUCCESS}, /* Hex with upper case digits A-F (0x-notation) */
1327 { 0, "-0xFEDCBA00", 19088896, STATUS_SUCCESS}, /* Negative Hexadecimal (0x-notation) */
1328 { 0, "0xabcdefgh", 0xabcdef, STATUS_SUCCESS}, /* Hex with illegal lower case digits (g-z) */
1329 { 0, "0xABCDEFGH", 0xABCDEF, STATUS_SUCCESS}, /* Hex with illegal upper case digits (G-Z) */
1330 { 0, "0xF", 0xf, STATUS_SUCCESS}, /* one digit hexadecimal */
1331 { 0, "0xG", 0, STATUS_SUCCESS}, /* empty hexadecimal */
1332 { 0, "0x", 0, STATUS_SUCCESS}, /* empty hexadecimal */
1333 { 0, "", 0, STATUS_SUCCESS, STATUS_INVALID_PARAMETER}, /* empty string */
1334 { 2, "1011101100", 748, STATUS_SUCCESS},
1335 { 2, "-1011101100", -748, STATUS_SUCCESS},
1336 { 2, "2", 0, STATUS_SUCCESS},
1337 { 2, "0b1011101100", 0, STATUS_SUCCESS},
1338 { 2, "0o1011101100", 0, STATUS_SUCCESS},
1339 { 2, "0d1011101100", 0, STATUS_SUCCESS},
1340 { 2, "0x1011101100", 0, STATUS_SUCCESS},
1341 { 2, "", 0, STATUS_SUCCESS, STATUS_INVALID_PARAMETER}, /* empty string */
1342 { 8, "1011101100", 136610368, STATUS_SUCCESS},
1343 { 8, "-1011101100", -136610368, STATUS_SUCCESS},
1344 { 8, "8", 0, STATUS_SUCCESS},
1345 { 8, "0b1011101100", 0, STATUS_SUCCESS},
1346 { 8, "0o1011101100", 0, STATUS_SUCCESS},
1347 { 8, "0d1011101100", 0, STATUS_SUCCESS},
1348 { 8, "0x1011101100", 0, STATUS_SUCCESS},
1349 { 8, "", 0, STATUS_SUCCESS, STATUS_INVALID_PARAMETER}, /* empty string */
1350 {10, "1011101100", 1011101100, STATUS_SUCCESS},
1351 {10, "-1011101100", -1011101100, STATUS_SUCCESS},
1352 {10, "0b1011101100", 0, STATUS_SUCCESS},
1353 {10, "0o1011101100", 0, STATUS_SUCCESS},
1354 {10, "0d1011101100", 0, STATUS_SUCCESS},
1355 {10, "0x1011101100", 0, STATUS_SUCCESS},
1356 {10, "o12345", 0, STATUS_SUCCESS}, /* Octal although base is 10 */
1357 {10, "", 0, STATUS_SUCCESS, STATUS_INVALID_PARAMETER}, /* empty string */
1358 {16, "1011101100", 286265600, STATUS_SUCCESS},
1359 {16, "-1011101100", -286265600, STATUS_SUCCESS},
1360 {16, "G", 0, STATUS_SUCCESS},
1361 {16, "g", 0, STATUS_SUCCESS},
1362 {16, "0b1011101100", 286265600, STATUS_SUCCESS},
1363 {16, "0o1011101100", 0, STATUS_SUCCESS},
1364 {16, "0d1011101100", 286265600, STATUS_SUCCESS},
1365 {16, "0x1011101100", 0, STATUS_SUCCESS},
1366 {16, "", 0, STATUS_SUCCESS, STATUS_INVALID_PARAMETER}, /* empty string */
1367 {20, "0", 0, STATUS_INVALID_PARAMETER}, /* illegal base */
1368 {-8, "0", 0, STATUS_INVALID_PARAMETER}, /* Negative base */
1369 /* { 0, NULL, 0, STATUS_SUCCESS}, */ /* NULL as string */
1370 };
1371 #define NB_STR2INT (sizeof(str2int)/sizeof(*str2int))
1372
1373
1374 static void test_RtlUnicodeStringToInteger(void)
1375 {
1376 unsigned int test_num;
1377 int value;
1378 NTSTATUS result;
1379 WCHAR *wstr;
1380 UNICODE_STRING uni;
1381
1382 for (test_num = 0; test_num < NB_STR2INT; test_num++) {
1383 wstr = AtoW(str2int[test_num].str);
1384 value = 0xdeadbeef;
1385 pRtlInitUnicodeString(&uni, wstr);
1386 result = pRtlUnicodeStringToInteger(&uni, str2int[test_num].base, &value);
1387 ok(result == str2int[test_num].result ||
1388 (str2int[test_num].alternative && result == str2int[test_num].alternative),
1389 "(test %d): RtlUnicodeStringToInteger(\"%s\", %d, [out]) has result %x, expected: %x (%x)\n",
1390 test_num, str2int[test_num].str, str2int[test_num].base, result,
1391 str2int[test_num].result, str2int[test_num].alternative);
1392 if (result == STATUS_SUCCESS)
1393 ok(value == str2int[test_num].value ||
1394 broken(str2int[test_num].str[0] == '\0' && str2int[test_num].base == 16), /* nt4 */
1395 "(test %d): RtlUnicodeStringToInteger(\"%s\", %d, [out]) assigns value %d, expected: %d\n",
1396 test_num, str2int[test_num].str, str2int[test_num].base, value, str2int[test_num].value);
1397 else
1398 ok(value == 0xdeadbeef || value == 0 /* vista */,
1399 "(test %d): RtlUnicodeStringToInteger(\"%s\", %d, [out]) assigns value %d, expected 0 or deadbeef\n",
1400 test_num, str2int[test_num].str, str2int[test_num].base, value);
1401 HeapFree(GetProcessHeap(), 0, wstr);
1402 }
1403
1404 wstr = AtoW(str2int[1].str);
1405 pRtlInitUnicodeString(&uni, wstr);
1406 result = pRtlUnicodeStringToInteger(&uni, str2int[1].base, NULL);
1407 ok(result == STATUS_ACCESS_VIOLATION,
1408 "call failed: RtlUnicodeStringToInteger(\"%s\", %d, NULL) has result %x\n",
1409 str2int[1].str, str2int[1].base, result);
1410 result = pRtlUnicodeStringToInteger(&uni, 20, NULL);
1411 ok(result == STATUS_INVALID_PARAMETER || result == STATUS_ACCESS_VIOLATION,
1412 "call failed: RtlUnicodeStringToInteger(\"%s\", 20, NULL) has result %x\n",
1413 str2int[1].str, result);
1414
1415 uni.Length = 10; /* Make Length shorter (5 WCHARS instead of 7) */
1416 result = pRtlUnicodeStringToInteger(&uni, str2int[1].base, &value);
1417 ok(result == STATUS_SUCCESS,
1418 "call failed: RtlUnicodeStringToInteger(\"12345\", %d, [out]) has result %x\n",
1419 str2int[1].base, result);
1420 ok(value == 12345,
1421 "didn't return expected value (test a): expected: %d, got: %d\n",
1422 12345, value);
1423
1424 uni.Length = 5; /* Use odd Length (2.5 WCHARS) */
1425 result = pRtlUnicodeStringToInteger(&uni, str2int[1].base, &value);
1426 ok(result == STATUS_SUCCESS || result == STATUS_INVALID_PARAMETER /* vista */,
1427 "call failed: RtlUnicodeStringToInteger(\"12\", %d, [out]) has result %x\n",
1428 str2int[1].base, result);
1429 if (result == STATUS_SUCCESS)
1430 ok(value == 12, "didn't return expected value (test b): expected: %d, got: %d\n", 12, value);
1431
1432 uni.Length = 2;
1433 result = pRtlUnicodeStringToInteger(&uni, str2int[1].base, &value);
1434 ok(result == STATUS_SUCCESS,
1435 "call failed: RtlUnicodeStringToInteger(\"1\", %d, [out]) has result %x\n",
1436 str2int[1].base, result);
1437 ok(value == 1,
1438 "didn't return expected value (test c): expected: %d, got: %d\n",
1439 1, value);
1440 /* w2k: uni.Length = 0 returns value 11234567 instead of 0 */
1441 HeapFree(GetProcessHeap(), 0, wstr);
1442 }
1443
1444
1445 static void test_RtlCharToInteger(void)
1446 {
1447 unsigned int test_num;
1448 int value;
1449 NTSTATUS result;
1450
1451 for (test_num = 0; test_num < NB_STR2INT; test_num++) {
1452 /* w2k skips a leading '\0' and processes the string after */
1453 if (str2int[test_num].str[0] != '\0') {
1454 value = 0xdeadbeef;
1455 result = pRtlCharToInteger(str2int[test_num].str, str2int[test_num].base, &value);
1456 ok(result == str2int[test_num].result ||
1457 (str2int[test_num].alternative && result == str2int[test_num].alternative),
1458 "(test %d): call failed: RtlCharToInteger(\"%s\", %d, [out]) has result %x, expected: %x (%x)\n",
1459 test_num, str2int[test_num].str, str2int[test_num].base, result,
1460 str2int[test_num].result, str2int[test_num].alternative);
1461 if (result == STATUS_SUCCESS)
1462 ok(value == str2int[test_num].value,
1463 "(test %d): call failed: RtlCharToInteger(\"%s\", %d, [out]) assigns value %d, expected: %d\n",
1464 test_num, str2int[test_num].str, str2int[test_num].base, value, str2int[test_num].value);
1465 else
1466 ok(value == 0 || value == 0xdeadbeef,
1467 "(test %d): call failed: RtlCharToInteger(\"%s\", %d, [out]) assigns value %d, expected 0 or deadbeef\n",
1468 test_num, str2int[test_num].str, str2int[test_num].base, value);
1469 }
1470 }
1471
1472 result = pRtlCharToInteger(str2int[1].str, str2int[1].base, NULL);
1473 ok(result == STATUS_ACCESS_VIOLATION,
1474 "call failed: RtlCharToInteger(\"%s\", %d, NULL) has result %x\n",
1475 str2int[1].str, str2int[1].base, result);
1476
1477 result = pRtlCharToInteger(str2int[1].str, 20, NULL);
