1==================== 2Objective-C Literals 3==================== 4 5Introduction 6============ 7 8Three new features were introduced into clang at the same time: 9*NSNumber Literals* provide a syntax for creating ``NSNumber`` from 10scalar literal expressions; *Collection Literals* provide a short-hand 11for creating arrays and dictionaries; *Object Subscripting* provides a 12way to use subscripting with Objective-C objects. Users of Apple 13compiler releases can use these features starting with the Apple LLVM 14Compiler 4.0. Users of open-source LLVM.org compiler releases can use 15these features starting with clang v3.1. 16 17These language additions simplify common Objective-C programming 18patterns, make programs more concise, and improve the safety of 19container creation. 20 21This document describes how the features are implemented in clang, and 22how to use them in your own programs. 23 24NSNumber Literals 25================= 26 27The framework class ``NSNumber`` is used to wrap scalar values inside 28objects: signed and unsigned integers (``char``, ``short``, ``int``, 29``long``, ``long long``), floating point numbers (``float``, 30``double``), and boolean values (``BOOL``, C++ ``bool``). Scalar values 31wrapped in objects are also known as *boxed* values. 32 33In Objective-C, any character, numeric or boolean literal prefixed with 34the ``'@'`` character will evaluate to a pointer to an ``NSNumber`` 35object initialized with that value. C's type suffixes may be used to 36control the size of numeric literals. 37 38Examples 39-------- 40 41The following program illustrates the rules for ``NSNumber`` literals: 42 43.. code-block:: objc 44 45 void main(int argc, const char *argv[]) { 46 // character literals. 47 NSNumber *theLetterZ = @'Z'; // equivalent to [NSNumber numberWithChar:'Z'] 48 49 // integral literals. 50 NSNumber *fortyTwo = @42; // equivalent to [NSNumber numberWithInt:42] 51 NSNumber *fortyTwoUnsigned = @42U; // equivalent to [NSNumber numberWithUnsignedInt:42U] 52 NSNumber *fortyTwoLong = @42L; // equivalent to [NSNumber numberWithLong:42L] 53 NSNumber *fortyTwoLongLong = @42LL; // equivalent to [NSNumber numberWithLongLong:42LL] 54 55 // floating point literals. 56 NSNumber *piFloat = @3.141592654F; // equivalent to [NSNumber numberWithFloat:3.141592654F] 57 NSNumber *piDouble = @3.1415926535; // equivalent to [NSNumber numberWithDouble:3.1415926535] 58 59 // BOOL literals. 60 NSNumber *yesNumber = @YES; // equivalent to [NSNumber numberWithBool:YES] 61 NSNumber *noNumber = @NO; // equivalent to [NSNumber numberWithBool:NO] 62 63 #ifdef __cplusplus 64 NSNumber *trueNumber = @true; // equivalent to [NSNumber numberWithBool:(BOOL)true] 65 NSNumber *falseNumber = @false; // equivalent to [NSNumber numberWithBool:(BOOL)false] 66 #endif 67 } 68 69Discussion 70---------- 71 72NSNumber literals only support literal scalar values after the ``'@'``. 73Consequently, ``@INT_MAX`` works, but ``@INT_MIN`` does not, because 74they are defined like this: 75 76.. code-block:: objc 77 78 #define INT_MAX 2147483647 /* max value for an int */ 79 #define INT_MIN (-2147483647-1) /* min value for an int */ 80 81The definition of ``INT_MIN`` is not a simple literal, but a 82parenthesized expression. Parenthesized expressions are supported using 83the `boxed expression <#objc_boxed_expressions>`_ syntax, which is 84described in the next section. 85 86Because ``NSNumber`` does not currently support wrapping ``long double`` 87values, the use of a ``long double NSNumber`` literal (e.g. 88``@123.23L``) will be rejected by the compiler. 89 90Previously, the ``BOOL`` type was simply a typedef for ``signed char``, 91and ``YES`` and ``NO`` were macros that expand to ``(BOOL)1`` and 92``(BOOL)0`` respectively. To support ``@YES`` and ``@NO`` expressions, 93these macros are now defined using new language keywords in 94``<objc/objc.h>``: 95 96.. code-block:: objc 97 98 #if __has_feature(objc_bool) 99 #define YES __objc_yes 100 #define NO __objc_no 101 #else 102 #define YES ((BOOL)1) 103 #define NO ((BOOL)0) 104 #endif 105 106The compiler implicitly converts ``__objc_yes`` and ``__objc_no`` to 107``(BOOL)1`` and ``(BOOL)0``. The keywords are used to disambiguate 108``BOOL`` and integer literals. 