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1 // Copyright 2012 the V8 project authors. All rights reserved. | 1 // Copyright 2012 the V8 project authors. All rights reserved. |
2 // Use of this source code is governed by a BSD-style license that can be | 2 // Use of this source code is governed by a BSD-style license that can be |
3 // found in the LICENSE file. | 3 // found in the LICENSE file. |
4 | 4 |
5 #ifndef V8_GLOBALS_H_ | 5 #ifndef V8_V8GLOBALS_H_ |
6 #define V8_GLOBALS_H_ | 6 #define V8_V8GLOBALS_H_ |
7 | 7 |
8 #include "../include/v8stdint.h" | 8 #include "globals.h" |
9 | |
10 #include "base/macros.h" | |
11 #include "checks.h" | 9 #include "checks.h" |
12 | 10 |
13 // Unfortunately, the INFINITY macro cannot be used with the '-pedantic' | |
14 // warning flag and certain versions of GCC due to a bug: | |
15 // http://gcc.gnu.org/bugzilla/show_bug.cgi?id=11931 | |
16 // For now, we use the more involved template-based version from <limits>, but | |
17 // only when compiling with GCC versions affected by the bug (2.96.x - 4.0.x) | |
18 #if V8_CC_GNU && V8_GNUC_PREREQ(2, 96, 0) && !V8_GNUC_PREREQ(4, 1, 0) | |
19 # include <limits> // NOLINT | |
20 # define V8_INFINITY std::numeric_limits<double>::infinity() | |
21 #elif V8_LIBC_MSVCRT | |
22 # define V8_INFINITY HUGE_VAL | |
23 #else | |
24 # define V8_INFINITY INFINITY | |
25 #endif | |
26 | |
27 namespace v8 { | 11 namespace v8 { |
28 namespace internal { | 12 namespace internal { |
29 | 13 |
30 // Processor architecture detection. For more info on what's defined, see: | 14 // This file contains constants and global declarations related to the |
31 // http://msdn.microsoft.com/en-us/library/b0084kay.aspx | 15 // V8 system. |
32 // http://www.agner.org/optimize/calling_conventions.pdf | |
33 // or with gcc, run: "echo | gcc -E -dM -" | |
34 #if defined(_M_X64) || defined(__x86_64__) | |
35 #if defined(__native_client__) | |
36 // For Native Client builds of V8, use V8_TARGET_ARCH_ARM, so that V8 | |
37 // generates ARM machine code, together with a portable ARM simulator | |
38 // compiled for the host architecture in question. | |
39 // | |
40 // Since Native Client is ILP-32 on all architectures we use | |
41 // V8_HOST_ARCH_IA32 on both 32- and 64-bit x86. | |
42 #define V8_HOST_ARCH_IA32 1 | |
43 #define V8_HOST_ARCH_32_BIT 1 | |
44 #define V8_HOST_CAN_READ_UNALIGNED 1 | |
45 #else | |
46 #define V8_HOST_ARCH_X64 1 | |
47 #define V8_HOST_ARCH_64_BIT 1 | |
48 #define V8_HOST_CAN_READ_UNALIGNED 1 | |
49 #endif // __native_client__ | |
50 #elif defined(_M_IX86) || defined(__i386__) | |
51 #define V8_HOST_ARCH_IA32 1 | |
52 #define V8_HOST_ARCH_32_BIT 1 | |
53 #define V8_HOST_CAN_READ_UNALIGNED 1 | |
54 #elif defined(__AARCH64EL__) | |
55 #define V8_HOST_ARCH_ARM64 1 | |
56 #define V8_HOST_ARCH_64_BIT 1 | |
57 #define V8_HOST_CAN_READ_UNALIGNED 1 | |
58 #elif defined(__ARMEL__) | |
59 #define V8_HOST_ARCH_ARM 1 | |
60 #define V8_HOST_ARCH_32_BIT 1 | |
61 #elif defined(__MIPSEB__) || defined(__MIPSEL__) | |
62 #define V8_HOST_ARCH_MIPS 1 | |
63 #define V8_HOST_ARCH_32_BIT 1 | |