1478 ok(result == STATUS_INVALID_PARAMETER,
1479 "call failed: RtlCharToInteger(\"%s\", 20, NULL) has result %x\n",
1480 str2int[1].str, result);
1481 }
1482
1483
1484 #define STRI_BUFFER_LENGTH 35
1485
1486 typedef struct {
1487 int base;
1488 ULONG value;
1489 USHORT Length;
1490 USHORT MaximumLength;
1491 const char *Buffer;
1492 NTSTATUS result;
1493 } int2str_t;
1494
1495 static const int2str_t int2str[] = {
1496 {10, 123, 3, 11, "123\0-------------------------------", STATUS_SUCCESS},
1497
1498 { 0, 0x80000000U, 10, 11, "2147483648\0------------------------", STATUS_SUCCESS}, /* min signed int */
1499 { 0, -2147483647, 10, 11, "2147483649\0------------------------", STATUS_SUCCESS},
1500 { 0, -2, 10, 11, "4294967294\0------------------------", STATUS_SUCCESS},
1501 { 0, -1, 10, 11, "4294967295\0------------------------", STATUS_SUCCESS},
1502 { 0, 0, 1, 11, "0\0---------------------------------", STATUS_SUCCESS},
1503 { 0, 1, 1, 11, "1\0---------------------------------", STATUS_SUCCESS},
1504 { 0, 12, 2, 11, "12\0--------------------------------", STATUS_SUCCESS},
1505 { 0, 123, 3, 11, "123\0-------------------------------", STATUS_SUCCESS},
1506 { 0, 1234, 4, 11, "1234\0------------------------------", STATUS_SUCCESS},
1507 { 0, 12345, 5, 11, "12345\0-----------------------------", STATUS_SUCCESS},
1508 { 0, 123456, 6, 11, "123456\0----------------------------", STATUS_SUCCESS},
1509 { 0, 1234567, 7, 11, "1234567\0---------------------------", STATUS_SUCCESS},
1510 { 0, 12345678, 8, 11, "12345678\0--------------------------", STATUS_SUCCESS},
1511 { 0, 123456789, 9, 11, "123456789\0-------------------------", STATUS_SUCCESS},
1512 { 0, 2147483646, 10, 11, "2147483646\0------------------------", STATUS_SUCCESS},
1513 { 0, 2147483647, 10, 11, "2147483647\0------------------------", STATUS_SUCCESS}, /* max signed int */
1514 { 0, 2147483648U, 10, 11, "2147483648\0------------------------", STATUS_SUCCESS}, /* uint = -max int */
1515 { 0, 2147483649U, 10, 11, "2147483649\0------------------------", STATUS_SUCCESS},
1516 { 0, 4294967294U, 10, 11, "4294967294\0------------------------", STATUS_SUCCESS},
1517 { 0, 4294967295U, 10, 11, "4294967295\0------------------------", STATUS_SUCCESS}, /* max unsigned int */
1518
1519 { 2, 0x80000000U, 32, 33, "10000000000000000000000000000000\0--", STATUS_SUCCESS}, /* min signed int */
1520 { 2, -2147483647, 32, 33, "10000000000000000000000000000001\0--", STATUS_SUCCESS},
1521 { 2, -2, 32, 33, "11111111111111111111111111111110\0--", STATUS_SUCCESS},
1522 { 2, -1, 32, 33, "11111111111111111111111111111111\0--", STATUS_SUCCESS},
1523 { 2, 0, 1, 33, "0\0---------------------------------", STATUS_SUCCESS},
1524 { 2, 1, 1, 33, "1\0---------------------------------", STATUS_SUCCESS},
1525 { 2, 10, 4, 33, "1010\0------------------------------", STATUS_SUCCESS},
1526 { 2, 100, 7, 33, "1100100\0---------------------------", STATUS_SUCCESS},
1527 { 2, 1000, 10, 33, "1111101000\0------------------------", STATUS_SUCCESS},
1528 { 2, 10000, 14, 33, "10011100010000\0--------------------", STATUS_SUCCESS},
1529 { 2, 32767, 15, 33, "111111111111111\0-------------------", STATUS_SUCCESS},
1530 /* { 2, 32768, 16, 33, "1000000000000000\0------------------", STATUS_SUCCESS}, broken on windows */
1531 /* { 2, 65535, 16, 33, "1111111111111111\0------------------", STATUS_SUCCESS}, broken on windows */
1532 { 2, 65536, 17, 33, "10000000000000000\0-----------------", STATUS_SUCCESS},
1533 { 2, 100000, 17, 33, "11000011010100000\0-----------------", STATUS_SUCCESS},
1534 { 2, 1000000, 20, 33, "11110100001001000000\0--------------", STATUS_SUCCESS},
1535 { 2, 10000000, 24, 33, "100110001001011010000000\0----------", STATUS_SUCCESS},
1536 { 2, 100000000, 27, 33, "101111101011110000100000000\0-------", STATUS_SUCCESS},
1537 { 2, 1000000000, 30, 33, "111011100110101100101000000000\0----", STATUS_SUCCESS},
1538 { 2, 1073741823, 30, 33, "111111111111111111111111111111\0----", STATUS_SUCCESS},
1539 { 2, 2147483646, 31, 33, "1111111111111111111111111111110\0---", STATUS_SUCCESS},
1540 { 2, 2147483647, 31, 33, "1111111111111111111111111111111\0---", STATUS_SUCCESS}, /* max signed int */
1541 { 2, 2147483648U, 32, 33, "10000000000000000000000000000000\0--", STATUS_SUCCESS}, /* uint = -max int */
1542 { 2, 2147483649U, 32, 33, "10000000000000000000000000000001\0--", STATUS_SUCCESS},
1543 { 2, 4294967294U, 32, 33, "11111111111111111111111111111110\0--", STATUS_SUCCESS},
1544 { 2, 4294967295U, 32, 33, "11111111111111111111111111111111\0--", STATUS_SUCCESS}, /* max unsigned int */
1545
1546 { 8, 0x80000000U, 11, 12, "20000000000\0-----------------------", STATUS_SUCCESS}, /* min signed int */
1547 { 8, -2147483647, 11, 12, "20000000001\0-----------------------", STATUS_SUCCESS},
1548 { 8, -2, 11, 12, "37777777776\0-----------------------", STATUS_SUCCESS},
1549 { 8, -1, 11, 12, "37777777777\0-----------------------", STATUS_SUCCESS},
1550 { 8, 0, 1, 12, "0\0---------------------------------", STATUS_SUCCESS},
1551 { 8, 1, 1, 12, "1\0---------------------------------", STATUS_SUCCESS},
1552 { 8, 2147483646, 11, 12, "17777777776\0-----------------------", STATUS_SUCCESS},
1553 { 8, 2147483647, 11, 12, "17777777777\0-----------------------", STATUS_SUCCESS}, /* max signed int */
1554 { 8, 2147483648U, 11, 12, "20000000000\0-----------------------", STATUS_SUCCESS}, /* uint = -max int */
1555 { 8, 2147483649U, 11, 12, "20000000001\0-----------------------", STATUS_SUCCESS},
1556 { 8, 4294967294U, 11, 12, "37777777776\0-----------------------", STATUS_SUCCESS},
1557 { 8, 4294967295U, 11, 12, "37777777777\0-----------------------", STATUS_SUCCESS}, /* max unsigned int */
1558
1559 {10, 0x80000000U, 10, 11, "2147483648\0------------------------", STATUS_SUCCESS}, /* min signed int */
1560 {10, -2147483647, 10, 11, "2147483649\0------------------------", STATUS_SUCCESS},
1561 {10, -2, 10, 11, "4294967294\0------------------------", STATUS_SUCCESS},
1562 {10, -1, 10, 11, "4294967295\0------------------------", STATUS_SUCCESS},
1563 {10, 0, 1, 11, "0\0---------------------------------", STATUS_SUCCESS},
1564 {10, 1, 1, 11, "1\0---------------------------------", STATUS_SUCCESS},
1565 {10, 2147483646, 10, 11, "2147483646\0------------------------", STATUS_SUCCESS},
1566 {10, 2147483647, 10, 11, "2147483647\0------------------------", STATUS_SUCCESS}, /* max signed int */
1567 {10, 2147483648U, 10, 11, "2147483648\0------------------------", STATUS_SUCCESS}, /* uint = -max int */
1568 {10, 2147483649U, 10, 11, "2147483649\0------------------------", STATUS_SUCCESS},
1569 {10, 4294967294U, 10, 11, "4294967294\0------------------------", STATUS_SUCCESS},
1570 {10, 4294967295U, 10, 11, "4294967295\0------------------------", STATUS_SUCCESS}, /* max unsigned int */
1571
1572 {16, 0x80000000U, 8, 9, "80000000\0--------------------------", STATUS_SUCCESS}, /* min signed int */
1573 {16, -2147483647, 8, 9, "80000001\0--------------------------", STATUS_SUCCESS},
1574 {16, -2, 8, 9, "FFFFFFFE\0--------------------------", STATUS_SUCCESS},
1575 {16, -1, 8, 9, "FFFFFFFF\0--------------------------", STATUS_SUCCESS},
1576 {16, 0, 1, 9, "0\0---------------------------------", STATUS_SUCCESS},
1577 {16, 1, 1, 9, "1\0---------------------------------", STATUS_SUCCESS},
1578 {16, 2147483646, 8, 9, "7FFFFFFE\0--------------------------", STATUS_SUCCESS},
1579 {16, 2147483647, 8, 9, "7FFFFFFF\0--------------------------", STATUS_SUCCESS}, /* max signed int */
1580 {16, 2147483648U, 8, 9, "80000000\0--------------------------", STATUS_SUCCESS}, /* uint = -max int */