109 110Objective-C++ also supports ``@true`` and ``@false`` expressions, which 111are equivalent to ``@YES`` and ``@NO``. 112 113Boxed Expressions 114================= 115 116Objective-C provides a new syntax for boxing C expressions: 117 118.. code-block:: objc 119 120 @( <expression> ) 121 122Expressions of scalar (numeric, enumerated, BOOL) and C string pointer 123types are supported: 124 125.. code-block:: objc 126 127 // numbers. 128 NSNumber *smallestInt = @(-INT_MAX - 1); // [NSNumber numberWithInt:(-INT_MAX - 1)] 129 NSNumber *piOverTwo = @(M_PI / 2); // [NSNumber numberWithDouble:(M_PI / 2)] 130 131 // enumerated types. 132 typedef enum { Red, Green, Blue } Color; 133 NSNumber *favoriteColor = @(Green); // [NSNumber numberWithInt:((int)Green)] 134 135 // strings. 136 NSString *path = @(getenv("PATH")); // [NSString stringWithUTF8String:(getenv("PATH"))] 137 NSArray *pathComponents = [path componentsSeparatedByString:@":"]; 138 139Boxed Enums 140----------- 141 142Cocoa frameworks frequently define constant values using *enums.* 143Although enum values are integral, they may not be used directly as 144boxed literals (this avoids conflicts with future ``'@'``-prefixed 145Objective-C keywords). Instead, an enum value must be placed inside a 146boxed expression. The following example demonstrates configuring an 147``AVAudioRecorder`` using a dictionary that contains a boxed enumeration 148value: 149 150.. code-block:: objc 151 152 enum { 153 AVAudioQualityMin = 0, 154 AVAudioQualityLow = 0x20, 155 AVAudioQualityMedium = 0x40, 156 AVAudioQualityHigh = 0x60, 157 AVAudioQualityMax = 0x7F 158 }; 159 160 - (AVAudioRecorder *)recordToFile:(NSURL *)fileURL { 161 NSDictionary *settings = @{ AVEncoderAudioQualityKey : @(AVAudioQualityMax) }; 162 return [[AVAudioRecorder alloc] initWithURL:fileURL settings:settings error:NULL]; 163 } 164 165The expression ``@(AVAudioQualityMax)`` converts ``AVAudioQualityMax`` 166to an integer type, and boxes the value accordingly. If the enum has a 167:ref:`fixed underlying type <objc-fixed-enum>` as in: 168 169.. code-block:: objc 170 171 typedef enum : unsigned char { Red, Green, Blue } Color; 172 NSNumber *red = @(Red), *green = @(Green), *blue = @(Blue); // => [NSNumber numberWithUnsignedChar:] 173 174then the fixed underlying type will be used to select the correct 175``NSNumber`` creation method. 176 177Boxing a value of enum type will result in a ``NSNumber`` pointer with a 178creation method according to the underlying type of the enum, which can 179be a :ref:`fixed underlying type <objc-fixed-enum>` 180or a compiler-defined integer type capable of representing the values of 181all the members of the enumeration: 182 183.. code-block:: objc 184 185 typedef enum : unsigned char { Red, Green, Blue } Color; 186 Color col = Red; 187 NSNumber *nsCol = @(col); // => [NSNumber numberWithUnsignedChar:] 188 189Boxed C Strings 190--------------- 191 192A C string literal prefixed by the ``'@'`` token denotes an ``NSString`` 193literal in the same way a numeric literal prefixed by the ``'@'`` token 194denotes an ``NSNumber`` literal. When the type of the parenthesized 195expression is ``(char *)`` or ``(const char *)``, the result of the 196boxed expression is a pointer to an ``NSString`` object containing 197equivalent character data, which is assumed to be '\\0'-terminated and 198UTF-8 encoded. The following example converts C-style command line 199arguments into ``NSString`` objects. 200 201.. code-block:: objc 202 203 // Partition command line arguments into positional and option arguments. 204 NSMutableArray *args = [NSMutableArray new]; 205 NSMutableDictionary *options = [NSMutableDictionary new]; 206 while (--argc) { 207 const char *arg = *++argv; 208 if (strncmp(arg, "--", 2) == 0) { 209 options[@(arg + 2)] = @(*++argv); // --key value 210 } else { 211 [args addObject:@(arg)]; // positional argument 212 } 213 } 214 215As with all C pointers, character pointer expressions can involve 216arbitrary pointer arithmetic, therefore programmers must ensure that the 217character data is valid. Passing ``NULL`` as the character pointer will 218raise an exception at runtime. When possible, the compiler will reject 219``NULL`` character pointers used in boxed expressions. 