64 #else | |
65 #error "Host architecture was not detected as supported by v8" | |
66 #endif | |
67 | |
68 #if defined(__ARM_ARCH_7A__) || \ | |
69 defined(__ARM_ARCH_7R__) || \ | |
70 defined(__ARM_ARCH_7__) | |
71 # define CAN_USE_ARMV7_INSTRUCTIONS 1 | |
72 # ifndef CAN_USE_VFP3_INSTRUCTIONS | |
73 # define CAN_USE_VFP3_INSTRUCTIONS | |
74 # endif | |
75 #endif | |
76 | |
77 | |
78 // Target architecture detection. This may be set externally. If not, detect | |
79 // in the same way as the host architecture, that is, target the native | |
80 // environment as presented by the compiler. | |
81 #if !V8_TARGET_ARCH_X64 && !V8_TARGET_ARCH_IA32 && !V8_TARGET_ARCH_X87 &&\ | |
82 !V8_TARGET_ARCH_ARM && !V8_TARGET_ARCH_ARM64 && !V8_TARGET_ARCH_MIPS | |
83 #if defined(_M_X64) || defined(__x86_64__) | |
84 #define V8_TARGET_ARCH_X64 1 | |
85 #elif defined(_M_IX86) || defined(__i386__) | |
86 #define V8_TARGET_ARCH_IA32 1 | |
87 #elif defined(__AARCH64EL__) | |
88 #define V8_TARGET_ARCH_ARM64 1 | |
89 #elif defined(__ARMEL__) | |
90 #define V8_TARGET_ARCH_ARM 1 | |
91 #elif defined(__MIPSEB__) || defined(__MIPSEL__) | |
92 #define V8_TARGET_ARCH_MIPS 1 | |
93 #else | |
94 #error Target architecture was not detected as supported by v8 | |
95 #endif | |
96 #endif | |
97 | |
98 // Check for supported combinations of host and target architectures. | |
99 #if V8_TARGET_ARCH_IA32 && !V8_HOST_ARCH_IA32 | |
100 #error Target architecture ia32 is only supported on ia32 host | |
101 #endif | |
102 #if V8_TARGET_ARCH_X64 && !V8_HOST_ARCH_X64 | |
103 #error Target architecture x64 is only supported on x64 host | |
104 #endif | |
105 #if (V8_TARGET_ARCH_ARM && !(V8_HOST_ARCH_IA32 || V8_HOST_ARCH_ARM)) | |
106 #error Target architecture arm is only supported on arm and ia32 host | |
107 #endif | |
108 #if (V8_TARGET_ARCH_ARM64 && !(V8_HOST_ARCH_X64 || V8_HOST_ARCH_ARM64)) | |
109 #error Target architecture arm64 is only supported on arm64 and x64 host | |
110 #endif | |
111 #if (V8_TARGET_ARCH_MIPS && !(V8_HOST_ARCH_IA32 || V8_HOST_ARCH_MIPS)) | |
112 #error Target architecture mips is only supported on mips and ia32 host | |
113 #endif | |
114 | |
115 // Determine whether we are running in a simulated environment. | |
116 // Setting USE_SIMULATOR explicitly from the build script will force | |
117 // the use of a simulated environment. | |
118 #if !defined(USE_SIMULATOR) | |
119 #if (V8_TARGET_ARCH_ARM64 && !V8_HOST_ARCH_ARM64) | |
120 #define USE_SIMULATOR 1 | |
121 #endif | |
122 #if (V8_TARGET_ARCH_ARM && !V8_HOST_ARCH_ARM) | |
123 #define USE_SIMULATOR 1 | |
124 #endif | |
125 #if (V8_TARGET_ARCH_MIPS && !V8_HOST_ARCH_MIPS) | |
126 #define USE_SIMULATOR 1 | |
127 #endif | |
128 #endif | |
129 | |
130 // Determine architecture endianness. | |
131 #if V8_TARGET_ARCH_IA32 | |
132 #define V8_TARGET_LITTLE_ENDIAN 1 | |
133 #elif V8_TARGET_ARCH_X64 | |
134 #define V8_TARGET_LITTLE_ENDIAN 1 | |
135 #elif V8_TARGET_ARCH_ARM | |
136 #define V8_TARGET_LITTLE_ENDIAN 1 | |
137 #elif V8_TARGET_ARCH_ARM64 | |
138 #define V8_TARGET_LITTLE_ENDIAN 1 | |
139 #elif V8_TARGET_ARCH_MIPS | |