1581 {16, 2147483649U, 8, 9, "80000001\0--------------------------", STATUS_SUCCESS},
1582 {16, 4294967294U, 8, 9, "FFFFFFFE\0--------------------------", STATUS_SUCCESS},
1583 {16, 4294967295U, 8, 9, "FFFFFFFF\0--------------------------", STATUS_SUCCESS}, /* max unsigned int */
1584
1585 /* { 2, 32768, 16, 17, "1000000000000000\0------------------", STATUS_SUCCESS}, broken on windows */
1586 /* { 2, 32768, 16, 16, "1000000000000000-------------------", STATUS_SUCCESS}, broken on windows */
1587 { 2, 65536, 17, 18, "10000000000000000\0-----------------", STATUS_SUCCESS},
1588 { 2, 65536, 17, 17, "10000000000000000------------------", STATUS_SUCCESS},
1589 { 2, 131072, 18, 19, "100000000000000000\0----------------", STATUS_SUCCESS},
1590 { 2, 131072, 18, 18, "100000000000000000-----------------", STATUS_SUCCESS},
1591 {16, 0xffffffff, 8, 9, "FFFFFFFF\0--------------------------", STATUS_SUCCESS},
1592 {16, 0xffffffff, 8, 8, "FFFFFFFF---------------------------", STATUS_SUCCESS}, /* No \0 term */
1593 {16, 0xffffffff, 8, 7, "-----------------------------------", STATUS_BUFFER_OVERFLOW}, /* Too short */
1594 {16, 0xa, 1, 2, "A\0---------------------------------", STATUS_SUCCESS},
1595 {16, 0xa, 1, 1, "A----------------------------------", STATUS_SUCCESS}, /* No \0 term */
1596 {16, 0, 1, 0, "-----------------------------------", STATUS_BUFFER_OVERFLOW},
1597 {20, 0xdeadbeef, 0, 9, "-----------------------------------", STATUS_INVALID_PARAMETER}, /* ill. base */
1598 {-8, 07654321, 0, 12, "-----------------------------------", STATUS_INVALID_PARAMETER}, /* neg. base */
1599 };
1600 #define NB_INT2STR (sizeof(int2str)/sizeof(*int2str))
1601
1602
1603 static void one_RtlIntegerToUnicodeString_test(int test_num, const int2str_t *int2str)
1604 {
1605 int pos;
1606 WCHAR expected_str_Buffer[STRI_BUFFER_LENGTH + 1];
1607 UNICODE_STRING expected_unicode_string;
1608 STRING expected_ansi_str;
1609 WCHAR str_Buffer[STRI_BUFFER_LENGTH + 1];
1610 UNICODE_STRING unicode_string;
1611 STRING ansi_str;
1612 NTSTATUS result;
1613
1614 for (pos = 0; pos < STRI_BUFFER_LENGTH; pos++) {
1615 expected_str_Buffer[pos] = int2str->Buffer[pos];
1616 }
1617 expected_unicode_string.Length = int2str->Length * sizeof(WCHAR);
1618 expected_unicode_string.MaximumLength = int2str->MaximumLength * sizeof(WCHAR);
1619 expected_unicode_string.Buffer = expected_str_Buffer;
1620 pRtlUnicodeStringToAnsiString(&expected_ansi_str, &expected_unicode_string, 1);
1621
1622 for (pos = 0; pos < STRI_BUFFER_LENGTH; pos++) {
1623 str_Buffer[pos] = '-';
1624 }
1625 unicode_string.Length = 0;
1626 unicode_string.MaximumLength = int2str->MaximumLength * sizeof(WCHAR);
1627 unicode_string.Buffer = str_Buffer;
1628
1629 result = pRtlIntegerToUnicodeString(int2str->value, int2str->base, &unicode_string);
1630 pRtlUnicodeStringToAnsiString(&ansi_str, &unicode_string, 1);
1631 if (result == STATUS_BUFFER_OVERFLOW) {
1632 /* On BUFFER_OVERFLOW the string Buffer should be unchanged */
1633 for (pos = 0; pos < STRI_BUFFER_LENGTH; pos++) {
1634 expected_str_Buffer[pos] = '-';
1635 }
1636 /* w2k: The native function has two reasons for BUFFER_OVERFLOW: */
1637 /* If the value is too large to convert: The Length is unchanged */
1638 /* If str is too small to hold the string: Set str->Length to the length */
1639 /* the string would have (which can be larger than the MaximumLength). */
1640 /* To allow all this in the tests we do the following: */
1641 if (expected_unicode_string.Length > 32 && unicode_string.Length == 0) {
1642 /* The value is too large to convert only triggered when testing native */
1643 expected_unicode_string.Length = 0;
1644 }
1645 } else {
1646 ok(result == int2str->result,
1647 "(test %d): RtlIntegerToUnicodeString(%u, %d, [out]) has result %x, expected: %x\n",
1648 test_num, int2str->value, int2str->base, result, int2str->result);
1649 if (result == STATUS_SUCCESS) {
1650 ok(unicode_string.Buffer[unicode_string.Length/sizeof(WCHAR)] == '\0',
1651 "(test %d): RtlIntegerToUnicodeString(%u, %d, [out]) string \"%s\" is not NULL terminated\n",
1652 test_num, int2str->value, int2str->base, ansi_str.Buffer);
1653 }
1654 }
1655 ok(memcmp(unicode_string.Buffer, expected_unicode_string.Buffer, STRI_BUFFER_LENGTH * sizeof(WCHAR)) == 0,
1656 "(test %d): RtlIntegerToUnicodeString(%u, %d, [out]) assigns string \"%s\", expected: \"%s\"\n",
1657 test_num, int2str->value, int2str->base, ansi_str.Buffer, expected_ansi_str.Buffer);
1658 ok(unicode_string.Length == expected_unicode_string.Length,
1659 "(test %d): RtlIntegerToUnicodeString(%u, %d, [out]) string has Length %d, expected: %d\n",
1660 test_num, int2str->value, int2str->base, unicode_string.Length, expected_unicode_string.Length);
1661 ok(unicode_string.MaximumLength == expected_unicode_string.MaximumLength,
1662 "(test %d): RtlIntegerToUnicodeString(%u, %d, [out]) string has MaximumLength %d, expected: %d\n",
1663 test_num, int2str->value, int2str->base, unicode_string.MaximumLength, expected_unicode_string.MaximumLength);
1664 pRtlFreeAnsiString(&expected_ansi_str);
1665 pRtlFreeAnsiString(&ansi_str);
1666 }
1667
1668
1669 static void test_RtlIntegerToUnicodeString(void)
1670 {
1671 size_t test_num;
1672
1673 for (test_num = 0; test_num < NB_INT2STR; test_num++)
1674 one_RtlIntegerToUnicodeString_test(test_num, &int2str[test_num]);
1675 }
1676
1677
1678 static void one_RtlIntegerToChar_test(int test_num, const int2str_t *int2str)
1679 {
1680 NTSTATUS result;
1681 char dest_str[STRI_BUFFER_LENGTH + 1];
1682
1683 memset(dest_str, '-', STRI_BUFFER_LENGTH);
1684 dest_str[STRI_BUFFER_LENGTH] = '\0';
1685 result = pRtlIntegerToChar(int2str->value, int2str->base, int2str->MaximumLength, dest_str);
1686 ok(result == int2str->result,
1687 "(test %d): RtlIntegerToChar(%u, %d, %d, [out]) has result %x, expected: %x\n",
1688 test_num, int2str->value, int2str->base, int2str->MaximumLength, result, int2str->result);
1689 ok(memcmp(dest_str, int2str->Buffer, STRI_BUFFER_LENGTH) == 0,
1690 "(test %d): RtlIntegerToChar(%u, %d, %d, [out]) assigns string \"%s\", expected: \"%s\"\n",
1691 test_num, int2str->value, int2str->base, int2str->MaximumLength, dest_str, int2str->Buffer);
1692 }
1693
1694
1695 static void test_RtlIntegerToChar(void)
1696 {
1697 NTSTATUS result;
1698 size_t test_num;
1699
1700 for (test_num = 0; test_num < NB_INT2STR; test_num++)
1701 one_RtlIntegerToChar_test(test_num, &int2str[test_num]);
1702
1703 result = pRtlIntegerToChar(int2str[0].value, 20, int2str[0].MaximumLength, NULL);
1704 ok(result == STATUS_INVALID_PARAMETER,
1705 "(test a): RtlIntegerToChar(%u, %d, %d, NULL) has result %x, expected: %x\n",
1706 int2str[0].value, 20, int2str[0].MaximumLength, result, STATUS_INVALID_PARAMETER);
1707
1708 result = pRtlIntegerToChar(int2str[0].value, 20, 0, NULL);
1709 ok(result == STATUS_INVALID_PARAMETER,
1710 "(test b): RtlIntegerToChar(%u, %d, %d, NULL) has result %x, expected: %x\n",
1711 int2str[0].value, 20, 0, result, STATUS_INVALID_PARAMETER);
1712
1713 result = pRtlIntegerToChar(int2str[0].value, int2str[0].base, 0, NULL);
1714 ok(result == STATUS_BUFFER_OVERFLOW,
1715 "(test c): RtlIntegerToChar(%u, %d, %d, NULL) has result %x, expected: %x\n",
1716 int2str[0].value, int2str[0].base, 0, result, STATUS_BUFFER_OVERFLOW);
1717
1718 result = pRtlIntegerToChar(int2str[0].value, int2str[0].base, int2str[0].MaximumLength, NULL);
1719 ok(result == STATUS_ACCESS_VIOLATION,
1720 "(test d): RtlIntegerToChar(%u, %d, %d, NULL) has result %x, expected: %x\n",