220 221Availability 222------------ 223 224Boxed expressions will be available in clang 3.2. It is not currently 225available in any Apple compiler. 226 227Container Literals 228================== 229 230Objective-C now supports a new expression syntax for creating immutable 231array and dictionary container objects. 232 233Examples 234-------- 235 236Immutable array expression: 237 238.. code-block:: objc 239 240 NSArray *array = @[ @"Hello", NSApp, [NSNumber numberWithInt:42] ]; 241 242This creates an ``NSArray`` with 3 elements. The comma-separated 243sub-expressions of an array literal can be any Objective-C object 244pointer typed expression. 245 246Immutable dictionary expression: 247 248.. code-block:: objc 249 250 NSDictionary *dictionary = @{ 251 @"name" : NSUserName(), 252 @"date" : [NSDate date], 253 @"processInfo" : [NSProcessInfo processInfo] 254 }; 255 256This creates an ``NSDictionary`` with 3 key/value pairs. Value 257sub-expressions of a dictionary literal must be Objective-C object 258pointer typed, as in array literals. Key sub-expressions must be of an 259Objective-C object pointer type that implements the 260``<NSCopying>`` protocol. 261 262Discussion 263---------- 264 265Neither keys nor values can have the value ``nil`` in containers. If the 266compiler can prove that a key or value is ``nil`` at compile time, then 267a warning will be emitted. Otherwise, a runtime error will occur. 268 269Using array and dictionary literals is safer than the variadic creation 270forms commonly in use today. Array literal expressions expand to calls 271to ``+[NSArray arrayWithObjects:count:]``, which validates that all 272objects are non-``nil``. The variadic form, 273``+[NSArray arrayWithObjects:]`` uses ``nil`` as an argument list 274terminator, which can lead to malformed array objects. Dictionary 275literals are similarly created with 276``+[NSDictionary dictionaryWithObjects:forKeys:count:]`` which validates 277all objects and keys, unlike 278``+[NSDictionary dictionaryWithObjectsAndKeys:]`` which also uses a 279``nil`` parameter as an argument list terminator. 280 281Object Subscripting 282=================== 283 284Objective-C object pointer values can now be used with C's subscripting 285operator. 286 287Examples 288-------- 289 290The following code demonstrates the use of object subscripting syntax 291with ``NSMutableArray`` and ``NSMutableDictionary`` objects: 292 293.. code-block:: objc 294 295 NSMutableArray *array = ...; 296 NSUInteger idx = ...; 297 id newObject = ...; 298 id oldObject = array[idx]; 299 array[idx] = newObject; // replace oldObject with newObject 300 301 NSMutableDictionary *dictionary = ...; 302 NSString *key = ...; 303 oldObject = dictionary[key]; 304 dictionary[key] = newObject; // replace oldObject with newObject 305 306The next section explains how subscripting expressions map to accessor 307methods. 308 309Subscripting Methods 310-------------------- 311 312Objective-C supports two kinds of subscript expressions: *array-style* 313subscript expressions use integer typed subscripts; *dictionary-style* 314subscript expressions use Objective-C object pointer typed subscripts. 315Each type of subscript expression is mapped to a message send using a 316predefined selector. The advantage of this design is flexibility: class 317designers are free to introduce subscripting by declaring methods or by 318adopting protocols. Moreover, because the method names are selected by 319the type of the subscript, an object can be subscripted using both array 320and dictionary styles. 