numeric_literal_test.cpp 9.1 KB

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  1. // Part of the Carbon Language project, under the Apache License v2.0 with LLVM
  2. // Exceptions. See /LICENSE for license information.
  3. // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
  4. #include "toolchain/lex/numeric_literal.h"
  5. #include <gmock/gmock.h>
  6. #include <gtest/gtest.h>
  7. #include "common/check.h"
  8. #include "toolchain/diagnostics/diagnostic_emitter.h"
  9. #include "toolchain/lex/test_helpers.h"
  10. namespace Carbon::Lex {
  11. namespace {
  12. using ::testing::_;
  13. using ::testing::Field;
  14. using ::testing::Matcher;
  15. using ::testing::Property;
  16. using ::testing::Truly;
  17. using ::testing::VariantWith;
  18. class NumericLiteralTest : public ::testing::Test {
  19. public:
  20. NumericLiteralTest() : error_tracker(ConsoleDiagnosticConsumer()) {}
  21. auto Lex(llvm::StringRef text) -> NumericLiteral {
  22. std::optional<NumericLiteral> result = NumericLiteral::Lex(text);
  23. CARBON_CHECK(result);
  24. EXPECT_EQ(result->text(), text);
  25. return *result;
  26. }
  27. auto Parse(llvm::StringRef text) -> NumericLiteral::Value {
  28. Testing::SingleTokenDiagnosticConverter converter(text);
  29. DiagnosticEmitter<const char*> emitter(converter, error_tracker);
  30. return Lex(text).ComputeValue(emitter);
  31. }
  32. ErrorTrackingDiagnosticConsumer error_tracker;
  33. };
  34. // Matcher for signed llvm::APInt.
  35. auto IsSignedInt(int64_t value) -> Matcher<llvm::APInt> {
  36. return Property(&llvm::APInt::getSExtValue, value);
  37. }
  38. // Matcher for unsigned llvm::APInt.
  39. auto IsUnsignedInt(uint64_t value) -> Matcher<llvm::APInt> {
  40. return Property(&llvm::APInt::getZExtValue, value);
  41. }
  42. // Matcher for an integer literal value.
  43. template <typename ValueMatcher>
  44. auto HasIntValue(const ValueMatcher& value_matcher)
  45. -> Matcher<NumericLiteral::Value> {
  46. return VariantWith<NumericLiteral::IntValue>(
  47. Field(&NumericLiteral::IntValue::value, value_matcher));
  48. }
  49. struct RealMatcher {
  50. Matcher<int> radix = _;
  51. Matcher<llvm::APInt> mantissa = _;
  52. Matcher<llvm::APInt> exponent = _;
  53. };
  54. // Matcher for a real literal value.
  55. auto HasRealValue(const RealMatcher& real_matcher)
  56. -> Matcher<NumericLiteral::Value> {
  57. return VariantWith<NumericLiteral::RealValue>(AllOf(
  58. Field(&NumericLiteral::RealValue::radix, real_matcher.radix),
  59. Field(&NumericLiteral::RealValue::mantissa, real_matcher.mantissa),
  60. Field(&NumericLiteral::RealValue::exponent, real_matcher.exponent)));
  61. }
  62. // Matcher for an unrecoverable parse error.
  63. auto HasUnrecoverableError() -> Matcher<NumericLiteral::Value> {
  64. return VariantWith<NumericLiteral::UnrecoverableError>(_);
  65. }
  66. TEST_F(NumericLiteralTest, HandlesIntLiteral) {
  67. struct Testcase {
  68. llvm::StringLiteral token;
  69. uint64_t value;
  70. int radix;
  71. };
  72. Testcase testcases[] = {
  73. {.token = "12", .value = 12, .radix = 10},
  74. {.token = "0x12_3ABC", .value = 0x12'3ABC, .radix = 16},
  75. {.token = "0b10_10_11", .value = 0b10'10'11, .radix = 2},
  76. {.token = "1_234_567", .value = 1'234'567, .radix = 10},
  77. };
  78. for (Testcase testcase : testcases) {
  79. error_tracker.Reset();
  80. EXPECT_THAT(Parse(testcase.token),
  81. HasIntValue(IsUnsignedInt(testcase.value)))
  82. << testcase.token;
  83. EXPECT_FALSE(error_tracker.seen_error()) << testcase.token;
  84. }
  85. }
  86. TEST_F(NumericLiteralTest, ValidatesBaseSpecifier) {
  87. llvm::StringLiteral valid[] = {
  88. // Decimal integer literals.