1721 int2str[0].value, int2str[0].base, int2str[0].MaximumLength, result, STATUS_ACCESS_VIOLATION);
1722 }
1723
1724 static void test_RtlIsTextUnicode(void)
1725 {
1726 char ascii[] = "A simple string";
1727 char false_positive[] = {0x41, 0x0a, 0x0d, 0x1d};
1728 WCHAR false_negative = 0x0d0a;
1729 WCHAR unicode[] = {'A',' ','U','n','i','c','o','d','e',' ','s','t','r','i','n','g',0};
1730 WCHAR unicode_no_controls[] = {'A','U','n','i','c','o','d','e','s','t','r','i','n','g',0};
1731 /* String with both byte-reversed and standard Unicode control characters. */
1732 WCHAR mixed_controls[] = {'\t',0x9000,0x0d00,'\n',0};
1733 WCHAR *be_unicode;
1734 WCHAR *be_unicode_no_controls;
1735 BOOLEAN res;
1736 int flags;
1737 int i;
1738
1739 if (!pRtlIsTextUnicode)
1740 {
1741 win_skip("RtlIsTextUnicode is not available\n");
1742 return;
1743 }
1744
1745 ok(!pRtlIsTextUnicode(ascii, sizeof(ascii), NULL), "ASCII text detected as Unicode\n");
1746
1747 res = pRtlIsTextUnicode(unicode, sizeof(unicode), NULL);
1748 ok(res ||
1749 broken(res == FALSE), /* NT4 */
1750 "Text should be Unicode\n");
1751
1752 ok(!pRtlIsTextUnicode(unicode, sizeof(unicode) - 1, NULL), "Text should be Unicode\n");
1753
1754 flags = IS_TEXT_UNICODE_UNICODE_MASK;
1755 ok(pRtlIsTextUnicode(unicode, sizeof(unicode), &flags), "Text should not pass a Unicode\n");
1756 ok(flags == (IS_TEXT_UNICODE_STATISTICS | IS_TEXT_UNICODE_CONTROLS),
1757 "Expected flags 0x6, obtained %x\n", flags);
1758
1759 flags = IS_TEXT_UNICODE_REVERSE_MASK;
1760 ok(!pRtlIsTextUnicode(unicode, sizeof(unicode), &flags), "Text should not pass reverse Unicode tests\n");
1761 ok(flags == 0, "Expected flags 0, obtained %x\n", flags);
1762
1763 flags = IS_TEXT_UNICODE_ODD_LENGTH;
1764 ok(!pRtlIsTextUnicode(unicode, sizeof(unicode) - 1, &flags), "Odd length test should have passed\n");
1765 ok(flags == IS_TEXT_UNICODE_ODD_LENGTH, "Expected flags 0x200, obtained %x\n", flags);
1766
1767 be_unicode = HeapAlloc(GetProcessHeap(), 0, sizeof(unicode) + sizeof(WCHAR));
1768 be_unicode[0] = 0xfffe;
1769 for (i = 0; i < sizeof(unicode)/sizeof(unicode[0]); i++)
1770 {
1771 be_unicode[i + 1] = (unicode[i] >> 8) | ((unicode[i] & 0xff) << 8);
1772 }
1773 ok(!pRtlIsTextUnicode(be_unicode, sizeof(unicode) + 2, NULL), "Reverse endian should not be Unicode\n");
1774 ok(!pRtlIsTextUnicode(&be_unicode[1], sizeof(unicode), NULL), "Reverse endian should not be Unicode\n");
1775
1776 flags = IS_TEXT_UNICODE_REVERSE_MASK;
1777 ok(!pRtlIsTextUnicode(&be_unicode[1], sizeof(unicode), &flags), "Reverse endian should be Unicode\n");
1778 todo_wine
1779 ok(flags == (IS_TEXT_UNICODE_REVERSE_ASCII16 | IS_TEXT_UNICODE_REVERSE_STATISTICS | IS_TEXT_UNICODE_REVERSE_CONTROLS),
1780 "Expected flags 0x70, obtained %x\n", flags);
1781
1782 flags = IS_TEXT_UNICODE_REVERSE_MASK;
1783 ok(!pRtlIsTextUnicode(be_unicode, sizeof(unicode) + 2, &flags), "Reverse endian should be Unicode\n");
1784 ok(flags == (IS_TEXT_UNICODE_REVERSE_CONTROLS | IS_TEXT_UNICODE_REVERSE_SIGNATURE),
1785 "Expected flags 0xc0, obtained %x\n", flags);
1786
1787 /* build byte reversed unicode string with no control chars */
1788 be_unicode_no_controls = HeapAlloc(GetProcessHeap(), 0, sizeof(unicode) + sizeof(WCHAR));
1789 ok(be_unicode_no_controls != NULL, "Expected HeapAlloc to succeed.\n");
1790 be_unicode_no_controls[0] = 0xfffe;
1791 for (i = 0; i < sizeof(unicode_no_controls)/sizeof(unicode_no_controls[0]); i++)
1792 be_unicode_no_controls[i + 1] = (unicode_no_controls[i] >> 8) | ((unicode_no_controls[i] & 0xff) << 8);
1793
1794
1795 /* The following tests verify that the tests for */
1796 /* IS_TEXT_UNICODE_CONTROLS and IS_TEXT_UNICODE_REVERSE_CONTROLS */
1797 /* are not mutually exclusive. Regardless of whether the strings */
1798 /* contain an indication of endianness, the tests are still */
1799 /* run if the flag is passed to (Rtl)IsTextUnicode. */
1800
1801 /* Test IS_TEXT_UNICODE_CONTROLS flag */
1802 flags = IS_TEXT_UNICODE_CONTROLS;
1803 ok(!pRtlIsTextUnicode(unicode_no_controls, sizeof(unicode_no_controls), &flags), "Test should not pass on Unicode string lacking control characters.\n");
1804 ok(flags == 0, "Expected flags 0x0, obtained %x\n", flags);
1805
1806 flags = IS_TEXT_UNICODE_CONTROLS;
1807 ok(!pRtlIsTextUnicode(be_unicode_no_controls, sizeof(unicode_no_controls), &flags), "Test should not pass on byte-reversed Unicode string lacking control characters.\n");
1808 ok(flags == 0, "Expected flags 0x0, obtained %x\n", flags);
1809
1810 flags = IS_TEXT_UNICODE_CONTROLS;
1811 ok(pRtlIsTextUnicode(unicode, sizeof(unicode), &flags), "Test should pass on Unicode string lacking control characters.\n");
1812 ok(flags == IS_TEXT_UNICODE_CONTROLS, "Expected flags 0x04, obtained %x\n", flags);
1813
1814 flags = IS_TEXT_UNICODE_CONTROLS;
1815 ok(!pRtlIsTextUnicode(be_unicode_no_controls, sizeof(unicode_no_controls) + 2, &flags),
1816 "Test should not pass with standard Unicode string.\n");
1817 ok(flags == 0, "Expected flags 0x0, obtained %x\n", flags);
1818
1819 flags = IS_TEXT_UNICODE_CONTROLS;
1820 ok(pRtlIsTextUnicode(mixed_controls, sizeof(mixed_controls), &flags), "Test should pass on a string containing control characters.\n");
1821 ok(flags == IS_TEXT_UNICODE_CONTROLS, "Expected flags 0x04, obtained %x\n", flags);
1822
1823 /* Test IS_TEXT_UNICODE_REVERSE_CONTROLS flag */
1824 flags = IS_TEXT_UNICODE_REVERSE_CONTROLS;
1825 ok(!pRtlIsTextUnicode(be_unicode_no_controls, sizeof(unicode_no_controls), &flags), "Test should not pass on Unicode string lacking control characters.\n");
1826 ok(flags == 0, "Expected flags 0x0, obtained %x\n", flags);
1827
1828 flags = IS_TEXT_UNICODE_REVERSE_CONTROLS;
1829 ok(!pRtlIsTextUnicode(unicode_no_controls, sizeof(unicode_no_controls), &flags), "Test should not pass on Unicode string lacking control characters.\n");
1830 ok(flags == 0, "Expected flags 0x0, obtained %x\n", flags);
1831
1832 flags = IS_TEXT_UNICODE_REVERSE_CONTROLS;
1833 ok(!pRtlIsTextUnicode(unicode, sizeof(unicode), &flags), "Test should not pass on Unicode string lacking control characters.\n");
1834 ok(flags == 0, "Expected flags 0x0, obtained %x\n", flags);
1835
1836 flags = IS_TEXT_UNICODE_REVERSE_CONTROLS;
1837 ok(!pRtlIsTextUnicode(be_unicode, sizeof(unicode) + 2, &flags),
1838 "Test should pass with byte-reversed Unicode string containing control characters.\n");
1839 ok(flags == IS_TEXT_UNICODE_REVERSE_CONTROLS, "Expected flags 0x40, obtained %x\n", flags);
1840
1841 flags = IS_TEXT_UNICODE_REVERSE_CONTROLS;
1842 ok(!pRtlIsTextUnicode(mixed_controls, sizeof(mixed_controls), &flags), "Test should pass on a string containing byte-reversed control characters.\n");
1843 ok(flags == IS_TEXT_UNICODE_REVERSE_CONTROLS, "Expected flags 0x40, obtained %x\n", flags);
1844
1845 /* Test with flags for both byte-reverse and standard Unicode characters */
1846 flags = IS_TEXT_UNICODE_CONTROLS | IS_TEXT_UNICODE_REVERSE_CONTROLS;
1847 ok(!pRtlIsTextUnicode(mixed_controls, sizeof(mixed_controls), &flags), "Test should pass on string containing both byte-reversed and standard control characters.\n");
1848 ok(flags == (IS_TEXT_UNICODE_CONTROLS | IS_TEXT_UNICODE_REVERSE_CONTROLS), "Expected flags 0x44, obtained %x\n", flags);
1849
1850 flags = IS_TEXT_UNICODE_STATISTICS;
1851 todo_wine ok(pRtlIsTextUnicode(false_positive, sizeof(false_positive), &flags), "Test should pass on false positive.\n");
1852
1853 ok(!pRtlIsTextUnicode(&false_negative, sizeof(false_negative), NULL), "Test should fail on 0x0d0a (MALAYALAM LETTER UU).\n");
