1 //===--- Implementation of a platform independent file data structure -----===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 9 #include "file.h" 10 11 #include "src/__support/CPP/ArrayRef.h" 12 13 #include <errno.h> 14 #include <stdio.h> 15 #include <stdlib.h> 16 17 namespace __llvm_libc { 18 19 size_t File::write_unlocked(const void *data, size_t len) { 20 if (!write_allowed()) { 21 errno = EBADF; 22 err = true; 23 return 0; 24 } 25 26 prev_op = FileOp::WRITE; 27 28 if (bufmode == _IOFBF) { // fully buffered 29 return write_unlocked_fbf(data, len); 30 } else if (bufmode == _IOLBF) { // line buffered 31 return write_unlocked_lbf(data, len); 32 } else /*if (bufmode == _IONBF) */ { // unbuffered 33 size_t ret_val = write_unlocked_nbf(data, len); 34 flush_unlocked(); 35 return ret_val; 36 } 37 } 38 39 size_t File::write_unlocked_nbf(const void *data, size_t len) { 40 if (pos > 0) { // If the buffer is not empty 41 // Flush the buffer 42 const size_t write_size = pos; 43 size_t bytes_written = platform_write(this, buf, write_size); 44 pos = 0; // Buffer is now empty so reset pos to the beginning. 45 // If less bytes were written than expected, then an error occurred. 46 if (bytes_written < write_size) { 47 err = true; 48 return 0; // No bytes from data were written, so return 0. 49 } 50 } 51 52 size_t written = platform_write(this, data, len); 53 if (written < len) 54 err = true; 55 return written; 56 } 57 58 size_t File::write_unlocked_fbf(const void *data, size_t len) { 59 const size_t init_pos = pos; 60 const size_t bufspace = bufsize - pos; 61 62 // If data is too large to be buffered at all, then just write it unbuffered. 63 if (len > bufspace + bufsize) 64 return write_unlocked_nbf(data, len); 65 66 // we split |data| (conceptually) using the split point. Then we handle the 67 // two pieces separately. 68 const size_t split_point = len < bufspace ? len : bufspace; 69 70 // The primary piece is the piece of |data| we want to write to the buffer 71 // before flushing. It will always fit into the buffer, since the split point 72 // is defined as being min(len, bufspace), and it will always exist if len is 73 // non-zero. 74 cpp::ArrayRef<uint8_t> primary(data, split_point); 75 76 // The second piece is the remainder of |data|. It is written to the buffer if 77 // it fits, or written directly to the output if it doesn't. If the primary 78 // piece fits entirely in the buffer, the remainder may be nothing. 79 cpp::ArrayRef<uint8_t> remainder( 80 static_cast<const uint8_t *>(data) + split_point, len - split_point); 81 82 cpp::MutableArrayRef<uint8_t> bufref(buf, bufsize); 83 84 // Copy the first piece into the buffer. 85 // TODO: Replace the for loop below with a call to internal memcpy. 86 for (size_t i = 0; i < primary.size(); ++i) 87 bufref[pos + i] = primary[i]; 88 pos += primary.size(); 89 90 // If there is no remainder, we can return early, since the first piece has 91 // fit completely into the buffer. 92 if (remainder.size() == 0) 93 return len; 94 95 // We need to flush the buffer now, since there is still data and the buffer 96 // is full. 97 const size_t write_size = pos; 98 size_t bytes_written = platform_write(this, buf, write_size); 99 pos = 0; // Buffer is now empty so reset pos to the beginning. 100 // If less bytes were written than expected, then an error occurred. Return 101 // the number of bytes that have been written from |data|. 102 if (bytes_written < write_size) { 103 err = true; 104 return bytes_written <= init_pos ? 0 : bytes_written - init_pos; 105 } 106 107 // The second piece is handled basically the same as the first, although we 108 // know that if the second piece has data in it then the buffer has been 109 // flushed, meaning that pos is always 0. 110 if (remainder.size() < bufsize) { 111 // TODO: Replace the for loop below with a call to internal memcpy. 112 for (size_t i = 0; i < remainder.size(); ++i) 113 bufref[i] = remainder[i]; 114 pos = remainder.size(); 115 } else { 116 size_t bytes_written = 117 platform_write(this, remainder.data(), remainder.size()); 118 119 // If less bytes were written than expected, then an error occurred. Return 120 // the number of bytes that have been written from |data|. 121 if (bytes_written < remainder.size()) { 122 err = true; 123 return primary.size() + bytes_written; 124 } 125 } 126 127 return len; 128 } 129 130 size_t File::write_unlocked_lbf(const void *data, size_t len) { 131 constexpr char NEWLINE_CHAR = '\n'; 132 size_t last_newline = len; 133 for (size_t i = len; i > 1; --i) { 134 if (static_cast<const char *>(data)[i - 1] == NEWLINE_CHAR) { 135 last_newline = i - 1; 136 break; 137 } 138 } 139 140 // If there is no newline, treat this as fully buffered. 141 if (last_newline == len) { 142 return write_unlocked_fbf(data, len); 143 } 144 145 // we split |data| (conceptually) using the split point. Then we handle the 146 // two pieces separately. 147 const size_t split_point = last_newline + 1; 148 149 // The primary piece is everything in |data| up to the newline. It's written 150 // unbuffered to the output. 