  89. "0",
  90. "1",
  91. "123456789000000000000000000000000000000000000",
  92. // Hexadecimal integer literals.
  93. "0x0123456789ABCDEF",
  94. "0x0000000000000000000000000000000",
  95. // Binary integer literals.
  96. "0b10110100101001010",
  97. "0b0000000",
  98. };
  99. for (llvm::StringLiteral literal : valid) {
  100. error_tracker.Reset();
  101. EXPECT_THAT(Parse(literal), HasIntValue(_)) << literal;
  102. EXPECT_FALSE(error_tracker.seen_error()) << literal;
  103. }
  104. llvm::StringLiteral invalid[] = {
  105. "00", "0X123", "0o123", "0B1",
  106. "007", "123L", "123456789A", "0x",
  107. "0b", "0x123abc", "0b011101201001", "0b10A",
  108. "0x_", "0b_",
  109. };
  110. for (llvm::StringLiteral literal : invalid) {
  111. error_tracker.Reset();
  112. EXPECT_THAT(Parse(literal), HasUnrecoverableError()) << literal;
  113. EXPECT_TRUE(error_tracker.seen_error()) << literal;
  114. }
  115. }
  116. TEST_F(NumericLiteralTest, ValidatesIntDigitSeparators) {
  117. llvm::StringLiteral valid[] = {
  118. // Decimal literals.
  119. "1_234",
  120. "123_456",
  121. "1_234_567",
  122. "12_34",
  123. "123_4_6_789",
  124. "12_3456_789",
  125. // Hexadecimal literals.
  126. "0x1_0000",
  127. "0x1000_0000",
  128. "0x1_0000_0000",
  129. "0x12_3",
  130. "0x1234_567",
  131. // Binary literals.
  132. "0b1_0_1_0_1_0",
  133. "0b111_0000",
  134. };
  135. for (llvm::StringLiteral literal : valid) {
  136. error_tracker.Reset();
  137. EXPECT_THAT(Parse(literal), HasIntValue(_)) << literal;
  138. EXPECT_FALSE(error_tracker.seen_error()) << literal;
  139. }
  140. llvm::StringLiteral invalid[] = {
  141. // Decimal literals.
  142. "12__345",
  143. "1_",
  144. // Hexadecimal literals.
  145. "0x_1234",
  146. "0x123_",
  147. "0x_234_5678",
  148. // Binary literals.
  149. "0b_10101",
  150. "0b1__01",
  151. "0b1011_",
  152. "0b1_01_01_",
  153. };
  154. for (llvm::StringLiteral literal : invalid) {
  155. error_tracker.Reset();
  156. EXPECT_THAT(Parse(literal), HasIntValue(_)) << literal;
  157. EXPECT_TRUE(error_tracker.seen_error()) << literal;
  158. }
  159. }
  160. TEST_F(NumericLiteralTest, HandlesRealLiteral) {
  161. struct Testcase {
  162. llvm::StringLiteral token;
  163. uint64_t mantissa;
  164. int64_t exponent;
  165. unsigned radix;
  166. };
  167. Testcase testcases[] = {
  168. // Decimal real literals.
  169. {.token = "0.0", .mantissa = 0, .exponent = -1, .radix = 10},
  170. {.token = "12.345", .mantissa = 12345, .exponent = -3, .radix = 10},
  171. {.token = "12.345e6", .mantissa = 12345, .exponent = 3, .radix = 10},
  172. {.token = "12.345e+6", .mantissa = 12345, .exponent = 3, .radix = 10},
  173. {.token = "1_234.5e-2", .mantissa = 12345, .exponent = -3, .radix = 10},
  174. {.token = "1.0e-2_000_000",
  175. .mantissa = 10,
  176. .exponent = -2'000'001,
  177. .radix = 10},
  178. // Hexadecimal real literals.