1854
1855 HeapFree(GetProcessHeap(), 0, be_unicode);
1856 HeapFree(GetProcessHeap(), 0, be_unicode_no_controls);
1857 }
1858
1859 static const WCHAR szGuid[] = { '{','0','1','0','2','0','3','0','4','-',
1860 '0','5','0','6','-' ,'0','7','0','8','-','0','9','0','A','-',
1861 '0','B','0','C','0','D','0','E','0','F','0','A','}','\0' };
1862 static const WCHAR szGuid2[] = { '{','0','1','0','2','0','3','0','4','-',
1863 '0','5','0','6','-' ,'0','7','0','8','-','0','9','0','A','-',
1864 '0','B','0','C','0','D','0','E','0','F','0','A',']','\0' };
1865 DEFINE_GUID(IID_Endianness, 0x01020304, 0x0506, 0x0708, 0x09, 0x0A, 0x0B,
1866 0x0C, 0x0D, 0x0E, 0x0F, 0x0A);
1867
1868 static void test_RtlGUIDFromString(void)
1869 {
1870 GUID guid;
1871 UNICODE_STRING str;
1872 NTSTATUS ret;
1873
1874 if (!pRtlGUIDFromString)
1875 {
1876 win_skip("RtlGUIDFromString is not available\n");
1877 return;
1878 }
1879
1880 str.Length = str.MaximumLength = sizeof(szGuid) - sizeof(WCHAR);
1881 str.Buffer = (LPWSTR)szGuid;
1882
1883 ret = pRtlGUIDFromString(&str, &guid);
1884 ok(ret == 0, "expected ret=0, got 0x%0x\n", ret);
1885 ok(IsEqualGUID(&guid, &IID_Endianness), "Endianness broken\n");
1886
1887 str.Length = str.MaximumLength = sizeof(szGuid2) - sizeof(WCHAR);
1888 str.Buffer = (LPWSTR)szGuid2;
1889
1890 ret = pRtlGUIDFromString(&str, &guid);
1891 ok(ret, "expected ret!=0\n");
1892 }
1893
1894 static void test_RtlStringFromGUID(void)
1895 {
1896 UNICODE_STRING str;
1897 NTSTATUS ret;
1898
1899 if (!pRtlStringFromGUID)
1900 {
1901 win_skip("RtlStringFromGUID is not available\n");
1902 return;
1903 }
1904
1905 str.Length = str.MaximumLength = 0;
1906 str.Buffer = NULL;
1907
1908 ret = pRtlStringFromGUID(&IID_Endianness, &str);
1909 ok(ret == 0, "expected ret=0, got 0x%0x\n", ret);
1910 ok(str.Buffer && !lstrcmpiW(str.Buffer, szGuid), "Endianness broken\n");
1911 pRtlFreeUnicodeString(&str);
1912 }
1913
1914 struct hash_unicodestring_test {
1915 WCHAR str[50];
1916 BOOLEAN case_insensitive;
1917 ULONG hash;
1918 };
1919
1920 static const struct hash_unicodestring_test hash_test[] = {
1921 { {'T',0}, FALSE, 0x00000054 },
1922 { {'T','e','s','t',0}, FALSE, 0x766bb952 },
1923 { {'T','e','S','t',0}, FALSE, 0x764bb172 },
1924 { {'t','e','s','t',0}, FALSE, 0x4745d132 },
1925 { {'t','e','s','t',0}, TRUE, 0x6689c132 },
1926 { {'T','E','S','T',0}, TRUE, 0x6689c132 },
1927 { {'T','E','S','T',0}, FALSE, 0x6689c132 },
1928 { {'a','b','c','d','e','f',0}, FALSE, 0x971318c3 },
1929 { { 0 } }
1930 };
1931
1932 static void test_RtlHashUnicodeString(void)
1933 {
1934 static const WCHAR strW[] = {'T','e','s','t',0,'1',0};
1935 const struct hash_unicodestring_test *ptr;
1936 UNICODE_STRING str;
1937 NTSTATUS status;
1938 ULONG hash;
1939
1940 if (!pRtlHashUnicodeString)
1941 {
1942 win_skip("RtlHashUnicodeString is not available\n");
1943 return;
1944 }
1945
1946 status = pRtlHashUnicodeString(NULL, FALSE, HASH_STRING_ALGORITHM_X65599, &hash);
1947 ok(status == STATUS_INVALID_PARAMETER, "got status 0x%08x\n", status);
1948
1949 RtlInitUnicodeString(&str, strW);
1950 status = pRtlHashUnicodeString(&str, FALSE, HASH_STRING_ALGORITHM_X65599, NULL);
1951 ok(status == STATUS_INVALID_PARAMETER, "got status 0x%08x\n", status);
1952
1953 status = pRtlHashUnicodeString(&str, FALSE, HASH_STRING_ALGORITHM_INVALID, &hash);
1954 ok(status == STATUS_INVALID_PARAMETER, "got status 0x%08x\n", status);
1955
1956 /* embedded null */
1957 str.Buffer = (PWSTR)strW;
1958 str.Length = sizeof(strW) - sizeof(WCHAR);
1959 str.MaximumLength = sizeof(strW);
1960 status = pRtlHashUnicodeString(&str, FALSE, HASH_STRING_ALGORITHM_X65599, &hash);
1961 ok(status == STATUS_SUCCESS, "got status 0x%08x\n", status);
1962 ok(hash == 0x32803083, "got 0x%08x\n", hash);
1963
1964 ptr = hash_test;
1965 while (*ptr->str)
1966 {
1967 RtlInitUnicodeString(&str, ptr->str);
1968 hash = 0;
1969 status = pRtlHashUnicodeString(&str, ptr->case_insensitive, HASH_STRING_ALGORITHM_X65599, &hash);
1970 ok(status == STATUS_SUCCESS, "got status 0x%08x for %s\n", status, wine_dbgstr_w(ptr->str));
1971 ok(hash == ptr->hash, "got wrong hash 0x%08x, expected 0x%08x, for %s, mode %d\n", hash, ptr->hash,
1972 wine_dbgstr_w(ptr->str), ptr->case_insensitive);
1973
1974 ptr++;
1975 }
1976 }
1977
1978 struct unicode_to_utf8_test {
1979 WCHAR unicode[128];
1980 const char *expected;
1981 NTSTATUS status;
1982 };
1983
1984 static const struct unicode_to_utf8_test unicode_to_utf8[] = {
1985 { { 0 }, "", STATUS_SUCCESS },
1986 { { '-',0 }, "-", STATUS_SUCCESS },
1987 { { 'h','e','l','l','o',0 }, "hello", STATUS_SUCCESS },
1988 { { '-',0x7f,'-',0x80,'-',0xff,'-',0x100,'-',0 }, "-\x7F-\xC2\x80-\xC3\xBF-\xC4\x80-", STATUS_SUCCESS },
1989 { { '-',0x7ff,'-',0x800,'-',0 }, "-\xDF\xBF-\xE0\xA0\x80-", STATUS_SUCCESS },
1990 { { '-',0xd7ff,'-',0xe000,'-',0 }, "-\xED\x9F\xBF-\xEE\x80\x80-", STATUS_SUCCESS },
1991 /* 0x10000 */
1992 { { '-',0xffff,'-',0xd800,0xdc00,'-',0 }, "-\xEF\xBF\xBF-\xF0\x90\x80\x80-", STATUS_SUCCESS },
1993 /* 0x103ff */ /* 0x10400 */
1994 { { '-',0xd800,0xdfff,'-',0xd801,0xdc00,'-',0 }, "-\xF0\x90\x8F\xBF-\xF0\x90\x90\x80-", STATUS_SUCCESS },
1995 /* 0x10ffff */
1996 { { '-',0xdbff,0xdfff,'-',0 }, "-\xF4\x8F\xBF\xBF-", STATUS_SUCCESS },
1997 /* standalone lead surrogates become 0xFFFD */
1998 { { '-',0xd800,'-',0xdbff,'-',0 }, "-\xEF\xBF\xBD-\xEF\xBF\xBD-", STATUS_SOME_NOT_MAPPED },
1999 /* standalone trail surrogates become 0xFFFD */
2000 { { '-',0xdc00,'-',0xdfff,'-',0 }, "-\xEF\xBF\xBD-\xEF\xBF\xBD-", STATUS_SOME_NOT_MAPPED },
2001 /* reverse surrogate pair */
2002 { { '-',0xdfff,0xdbff,'-',0 }, "-\xEF\xBF\xBD\xEF\xBF\xBD-", STATUS_SOME_NOT_MAPPED },
2003 /* byte order marks */
2004 { { '-',0xfeff,'-',0xfffe,'-',0 }, "-\xEF\xBB\xBF-\xEF\xBF\xBE-", STATUS_SUCCESS },
2005 { { 0xfeff,'-',0 }, "\xEF\xBB\xBF-", STATUS_SUCCESS },
2006 { { 0xfffe,'-',0 }, "\xEF\xBF\xBE-", STATUS_SUCCESS },
2007 /* invalid code point */
2008 { { 0xffff,'-',0 }, "\xEF\xBF\xBF-", STATUS_SUCCESS },
2009 /* canonically equivalent representations -- no normalization should happen */
2010 { { '-',0x1e09,'-',0 }, "-\xE1\xB8\x89-", STATUS_SUCCESS },
2011 { { '-',0x0107,0x0327,'-',0 }, "-\xC4\x87\xCC\xA7-", STATUS_SUCCESS },
2012 { { '-',0x00e7,0x0301,'-',0 }, "-\xC3\xA7\xCC\x81-", STATUS_SUCCESS },
2013 { { '-',0x0063,0x0327,0x0301,'-',0 }, "-\x63\xCC\xA7\xCC\x81-", STATUS_SUCCESS },
2014 { { '-',0x0063,0x0301,0x0327,'-',0 }, "-\x63\xCC\x81\xCC\xA7-", STATUS_SUCCESS },
2015 };
2016
2017 static void utf8_expect_(const unsigned char *out_string, ULONG buflen, ULONG out_bytes,
2018 const WCHAR *in_string, ULONG in_bytes,
2019 NTSTATUS expect_status, int line)
2020 {
2021 NTSTATUS status;
2022 ULONG bytes_out;
2023 char buffer[128];
2024 unsigned char *buf = (unsigned char *)buffer;
2025 unsigned int i;
2026
2027 if (buflen == (ULONG)-1)
2028 buflen = sizeof(buffer);
2029 bytes_out = 0x55555555;
2030 memset(buffer, 0x55, sizeof(buffer));
2031 status = pRtlUnicodeToUTF8N(
2032 out_string ? buffer : NULL, buflen, &bytes_out,
2033 in_string, in_bytes);
2034 ok_(__FILE__, line)(status == expect_status, "status = 0x%x\n", status);
2035 ok_(__FILE__, line)(bytes_out == out_bytes, "bytes_out = %u\n", bytes_out);
2036 if (out_string)
2037 {
2038 for (i = 0; i < bytes_out; i++)
2039 ok_(__FILE__, line)(buf[i] == out_string[i],
2040 "buffer[%d] = 0x%x, expected 0x%x\n",
2041 i, buf[i], out_string[i]);
2042 for (; i < sizeof(buffer); i++)
2043 ok_(__FILE__, line)(buf[i] == 0x55,
2044 "buffer[%d] = 0x%x, expected 0x55\n",
2045 i, buf[i]);