140 #if defined(__MIPSEB__) | |
141 #define V8_TARGET_BIG_ENDIAN 1 | |
142 #else | |
143 #define V8_TARGET_LITTLE_ENDIAN 1 | |
144 #endif | |
145 #elif V8_TARGET_ARCH_X87 | |
146 #define V8_TARGET_LITTLE_ENDIAN 1 | |
147 #else | |
148 #error Unknown target architecture endianness | |
149 #endif | |
150 | |
151 // Determine whether the architecture uses an out-of-line constant pool. | |
152 #define V8_OOL_CONSTANT_POOL 0 | |
153 | |
154 // Support for alternative bool type. This is only enabled if the code is | |
155 // compiled with USE_MYBOOL defined. This catches some nasty type bugs. | |
156 // For instance, 'bool b = "false";' results in b == true! This is a hidden | |
157 // source of bugs. | |
158 // However, redefining the bool type does have some negative impact on some | |
159 // platforms. It gives rise to compiler warnings (i.e. with | |
160 // MSVC) in the API header files when mixing code that uses the standard | |
161 // bool with code that uses the redefined version. | |
162 // This does not actually belong in the platform code, but needs to be | |
163 // defined here because the platform code uses bool, and platform.h is | |
164 // include very early in the main include file. | |
165 | |
166 #ifdef USE_MYBOOL | |
167 typedef unsigned int __my_bool__; | |
168 #define bool __my_bool__ // use 'indirection' to avoid name clashes | |
169 #endif | |
170 | |
171 typedef uint8_t byte; | |
172 typedef byte* Address; | |
173 | |
174 // Define our own macros for writing 64-bit constants. This is less fragile | |
175 // than defining __STDC_CONSTANT_MACROS before including <stdint.h>, and it | |
176 // works on compilers that don't have it (like MSVC). | |
177 #if V8_CC_MSVC | |
178 # define V8_UINT64_C(x) (x ## UI64) | |
179 # define V8_INT64_C(x) (x ## I64) | |
180 # if V8_HOST_ARCH_64_BIT | |
181 # define V8_INTPTR_C(x) (x ## I64) | |
182 # define V8_PTR_PREFIX "ll" | |
183 # else | |
184 # define V8_INTPTR_C(x) (x) | |
185 # define V8_PTR_PREFIX "" | |
186 # endif // V8_HOST_ARCH_64_BIT | |
187 #elif V8_CC_MINGW64 | |
188 # define V8_UINT64_C(x) (x ## ULL) | |
189 # define V8_INT64_C(x) (x ## LL) | |
190 # define V8_INTPTR_C(x) (x ## LL) | |
191 # define V8_PTR_PREFIX "I64" | |
192 #elif V8_HOST_ARCH_64_BIT | |
193 # if V8_OS_MACOSX | |
194 # define V8_UINT64_C(x) (x ## ULL) | |
195 # define V8_INT64_C(x) (x ## LL) | |
196 # else | |
197 # define V8_UINT64_C(x) (x ## UL) | |
198 # define V8_INT64_C(x) (x ## L) | |
199 # endif | |
200 # define V8_INTPTR_C(x) (x ## L) | |
201 # define V8_PTR_PREFIX "l" | |
202 #else | |
203 # define V8_UINT64_C(x) (x ## ULL) | |
204 # define V8_INT64_C(x) (x ## LL) | |
205 # define V8_INTPTR_C(x) (x) | |
206 # define V8_PTR_PREFIX "" | |
207 #endif | |
208 | |
209 // The following macro works on both 32 and 64-bit platforms. | |
210 // Usage: instead of writing 0x1234567890123456 | |
211 // write V8_2PART_UINT64_C(0x12345678,90123456); | |
212 #define V8_2PART_UINT64_C(a, b) (((static_cast<uint64_t>(a) << 32) + 0x##b##u)) | |
213 | |
214 #define V8PRIxPTR V8_PTR_PREFIX "x" | |
215 #define V8PRIdPTR V8_PTR_PREFIX "d" | |