  179. {.token = "0x1_2345_6789.CDEF",
  180. .mantissa = 0x1'2345'6789'CDEF,
  181. .exponent = -16,
  182. .radix = 16},
  183. {.token = "0x0.0001p4", .mantissa = 1, .exponent = -12, .radix = 16},
  184. {.token = "0x0.0001p+4", .mantissa = 1, .exponent = -12, .radix = 16},
  185. {.token = "0x0.0001p-4", .mantissa = 1, .exponent = -20, .radix = 16},
  186. // The exponent here works out as exactly INT64_MIN.
  187. {.token = "0x1.01p-9223372036854775800",
  188. .mantissa = 0x101,
  189. .exponent = -9223372036854775807L - 1L,
  190. .radix = 16},
  191. // The exponent here doesn't fit in a signed 64-bit integer until we
  192. // adjust for the radix point.
  193. {.token = "0x1.01p9223372036854775809",
  194. .mantissa = 0x101,
  195. .exponent = 9223372036854775801L,
  196. .radix = 16},
  197. // Binary real literals. These are invalid, but we accept them for error
  198. // recovery.
  199. {.token = "0b10_11_01.01",
  200. .mantissa = 0b10110101,
  201. .exponent = -2,
  202. .radix = 2},
  203. };
  204. for (Testcase testcase : testcases) {
  205. error_tracker.Reset();
  206. EXPECT_THAT(Parse(testcase.token),
  207. HasRealValue({.radix = (testcase.radix == 10 ? 10 : 2),
  208. .mantissa = IsUnsignedInt(testcase.mantissa),
  209. .exponent = IsSignedInt(testcase.exponent)}))
  210. << testcase.token;
  211. EXPECT_EQ(error_tracker.seen_error(), testcase.radix == 2)
  212. << testcase.token;
  213. }
  214. }
  215. TEST_F(NumericLiteralTest, HandlesRealLiteralOverflow) {
  216. llvm::StringLiteral input = "0x1.000001p-9223372036854775800";
  217. error_tracker.Reset();
  218. EXPECT_THAT(
  219. Parse(input),
  220. HasRealValue({.radix = 2,
  221. .mantissa = IsUnsignedInt(0x1000001),
  222. .exponent = Truly([](llvm::APInt exponent) {
  223. return (exponent + 9223372036854775800).getSExtValue() ==
  224. -24;
  225. })}));
  226. EXPECT_FALSE(error_tracker.seen_error());
  227. }
  228. TEST_F(NumericLiteralTest, ValidatesRealLiterals) {
  229. llvm::StringLiteral invalid[] = {
  230. // No digits in integer part.
  231. "0x.0",
  232. "0b.0",
  233. "0x_.0",
  234. "0b_.0",
  235. // No digits in fractional part.
  236. "0.e",
  237. "0.e0",
  238. "0.e+0",
  239. "0x0.p",
  240. "0x0.p-0",
  241. // Invalid digits in mantissa.
  242. "123A.4",
  243. "123.4A",
  244. "123A.4e0",
  245. "123.4Ae0",
  246. "0x123ABCDEFG.0",
  247. "0x123.ABCDEFG",
  248. "0x123ABCDEFG.0p0",
  249. "0x123.ABCDEFGp0",
  250. // Invalid exponent letter.
  251. "0.0f0",
  252. "0.0p0",
  253. "0.0z+0",
  254. "0x0.0e0",
  255. "0x0.0f0",
  256. "0x0.0z-0",
  257. // No digits in exponent part.
  258. "0.0e",
  259. "0x0.0p",
  260. "0.0e_",
  261. "0x0.0p_",
  262. // Invalid digits in exponent part.
  263. "0.0eHELLO",
  264. "0.0eA",
  265. "0.0e+A",
  266. "0x0.0pA",
  267. "0x0.0p-A",
  268. };
  269. for (llvm::StringLiteral literal : invalid) {
  270. error_tracker.Reset();
  271. EXPECT_THAT(Parse(literal), HasUnrecoverableError()) << literal;
  272. EXPECT_TRUE(error_tracker.seen_error()) << literal;
  273. }
  274. }
  275. TEST_F(NumericLiteralTest, TooManyDigits) {
  276. std::string long_number(2000, '1');
  277. EXPECT_THAT(Parse(long_number), HasUnrecoverableError());
  278. EXPECT_TRUE(error_tracker.seen_error());
  279. }
  280. } // namespace
  281. } // namespace Carbon::Lex