2046 }
2047 }
2048 #define utf8_expect(out_string, buflen, out_bytes, in_string, in_bytes, expect_status) \
2049 utf8_expect_(out_string, buflen, out_bytes, in_string, in_bytes, expect_status, __LINE__)
2050
2051 static void test_RtlUnicodeToUTF8N(void)
2052 {
2053 NTSTATUS status;
2054 ULONG bytes_out;
2055 ULONG bytes_out_array[2];
2056 void * const invalid_pointer = (void *)0x8;
2057 char buffer[128];
2058 const WCHAR empty_string[] = { 0 };
2059 const WCHAR test_string[] = { 'A',0,'a','b','c','d','e','f','g',0 };
2060 const WCHAR special_string[] = { 'X',0x80,0xd800,0 };
2061 const unsigned char special_expected[] = { 'X',0xc2,0x80,0xef,0xbf,0xbd,0 };
2062 unsigned int input_len;
2063 const unsigned int test_count = sizeof(unicode_to_utf8) / sizeof(unicode_to_utf8[0]);
2064 unsigned int i;
2065
2066 if (!pRtlUnicodeToUTF8N)
2067 {
2068 skip("RtlUnicodeToUTF8N unavailable\n");
2069 return;
2070 }
2071
2072 /* show that bytes_out is really ULONG */
2073 memset(bytes_out_array, 0x55, sizeof(bytes_out_array));
2074 status = pRtlUnicodeToUTF8N(NULL, 0, bytes_out_array, empty_string, 0);
2075 ok(status == STATUS_SUCCESS, "status = 0x%x\n", status);
2076 ok(bytes_out_array[0] == 0x00000000, "Got 0x%x\n", bytes_out_array[0]);
2077 ok(bytes_out_array[1] == 0x55555555, "Got 0x%x\n", bytes_out_array[1]);
2078
2079 /* parameter checks */
2080 status = pRtlUnicodeToUTF8N(NULL, 0, NULL, NULL, 0);
2081 ok(status == STATUS_INVALID_PARAMETER_4, "status = 0x%x\n", status);
2082
2083 status = pRtlUnicodeToUTF8N(NULL, 0, NULL, empty_string, 0);
2084 ok(status == STATUS_INVALID_PARAMETER, "status = 0x%x\n", status);
2085
2086 bytes_out = 0x55555555;
2087 status = pRtlUnicodeToUTF8N(NULL, 0, &bytes_out, NULL, 0);
2088 ok(status == STATUS_INVALID_PARAMETER_4, "status = 0x%x\n", status);
2089 ok(bytes_out == 0x55555555, "bytes_out = 0x%x\n", bytes_out);
2090
2091 bytes_out = 0x55555555;
2092 status = pRtlUnicodeToUTF8N(NULL, 0, &bytes_out, invalid_pointer, 0);
2093 ok(status == STATUS_SUCCESS, "status = 0x%x\n", status);
2094 ok(bytes_out == 0, "bytes_out = 0x%x\n", bytes_out);
2095
2096 bytes_out = 0x55555555;
2097 status = pRtlUnicodeToUTF8N(NULL, 0, &bytes_out, empty_string, 0);
2098 ok(status == STATUS_SUCCESS, "status = 0x%x\n", status);
2099 ok(bytes_out == 0, "bytes_out = 0x%x\n", bytes_out);
2100
2101 bytes_out = 0x55555555;
2102 status = pRtlUnicodeToUTF8N(NULL, 0, &bytes_out, test_string, 0);
2103 ok(status == STATUS_SUCCESS, "status = 0x%x\n", status);
2104 ok(bytes_out == 0, "bytes_out = 0x%x\n", bytes_out);
2105
2106 bytes_out = 0x55555555;
2107 status = pRtlUnicodeToUTF8N(NULL, 0, &bytes_out, empty_string, 1);
2108 ok(status == STATUS_SUCCESS, "status = 0x%x\n", status);
2109 ok(bytes_out == 0, "bytes_out = 0x%x\n", bytes_out);
2110
2111 bytes_out = 0x55555555;
2112 status = pRtlUnicodeToUTF8N(invalid_pointer, 0, &bytes_out, empty_string, 1);
2113 ok(status == STATUS_INVALID_PARAMETER_5, "status = 0x%x\n", status);
2114 ok(bytes_out == 0x55555555, "bytes_out = 0x%x\n", bytes_out);
2115
2116 bytes_out = 0x55555555;
2117 status = pRtlUnicodeToUTF8N(invalid_pointer, 8, &bytes_out, empty_string, 1);
2118 ok(status == STATUS_INVALID_PARAMETER_5, "status = 0x%x\n", status);
2119 ok(bytes_out == 0x55555555, "bytes_out = 0x%x\n", bytes_out);
2120
2121 /* length output with special chars */
2122 #define length_expect(in_chars, out_bytes, expect_status) \
2123 utf8_expect_(NULL, 0, out_bytes, \
2124 special_string, in_chars * sizeof(WCHAR), \
2125 expect_status, __LINE__)
2126
2127 length_expect(0, 0, STATUS_SUCCESS);
2128 length_expect(1, 1, STATUS_SUCCESS);
2129 length_expect(2, 3, STATUS_SUCCESS);
2130 length_expect(3, 6, STATUS_SOME_NOT_MAPPED);
2131 length_expect(4, 7, STATUS_SOME_NOT_MAPPED);
2132 #undef length_expect
2133
2134 /* output truncation */
2135 #define truncate_expect(buflen, out_bytes, expect_status) \
2136 utf8_expect_(special_expected, buflen, out_bytes, \
2137 special_string, sizeof(special_string), \
2138 expect_status, __LINE__)
2139
2140 truncate_expect(0, 0, STATUS_BUFFER_TOO_SMALL);
2141 truncate_expect(1, 1, STATUS_BUFFER_TOO_SMALL);
2142 truncate_expect(2, 1, STATUS_BUFFER_TOO_SMALL);
2143 truncate_expect(3, 3, STATUS_BUFFER_TOO_SMALL);
2144 truncate_expect(4, 3, STATUS_BUFFER_TOO_SMALL);
2145 truncate_expect(5, 3, STATUS_BUFFER_TOO_SMALL);
2146 truncate_expect(6, 6, STATUS_BUFFER_TOO_SMALL);
2147 truncate_expect(7, 7, STATUS_SOME_NOT_MAPPED);
2148 #undef truncate_expect
2149
2150 /* conversion behavior with varying input length */
2151 for (input_len = 0; input_len <= sizeof(test_string); input_len++) {
2152 /* no output buffer, just length */
2153 utf8_expect(NULL, 0, input_len / sizeof(WCHAR),
2154 test_string, input_len, STATUS_SUCCESS);
2155
2156 /* write output */
2157 bytes_out = 0x55555555;
2158 memset(buffer, 0x55, sizeof(buffer));
2159 status = pRtlUnicodeToUTF8N(
2160 buffer, sizeof(buffer), &bytes_out,
2161 test_string, input_len);
2162 if (input_len % sizeof(WCHAR) == 0) {
2163 ok(status == STATUS_SUCCESS,
2164 "(len %u): status = 0x%x\n", input_len, status);
2165 ok(bytes_out == input_len / sizeof(WCHAR),
2166 "(len %u): bytes_out = 0x%x\n", input_len, bytes_out);
2167 for (i = 0; i < bytes_out; i++) {
2168 ok(buffer[i] == test_string[i],
2169 "(len %u): buffer[%d] = 0x%x, expected 0x%x\n",
2170 input_len, i, buffer[i], test_string[i]);
2171 }
2172 for (; i < sizeof(buffer); i++) {
2173 ok(buffer[i] == 0x55,
2174 "(len %u): buffer[%d] = 0x%x\n", input_len, i, buffer[i]);
2175 }
2176 } else {
2177 ok(status == STATUS_INVALID_PARAMETER_5,
2178 "(len %u): status = 0x%x\n", input_len, status);
2179 ok(bytes_out == 0x55555555,
2180 "(len %u): bytes_out = 0x%x\n", input_len, bytes_out);
2181 for (i = 0; i < sizeof(buffer); i++) {
2182 ok(buffer[i] == 0x55,
2183 "(len %u): buffer[%d] = 0x%x\n", input_len, i, buffer[i]);
2184 }
2185 }
2186 }
2187
2188 /* test cases for special characters */
2189 for (i = 0; i < test_count; i++) {
2190 bytes_out = 0x55555555;
2191 memset(buffer, 0x55, sizeof(buffer));
2192 status = pRtlUnicodeToUTF8N(
2193 buffer, sizeof(buffer), &bytes_out,
2194 unicode_to_utf8[i].unicode, lstrlenW(unicode_to_utf8[i].unicode) * sizeof(WCHAR));
2195 ok(status == unicode_to_utf8[i].status,
2196 "(test %d): status is 0x%x, expected 0x%x\n",
2197 i, status, unicode_to_utf8[i].status);
2198 ok(bytes_out == strlen(unicode_to_utf8[i].expected),
2199 "(test %d): bytes_out is %u, expected %u\n",
2200 i, bytes_out, lstrlenA(unicode_to_utf8[i].expected));
2201 ok(!memcmp(buffer, unicode_to_utf8[i].expected, bytes_out),
2202 "(test %d): got \"%.*s\", expected \"%s\"\n",
2203 i, bytes_out, buffer, unicode_to_utf8[i].expected);
2204 ok(buffer[bytes_out] == 0x55,
2205 "(test %d): behind string: 0x%x\n", i, buffer[bytes_out]);
2206
2207 /* same test but include the null terminator */
2208 bytes_out = 0x55555555;
2209 memset(buffer, 0x55, sizeof(buffer));
2210 status = pRtlUnicodeToUTF8N(
2211 buffer, sizeof(buffer), &bytes_out,
2212 unicode_to_utf8[i].unicode, (lstrlenW(unicode_to_utf8[i].unicode) + 1) * sizeof(WCHAR));
2213 ok(status == unicode_to_utf8[i].status,
2214 "(test %d): status is 0x%x, expected 0x%x\n",
2215 i, status, unicode_to_utf8[i].status);
2216 ok(bytes_out == strlen(unicode_to_utf8[i].expected) + 1,
2217 "(test %d): bytes_out is %u, expected %u\n",
2218 i, bytes_out, lstrlenA(unicode_to_utf8[i].expected) + 1);
2219 ok(!memcmp(buffer, unicode_to_utf8[i].expected, bytes_out),
2220 "(test %d): got \"%.*s\", expected \"%s\"\n",