151 cpp::ArrayRef<uint8_t> primary(data, split_point); 152 153 // The second piece is the remainder of |data|. It is written fully buffered, 154 // meaning it may stay in the buffer if it fits. 155 cpp::ArrayRef<uint8_t> remainder( 156 static_cast<const uint8_t *>(data) + split_point, len - split_point); 157 158 size_t written = 0; 159 160 written = write_unlocked_nbf(primary.data(), primary.size()); 161 if (written < primary.size()) { 162 err = true; 163 return written; 164 } 165 166 flush_unlocked(); 167 168 written += write_unlocked_fbf(remainder.data(), remainder.size()); 169 if (written < len) { 170 err = true; 171 return written; 172 } 173 174 return len; 175 } 176 177 size_t File::read_unlocked(void *data, size_t len) { 178 if (!read_allowed()) { 179 errno = EBADF; 180 err = true; 181 return 0; 182 } 183 184 prev_op = FileOp::READ; 185 186 cpp::MutableArrayRef<uint8_t> bufref(buf, bufsize); 187 cpp::MutableArrayRef<uint8_t> dataref(data, len); 188 189 // Because read_limit is always greater than equal to pos, 190 // available_data is never a wrapped around value. 191 size_t available_data = read_limit - pos; 192 if (len <= available_data) { 193 // TODO: Replace the for loop below with a call to internal memcpy. 194 for (size_t i = 0; i < len; ++i) 195 dataref[i] = bufref[i + pos]; 196 pos += len; 197 return len; 198 } 199 200 // Copy all of the available data. 201 // TODO: Replace the for loop with a call to internal memcpy. 202 for (size_t i = 0; i < available_data; ++i) 203 dataref[i] = bufref[i + pos]; 204 read_limit = pos = 0; // Reset the pointers. 205 206 size_t to_fetch = len - available_data; 207 if (to_fetch > bufsize) { 208 size_t fetched_size = platform_read(this, data, to_fetch); 209 if (fetched_size < to_fetch) { 210 if (errno == 0) 211 eof = true; 212 else 213 err = true; 214 return available_data + fetched_size; 215 } 216 return len; 217 } 218 219 // Fetch and buffer another buffer worth of data. 220 size_t fetched_size = platform_read(this, buf, bufsize); 221 read_limit += fetched_size; 222 size_t transfer_size = fetched_size >= to_fetch ? to_fetch : fetched_size; 223 for (size_t i = 0; i < transfer_size; ++i) 224 dataref[i] = bufref[i]; 225 pos += transfer_size; 226 if (fetched_size < to_fetch) { 227 if (errno == 0) 228 eof = true; 229 else 230 err = true; 231 } 232 return transfer_size + available_data; 233 } 234 235 int File::seek(long offset, int whence) { 236 FileLock lock(this); 237 if (prev_op == FileOp::WRITE && pos > 0) { 238 size_t transferred_size = platform_write(this, buf, pos); 239 if (transferred_size < pos) { 240 err = true; 241 return -1; 242 } 243 } else if (prev_op == FileOp::READ && whence == SEEK_CUR) { 244 // More data could have been read out from the platform file than was 245 // required. So, we have to adjust the offset we pass to platform seek 246 // function. Note that read_limit >= pos is always true. 247 offset -= (read_limit - pos); 248 } 249 pos = read_limit = 0; 250 prev_op = FileOp::SEEK; 251 // Reset the eof flag as a seek might move the file positon to some place 252 // readable. 253 eof = false; 254 return platform_seek(this, offset, whence); 255 } 256 257 int File::flush_unlocked() { 258 if (prev_op == FileOp::WRITE && pos > 0) { 259 size_t transferred_size = platform_write(this, buf, pos); 260 if (transferred_size < pos) { 261 err = true; 262 return -1; 263 } 264 pos = 0; 265 return platform_flush(this); 266 } 267 // TODO: Add POSIX behavior for input streams. 268 return 0; 269 } 270 271 int File::close() { 272 { 273 FileLock lock(this); 274 if (prev_op == FileOp::WRITE && pos > 0) { 275 size_t transferred_size = platform_write(this, buf, pos); 276 if (transferred_size < pos) { 277 err = true; 278 return -1; 279 } 280 } 281 if (platform_close(this) != 0) 282 return -1; 283 if (own_buf) 284 free(buf); 285 } 286 free(this); 287 return 0; 288 } 289 290 void File::set_buffer(void *buffer, size_t size, bool owned) { 291 if (own_buf) 292 free(buf); 293 buf = buffer; 294 bufsize = size; 295 own_buf = owned; 296 } 297 298 File::ModeFlags File::mode_flags(const char *mode) { 299 // First character in |mode| should be 'a', 'r' or 'w'. 300 if (*mode != 'a' && *mode != 'r' && *mode != 'w') 301 return 0; 302 303 // There should be exaclty one main mode ('a', 'r' or 'w') character. 304 // If there are more than one main mode characters listed, then 305 // we will consider |mode| as incorrect and return 0; 306 int main_mode_count = 0; 307 308 ModeFlags flags = 0; 309 for (; *mode != '\0'; ++mode) { 310 switch (*mode) { 311 case 'r': 312 flags |= static_cast<ModeFlags>(OpenMode::READ); 313 ++main_mode_count; 314 break; 315 case 'w': 316 flags |= static_cast<ModeFlags>(OpenMode::WRITE); 317 ++main_mode_count; 318 break; 319 case '+': 320 flags |= static_cast<ModeFlags>(OpenMode::PLUS); 321 break; 322 case 'b': 323 flags |= static_cast<ModeFlags>(ContentType::BINARY); 324 break; 325 case 'a': 326 flags |= static_cast<ModeFlags>(OpenMode::APPEND); 327 ++main_mode_count; 328 break; 329 case 'x': 330 flags |= static_cast<ModeFlags>(CreateType::EXCLUSIVE); 331 break; 332 default: 333 return 0; 334 } 335 } 336 337 if (main_mode_count != 1) 338 return 0; 339 340 return flags; 341 } 342 343 } // namespace __llvm_libc 344