216 #define V8PRIuPTR V8_PTR_PREFIX "u" | |
217 | |
218 // Fix for Mac OS X defining uintptr_t as "unsigned long": | |
219 #if V8_OS_MACOSX | |
220 #undef V8PRIxPTR | |
221 #define V8PRIxPTR "lx" | |
222 #endif | |
223 | |
224 #if V8_OS_MACOSX || defined(__FreeBSD__) || defined(__OpenBSD__) | |
225 #define USING_BSD_ABI | |
226 #endif | |
227 | |
228 // ----------------------------------------------------------------------------- | |
229 // Constants | |
230 | |
231 const int KB = 1024; | |
232 const int MB = KB * KB; | |
233 const int GB = KB * KB * KB; | |
234 const int kMaxInt = 0x7FFFFFFF; | |
235 const int kMinInt = -kMaxInt - 1; | |
236 const int kMaxInt8 = (1 << 7) - 1; | |
237 const int kMinInt8 = -(1 << 7); | |
238 const int kMaxUInt8 = (1 << 8) - 1; | |
239 const int kMinUInt8 = 0; | |
240 const int kMaxInt16 = (1 << 15) - 1; | |
241 const int kMinInt16 = -(1 << 15); | |
242 const int kMaxUInt16 = (1 << 16) - 1; | |
243 const int kMinUInt16 = 0; | |
244 | |
245 const uint32_t kMaxUInt32 = 0xFFFFFFFFu; | |
246 | |
247 const int kCharSize = sizeof(char); // NOLINT | |
248 const int kShortSize = sizeof(short); // NOLINT | |
249 const int kIntSize = sizeof(int); // NOLINT | |
250 const int kInt32Size = sizeof(int32_t); // NOLINT | |
251 const int kInt64Size = sizeof(int64_t); // NOLINT | |
252 const int kDoubleSize = sizeof(double); // NOLINT | |
253 const int kIntptrSize = sizeof(intptr_t); // NOLINT | |
254 const int kPointerSize = sizeof(void*); // NOLINT | |
255 const int kRegisterSize = kPointerSize; | |
256 const int kPCOnStackSize = kRegisterSize; | |
257 const int kFPOnStackSize = kRegisterSize; | |
258 | |
259 const int kDoubleSizeLog2 = 3; | |
260 | |
261 #if V8_HOST_ARCH_64_BIT | |
262 const int kPointerSizeLog2 = 3; | |
263 const intptr_t kIntptrSignBit = V8_INT64_C(0x8000000000000000); | |
264 const uintptr_t kUintptrAllBitsSet = V8_UINT64_C(0xFFFFFFFFFFFFFFFF); | |
265 const bool kIs64BitArch = true; | |
266 #else | |
267 const int kPointerSizeLog2 = 2; | |
268 const intptr_t kIntptrSignBit = 0x80000000; | |
269 const uintptr_t kUintptrAllBitsSet = 0xFFFFFFFFu; | |
270 const bool kIs64BitArch = false; | |
271 #endif | |
272 | |
273 const int kBitsPerByte = 8; | |
274 const int kBitsPerByteLog2 = 3; | |
275 const int kBitsPerPointer = kPointerSize * kBitsPerByte; | |
276 const int kBitsPerInt = kIntSize * kBitsPerByte; | |
277 | |
278 // IEEE 754 single precision floating point number bit layout. | |
279 const uint32_t kBinary32SignMask = 0x80000000u; | |
280 const uint32_t kBinary32ExponentMask = 0x7f800000u; | |
281 const uint32_t kBinary32MantissaMask = 0x007fffffu; | |
282 const int kBinary32ExponentBias = 127; | |
283 const int kBinary32MaxExponent = 0xFE; | |
284 const int kBinary32MinExponent = 0x01; | |
285 const int kBinary32MantissaBits = 23; | |
286 const int kBinary32ExponentShift = 23; | |
287 | |
288 // Quiet NaNs have bits 51 to 62 set, possibly the sign bit, and no | |
289 // other bits set. | |
290 const uint64_t kQuietNaNMask = static_cast<uint64_t>(0xfff) << 51; | |
291 | |
292 // Latin1/UTF-16 constants | |