2221 i, bytes_out, buffer, unicode_to_utf8[i].expected);
2222 ok(buffer[bytes_out] == 0x55,
2223 "(test %d): behind string: 0x%x\n", i, buffer[bytes_out]);
2224 }
2225 }
2226
2227 struct utf8_to_unicode_test {
2228 const char *utf8;
2229 WCHAR expected[128];
2230 NTSTATUS status;
2231 };
2232
2233 static const struct utf8_to_unicode_test utf8_to_unicode[] = {
2234 { "", { 0 }, STATUS_SUCCESS },
2235 { "-", { '-',0 }, STATUS_SUCCESS },
2236 { "hello", { 'h','e','l','l','o',0 }, STATUS_SUCCESS },
2237 /* first and last of each range */
2238 { "-\x7F-\xC2\x80-\xC3\xBF-\xC4\x80-", { '-',0x7f,'-',0x80,'-',0xff,'-',0x100,'-',0 }, STATUS_SUCCESS },
2239 { "-\xDF\xBF-\xE0\xA0\x80-", { '-',0x7ff,'-',0x800,'-',0 }, STATUS_SUCCESS },
2240 { "-\xED\x9F\xBF-\xEE\x80\x80-", { '-',0xd7ff,'-',0xe000,'-',0 }, STATUS_SUCCESS },
2241 /* 0x10000 */
2242 { "-\xEF\xBF\xBF-\xF0\x90\x80\x80-", { '-',0xffff,'-',0xd800,0xdc00,'-',0 }, STATUS_SUCCESS },
2243 /* 0x103ff */ /* 0x10400 */
2244 { "-\xF0\x90\x8F\xBF-\xF0\x90\x90\x80-", { '-',0xd800,0xdfff,'-',0xd801,0xdc00,'-',0 }, STATUS_SUCCESS },
2245 /* 0x10ffff */
2246 { "-\xF4\x8F\xBF\xBF-", { '-',0xdbff,0xdfff,'-',0 }, STATUS_SUCCESS },
2247 /* standalone surrogate code points */
2248 /* 0xd800 */ /* 0xdbff */
2249 { "-\xED\xA0\x80-\xED\xAF\xBF-", { '-',0xfffd,0xfffd,'-',0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2250 /* 0xdc00 */ /* 0xdfff */
2251 { "-\xED\xB0\x80-\xED\xBF\xBF-", { '-',0xfffd,0xfffd,'-',0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2252 /* UTF-8 encoded surrogate pair */
2253 /* 0xdbff *//* 0xdfff */
2254 { "-\xED\xAF\xBF\xED\xBF\xBF-", { '-',0xfffd,0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2255 /* reverse surrogate pair */
2256 /* 0xdfff *//* 0xdbff */
2257 { "-\xED\xBF\xBF\xED\xAF\xBF-", { '-',0xfffd,0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2258 /* code points outside the UTF-16 range */
2259 /* 0x110000 */
2260 { "-\xF4\x90\x80\x80-", { '-',0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2261 /* 0x1fffff */
2262 { "-\xF7\xBF\xBF\xBF-", { '-',0xfffd,0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2263 /* 0x200000 */
2264 { "-\xFA\x80\x80\x80\x80-", { '-',0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2265 /* 0x3ffffff */
2266 { "-\xFB\xBF\xBF\xBF\xBF-", { '-',0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2267 /* 0x4000000 */
2268 { "-\xFC\x84\x80\x80\x80\x80-", { '-',0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2269 /* 0x7fffffff */
2270 { "-\xFD\xBF\xBF\xBF\xBF\xBF-", { '-',0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2271 /* overlong encodings of each length for -, NUL, and the highest possible value */
2272 { "-\xC0\xAD-\xC0\x80-\xC1\xBF-", { '-',0xfffd,0xfffd,'-',0xfffd,0xfffd,'-',0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2273 { "-\xE0\x80\xAD-\xE0\x80\x80-\xE0\x9F\xBF-", { '-',0xfffd,0xfffd,'-',0xfffd,0xfffd,'-',0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2274 { "-\xF0\x80\x80\xAD-", { '-',0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2275 { "-\xF0\x80\x80\x80-", { '-',0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2276 { "-\xF0\x8F\xBF\xBF-", { '-',0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2277 { "-\xF8\x80\x80\x80\xAD-", { '-',0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2278 { "-\xF8\x80\x80\x80\x80-", { '-',0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2279 { "-\xF8\x87\xBF\xBF\xBF-", { '-',0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2280 { "-\xFC\x80\x80\x80\x80\xAD-", { '-',0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2281 { "-\xFC\x80\x80\x80\x80\x80-", { '-',0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2282 { "-\xFC\x83\xBF\xBF\xBF\xBF-", { '-',0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2283 /* invalid bytes */
2284 { "\xFE", { 0xfffd,0 }, STATUS_SOME_NOT_MAPPED },
2285 { "\xFF", { 0xfffd,0 }, STATUS_SOME_NOT_MAPPED },
2286 { "\xFE\xBF\xBF\xBF\xBF\xBF\xBF\xBF\xBF", { 0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0 }, STATUS_SOME_NOT_MAPPED },
2287 { "\xFF\xBF\xBF\xBF\xBF\xBF\xBF\xBF\xBF", { 0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0 }, STATUS_SOME_NOT_MAPPED },
2288 { "\xFF\x80\x80\x80\x80\x80\x80\x80\x80", { 0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0 }, STATUS_SOME_NOT_MAPPED },
2289 { "\xFF\x40\x80\x80\x80\x80\x80\x80\x80", { 0xfffd,0x40,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,0 }, STATUS_SOME_NOT_MAPPED },
2290 /* lone continuation bytes */
2291 { "\x80", { 0xfffd,0 }, STATUS_SOME_NOT_MAPPED },
2292 { "\x80\x80", { 0xfffd,0xfffd,0 }, STATUS_SOME_NOT_MAPPED },
2293 { "\xBF", { 0xfffd,0 }, STATUS_SOME_NOT_MAPPED },
2294 { "\xBF\xBF", { 0xfffd,0xfffd,0 }, STATUS_SOME_NOT_MAPPED },
2295 /* incomplete sequences */
2296 { "\xC2-", { 0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2297 { "\xE0\xA0-", { 0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2298 { "\xF0\x90\x80-", { 0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2299 { "\xF4\x8F\xBF-", { 0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2300 { "\xFA\x80\x80\x80-", { 0xfffd,0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2301 { "\xFC\x84\x80\x80\x80-", { 0xfffd,0xfffd,0xfffd,0xfffd,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2302 /* multibyte sequence followed by lone continuation byte */
2303 { "\xE0\xA0\x80\x80-", { 0x800,0xfffd,'-',0 }, STATUS_SOME_NOT_MAPPED },
2304 /* byte order marks */
2305 { "-\xEF\xBB\xBF-\xEF\xBF\xBE-", { '-',0xfeff,'-',0xfffe,'-',0 }, STATUS_SUCCESS },
2306 { "\xEF\xBB\xBF-", { 0xfeff,'-',0 }, STATUS_SUCCESS },
2307 { "\xEF\xBF\xBE-", { 0xfffe,'-',0 }, STATUS_SUCCESS },
2308 /* invalid code point */
2309 /* 0xffff */
2310 { "\xEF\xBF\xBF-", { 0xffff,'-',0 }, STATUS_SUCCESS },
2311 /* canonically equivalent representations -- no normalization should happen */
2312 { "-\xE1\xB8\x89-", { '-',0x1e09,'-',0 }, STATUS_SUCCESS },
2313 { "-\xC4\x87\xCC\xA7-", { '-',0x0107,0x0327,'-',0 }, STATUS_SUCCESS },
2314 { "-\xC3\xA7\xCC\x81-", { '-',0x00e7,0x0301,'-',0 }, STATUS_SUCCESS },
2315 { "-\x63\xCC\xA7\xCC\x81-", { '-',0x0063,0x0327,0x0301,'-',0 }, STATUS_SUCCESS },
2316 { "-\x63\xCC\x81\xCC\xA7-", { '-',0x0063,0x0301,0x0327,'-',0 }, STATUS_SUCCESS },
2317 };
2318
2319 static void unicode_expect_(const WCHAR *out_string, ULONG buflen, ULONG out_chars,
2320 const char *in_string, ULONG in_chars,
2321 NTSTATUS expect_status, int line)
2322 {
2323 NTSTATUS status;
2324 ULONG bytes_out;
2325 WCHAR buffer[128];
2326 unsigned int i;
2327
2328 if (buflen == (ULONG)-1)
2329 buflen = sizeof(buffer);
2330 bytes_out = 0x55555555;
2331 memset(buffer, 0x55, sizeof(buffer));
2332 status = pRtlUTF8ToUnicodeN(
2333 out_string ? buffer : NULL, buflen, &bytes_out,
2334 in_string, in_chars);
2335 ok_(__FILE__, line)(status == expect_status, "status = 0x%x\n", status);
2336 ok_(__FILE__, line)(bytes_out == out_chars * sizeof(WCHAR),
2337 "bytes_out = %u, expected %u\n", bytes_out, out_chars * (ULONG)sizeof(WCHAR));
2338 if (out_string)
2339 {
2340 for (i = 0; i < bytes_out / sizeof(WCHAR); i++)
2341 ok_(__FILE__, line)(buffer[i] == out_string[i],
2342 "buffer[%d] = 0x%x, expected 0x%x\n",
2343 i, buffer[i], out_string[i]);
2344 for (; i < sizeof(buffer) / sizeof(WCHAR); i++)
2345 ok_(__FILE__, line)(buffer[i] == 0x5555,
2346 "buffer[%d] = 0x%x, expected 0x5555\n",
2347 i, buffer[i]);
2348 }
2349 }
2350 #define unicode_expect(out_string, buflen, out_chars, in_string, in_chars, expect_status) \
2351 unicode_expect_(out_string, buflen, out_chars, in_string, in_chars, expect_status, __LINE__)
2352
2353 static void test_RtlUTF8ToUnicodeN(void)
2354 {
2355 NTSTATUS status;
2356 ULONG bytes_out;
2357 ULONG bytes_out_array[2];
2358 void * const invalid_pointer = (void *)0x8;
2359 WCHAR buffer[128];
2360 const char empty_string[] = "";
2361 const char test_string[] = "A\0abcdefg";
2362 const WCHAR test_stringW[] = {'A',0,'a','b','c','d','e','f','g',0 };
2363 const char special_string[] = { 'X',0xc2,0x80,0xF0,0x90,0x80,0x80,0 };
2364 const WCHAR special_expected[] = { 'X',0x80,0xd800,0xdc00,0 };
2365 unsigned int input_len;
2366 const unsigned int test_count = sizeof(utf8_to_unicode) / sizeof(utf8_to_unicode[0]);
2367 unsigned int i;
2368
2369 if (!pRtlUTF8ToUnicodeN)
2370 {
2371 skip("RtlUTF8ToUnicodeN unavailable\n");
2372 return;
2373 }
2374
2375 /* show that bytes_out is really ULONG */
2376 memset(bytes_out_array, 0x55, sizeof(bytes_out_array));
2377 status = pRtlUTF8ToUnicodeN(NULL, 0, bytes_out_array, empty_string, 0);
2378 ok(status == STATUS_SUCCESS, "status = 0x%x\n", status);
2379 ok(bytes_out_array[0] == 0x00000000, "Got 0x%x\n", bytes_out_array[0]);
2380 ok(bytes_out_array[1] == 0x55555555, "Got 0x%x\n", bytes_out_array[1]);
2381
2382 /* parameter checks */
2383 status = pRtlUTF8ToUnicodeN(NULL, 0, NULL, NULL, 0);
2384 ok(status == STATUS_INVALID_PARAMETER_4, "status = 0x%x\n", status);
2385
2386 status = pRtlUTF8ToUnicodeN(NULL, 0, NULL, empty_string, 0);
2387 ok(status == STATUS_INVALID_PARAMETER, "status = 0x%x\n", status);
2388
2389 bytes_out = 0x55555555;
2390 status = pRtlUTF8ToUnicodeN(NULL, 0, &bytes_out, NULL, 0);
2391 ok(status == STATUS_INVALID_PARAMETER_4, "status = 0x%x\n", status);
2392 ok(bytes_out == 0x55555555, "bytes_out = 0x%x\n", bytes_out);
2393
2394 bytes_out = 0x55555555;
2395 status = pRtlUTF8ToUnicodeN(NULL, 0, &bytes_out, invalid_pointer, 0);
2396 ok(status == STATUS_SUCCESS, "status = 0x%x\n", status);
2397 ok(bytes_out == 0, "bytes_out = 0x%x\n", bytes_out);
2398
2399 bytes_out = 0x55555555;
2400 status = pRtlUTF8ToUnicodeN(NULL, 0, &bytes_out, empty_string, 0);
2401 ok(status == STATUS_SUCCESS, "status = 0x%x\n", status);
2402 ok(bytes_out == 0, "bytes_out = 0x%x\n", bytes_out);
2403
2404 bytes_out = 0x55555555;
2405 status = pRtlUTF8ToUnicodeN(NULL, 0, &bytes_out, test_string, 0);
2406 ok(status == STATUS_SUCCESS, "status = 0x%x\n", status);
2407 ok(bytes_out == 0, "bytes_out = 0x%x\n", bytes_out);
2408
2409 bytes_out = 0x55555555;
2410 status = pRtlUTF8ToUnicodeN(NULL, 0, &bytes_out, empty_string, 1);
2411 ok(status == STATUS_SUCCESS, "status = 0x%x\n", status);
2412 ok(bytes_out == sizeof(WCHAR), "bytes_out = 0x%x\n", bytes_out);
2413
2414 /* length output with special chars */
2415 #define length_expect(in_chars, out_chars, expect_status) \
2416 unicode_expect_(NULL, 0, out_chars, special_string, in_chars, \
2417 expect_status, __LINE__)
2418
2419 length_expect(0, 0, STATUS_SUCCESS);
2420 length_expect(1, 1, STATUS_SUCCESS);
2421 length_expect(2, 2, STATUS_SOME_NOT_MAPPED);
2422 length_expect(3, 2, STATUS_SUCCESS);
2423 length_expect(4, 3, STATUS_SOME_NOT_MAPPED);
2424 length_expect(5, 3, STATUS_SOME_NOT_MAPPED);
2425 length_expect(6, 3, STATUS_SOME_NOT_MAPPED);
2426 length_expect(7, 4, STATUS_SUCCESS);
2427 length_expect(8, 5, STATUS_SUCCESS);
2428 #undef length_expect
2429
2430 /* output truncation */
2431 #define truncate_expect(buflen, out_chars, expect_status) \
2432 unicode_expect_(special_expected, buflen, out_chars, \
2433 special_string, sizeof(special_string), \
2434 expect_status, __LINE__)
2435
2436 truncate_expect( 0, 0, STATUS_BUFFER_TOO_SMALL);
2437 truncate_expect( 1, 0, STATUS_BUFFER_TOO_SMALL);
2438 truncate_expect( 2, 1, STATUS_BUFFER_TOO_SMALL);
2439 truncate_expect( 3, 1, STATUS_BUFFER_TOO_SMALL);
2440 truncate_expect( 4, 2, STATUS_BUFFER_TOO_SMALL);
2441 truncate_expect( 5, 2, STATUS_BUFFER_TOO_SMALL);
2442 truncate_expect( 6, 3, STATUS_BUFFER_TOO_SMALL);
2443 truncate_expect( 7, 3, STATUS_BUFFER_TOO_SMALL);
2444 truncate_expect( 8, 4, STATUS_BUFFER_TOO_SMALL);
2445 truncate_expect( 9, 4, STATUS_BUFFER_TOO_SMALL);
2446 truncate_expect(10, 5, STATUS_SUCCESS);
2447 #undef truncate_expect
2448
2449 /* conversion behavior with varying input length */
2450 for (input_len = 0; input_len <= sizeof(test_string); input_len++) {
2451 /* no output buffer, just length */
2452 unicode_expect(NULL, 0, input_len,
2453 test_string, input_len, STATUS_SUCCESS);
2454
2455 /* write output */
2456 unicode_expect(test_stringW, -1, input_len,
2457 test_string, input_len, STATUS_SUCCESS);
2458 }
2459
2460 /* test cases for special characters */
2461 for (i = 0; i < test_count; i++) {
2462 bytes_out = 0x55555555;
2463 memset(buffer, 0x55, sizeof(buffer));
2464 status = pRtlUTF8ToUnicodeN(
2465 buffer, sizeof(buffer), &bytes_out,
2466 utf8_to_unicode[i].utf8, strlen(utf8_to_unicode[i].utf8));
2467 ok(status == utf8_to_unicode[i].status,
2468 "(test %d): status is 0x%x, expected 0x%x\n",
2469 i, status, utf8_to_unicode[i].status);
2470 ok(bytes_out == lstrlenW(utf8_to_unicode[i].expected) * sizeof(WCHAR),
2471 "(test %d): bytes_out is %u, expected %u\n",
2472 i, bytes_out, lstrlenW(utf8_to_unicode[i].expected) * (ULONG)sizeof(WCHAR));
2473 ok(!memcmp(buffer, utf8_to_unicode[i].expected, bytes_out),
2474 "(test %d): got %s, expected %s\n",
2475 i, wine_dbgstr_wn(buffer, bytes_out / sizeof(WCHAR)), wine_dbgstr_w(utf8_to_unicode[i].expected));
2476 ok(buffer[bytes_out] == 0x5555,
2477 "(test %d): behind string: 0x%x\n", i, buffer[bytes_out]);
2478
2479 /* same test but include the null terminator */
2480 bytes_out = 0x55555555;
2481 memset(buffer, 0x55, sizeof(buffer));
2482 status = pRtlUTF8ToUnicodeN(
2483 buffer, sizeof(buffer), &bytes_out,
2484 utf8_to_unicode[i].utf8, strlen(utf8_to_unicode[i].utf8) + 1);
2485 ok(status == utf8_to_unicode[i].status,
2486 "(test %d): status is 0x%x, expected 0x%x\n",
2487 i, status, utf8_to_unicode[i].status);
2488 ok(bytes_out == (lstrlenW(utf8_to_unicode[i].expected) + 1) * sizeof(WCHAR),
2489 "(test %d): bytes_out is %u, expected %u\n",
2490 i, bytes_out, (lstrlenW(utf8_to_unicode[i].expected) + 1) * (ULONG)sizeof(WCHAR));
2491 ok(!memcmp(buffer, utf8_to_unicode[i].expected, bytes_out),
2492 "(test %d): got %s, expected %s\n",
2493 i, wine_dbgstr_wn(buffer, bytes_out / sizeof(WCHAR)), wine_dbgstr_w(utf8_to_unicode[i].expected));
2494 ok(buffer[bytes_out] == 0x5555,
2495 "(test %d): behind string: 0x%x\n", i, buffer[bytes_out]);
2496 }
2497 }
2498
2499 START_TEST(rtlstr)
2500 {
2501 InitFunctionPtrs();
2502 if (pRtlInitAnsiString) {
2503 test_RtlInitString();
2504 test_RtlInitUnicodeString();
2505 test_RtlCopyString();
2506 test_RtlUnicodeStringToInteger();
2507 test_RtlCharToInteger();
2508 test_RtlIntegerToUnicodeString();
2509 test_RtlIntegerToChar();
2510 test_RtlUpperChar();
2511 test_RtlUpperString();
2512 test_RtlUnicodeStringToAnsiString();
2513 test_RtlAppendAsciizToString();
2514 test_RtlAppendStringToString();
2515 test_RtlAppendUnicodeToString();
2516 test_RtlAppendUnicodeStringToString();
2517 }
2518
2519 test_RtlInitUnicodeStringEx();
2520 test_RtlDuplicateUnicodeString();
2521 test_RtlFindCharInUnicodeString();
2522 test_RtlGUIDFromString();
2523 test_RtlStringFromGUID();
2524 test_RtlIsTextUnicode();
2525 if(0)
2526 {
2527 test_RtlUpcaseUnicodeChar();
2528 test_RtlUpcaseUnicodeString();
2529 test_RtlDowncaseUnicodeString();
2530 }
2531 test_RtlHashUnicodeString();
2532 test_RtlUnicodeToUTF8N();
2533 test_RtlUTF8ToUnicodeN();
2534 }