293 // Code-point values in Unicode 4.0 are 21 bits wide. | |
294 // Code units in UTF-16 are 16 bits wide. | |
295 typedef uint16_t uc16; | |
296 typedef int32_t uc32; | |
297 const int kOneByteSize = kCharSize; | |
298 const int kUC16Size = sizeof(uc16); // NOLINT | |
299 | |
300 | |
301 // Round up n to be a multiple of sz, where sz is a power of 2. | |
302 #define ROUND_UP(n, sz) (((n) + ((sz) - 1)) & ~((sz) - 1)) | |
303 | |
304 | |
305 // The USE(x) template is used to silence C++ compiler warnings | |
306 // issued for (yet) unused variables (typically parameters). | |
307 template <typename T> | |
308 inline void USE(T) { } | |
309 | |
310 | |
311 // FUNCTION_ADDR(f) gets the address of a C function f. | |
312 #define FUNCTION_ADDR(f) \ | |
313 (reinterpret_cast<v8::internal::Address>(reinterpret_cast<intptr_t>(f))) | |
314 | |
315 | |
316 // FUNCTION_CAST<F>(addr) casts an address into a function | |
317 // of type F. Used to invoke generated code from within C. | |
318 template <typename F> | |
319 F FUNCTION_CAST(Address addr) { | |
320 return reinterpret_cast<F>(reinterpret_cast<intptr_t>(addr)); | |
321 } | |
322 | |
323 | |
324 // ----------------------------------------------------------------------------- | |
325 // Forward declarations for frequently used classes | |
326 // (sorted alphabetically) | |
327 | |
328 class FreeStoreAllocationPolicy; | |
329 template <typename T, class P = FreeStoreAllocationPolicy> class List; | |
330 | |
331 // ----------------------------------------------------------------------------- | |
332 // Declarations for use in both the preparser and the rest of V8. | |
333 | |
334 // The Strict Mode (ECMA-262 5th edition, 4.2.2). | |
335 | |
336 enum StrictMode { SLOPPY, STRICT }; | |
337 | |
338 | 16 |
339 // Mask for the sign bit in a smi. | 17 // Mask for the sign bit in a smi. |
340 const intptr_t kSmiSignMask = kIntptrSignBit; | 18 const intptr_t kSmiSignMask = kIntptrSignBit; |
341 | 19 |
342 const int kObjectAlignmentBits = kPointerSizeLog2; | 20 const int kObjectAlignmentBits = kPointerSizeLog2; |
343 const intptr_t kObjectAlignment = 1 << kObjectAlignmentBits; | 21 const intptr_t kObjectAlignment = 1 << kObjectAlignmentBits; |
344 const intptr_t kObjectAlignmentMask = kObjectAlignment - 1; | 22 const intptr_t kObjectAlignmentMask = kObjectAlignment - 1; |
345 | 23 |
346 // Desired alignment for pointers. | 24 // Desired alignment for pointers. |
347 const intptr_t kPointerAlignment = (1 << kPointerSizeLog2); | 25 const intptr_t kPointerAlignment = (1 << kPointerSizeLog2); |
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871 | 549 |
872 enum MinusZeroMode { | 550 enum MinusZeroMode { |
873 TREAT_MINUS_ZERO_AS_ZERO, | 551 TREAT_MINUS_ZERO_AS_ZERO, |
874 FAIL_ON_MINUS_ZERO | 552 FAIL_ON_MINUS_ZERO |
875 }; | 553 }; |
876 | 554 |
877 } } // namespace v8::internal | 555 } } // namespace v8::internal |
878 | 556 |
879 namespace i = v8::internal; | 557 namespace i = v8::internal; |
880 | 558 |
881 #endif // V8_GLOBALS_H_ | 559 #endif // V8_V8GLOBALS_H_ |
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