321 322Array-Style Subscripting 323^^^^^^^^^^^^^^^^^^^^^^^^ 324 325When the subscript operand has an integral type, the expression is 326rewritten to use one of two different selectors, depending on whether 327the element is being read or written. When an expression reads an 328element using an integral index, as in the following example: 329 330.. code-block:: objc 331 332 NSUInteger idx = ...; 333 id value = object[idx]; 334 335it is translated into a call to ``objectAtIndexedSubscript:`` 336 337.. code-block:: objc 338 339 id value = [object objectAtIndexedSubscript:idx]; 340 341When an expression writes an element using an integral index: 342 343.. code-block:: objc 344 345 object[idx] = newValue; 346 347it is translated to a call to ``setObject:atIndexedSubscript:`` 348 349.. code-block:: objc 350 351 [object setObject:newValue atIndexedSubscript:idx]; 352 353These message sends are then type-checked and performed just like 354explicit message sends. The method used for objectAtIndexedSubscript: 355must be declared with an argument of integral type and a return value of 356some Objective-C object pointer type. The method used for 357setObject:atIndexedSubscript: must be declared with its first argument 358having some Objective-C pointer type and its second argument having 359integral type. 360 361The meaning of indexes is left up to the declaring class. The compiler 362will coerce the index to the appropriate argument type of the method it 363uses for type-checking. For an instance of ``NSArray``, reading an 364element using an index outside the range ``[0, array.count)`` will raise 365an exception. For an instance of ``NSMutableArray``, assigning to an 366element using an index within this range will replace that element, but 367assigning to an element using an index outside this range will raise an 368exception; no syntax is provided for inserting, appending, or removing 369elements for mutable arrays. 370 371A class need not declare both methods in order to take advantage of this 372language feature. For example, the class ``NSArray`` declares only 373``objectAtIndexedSubscript:``, so that assignments to elements will fail 374to type-check; moreover, its subclass ``NSMutableArray`` declares 375``setObject:atIndexedSubscript:``. 376 377Dictionary-Style Subscripting 378^^^^^^^^^^^^^^^^^^^^^^^^^^^^^ 379 380When the subscript operand has an Objective-C object pointer type, the 381expression is rewritten to use one of two different selectors, depending 382on whether the element is being read from or written to. When an 383expression reads an element using an Objective-C object pointer 384subscript operand, as in the following example: 385 386.. code-block:: objc 387 388 id key = ...; 389 id value = object[key]; 390 391it is translated into a call to the ``objectForKeyedSubscript:`` method: 392 393.. code-block:: objc 394 395 id value = [object objectForKeyedSubscript:key]; 396 397When an expression writes an element using an Objective-C object pointer 398subscript: 399 400.. code-block:: objc 401 402 object[key] = newValue; 403 404it is translated to a call to ``setObject:forKeyedSubscript:`` 405 406.. code-block:: objc 407 408 [object setObject:newValue forKeyedSubscript:key]; 409 410The behavior of ``setObject:forKeyedSubscript:`` is class-specific; but 411in general it should replace an existing value if one is already 412associated with a key, otherwise it should add a new value for the key. 413No syntax is provided for removing elements from mutable dictionaries. 414 415Discussion 416---------- 417 418An Objective-C subscript expression occurs when the base operand of the 419C subscript operator has an Objective-C object pointer type. Since this 420potentially collides with pointer arithmetic on the value, these 421expressions are only supported under the modern Objective-C runtime, 422which categorically forbids such arithmetic. 423 424Currently, only subscripts of integral or Objective-C object pointer 425type are supported. In C++, a class type can be used if it has a single 426conversion function to an integral or Objective-C pointer type, in which 427case that conversion is applied and analysis continues as appropriate. 428Otherwise, the expression is ill-formed. 429 430An Objective-C object subscript expression is always an l-value. If the 431expression appears on the left-hand side of a simple assignment operator 432(=), the element is written as described below. If the expression 433appears on the left-hand side of a compound assignment operator (e.g. 434+=), the program is ill-formed, because the result of reading an element 435is always an Objective-C object pointer and no binary operators are 436legal on such pointers. If the expression appears in any other position, 437the element is read as described below. It is an error to take the 438address of a subscript expression, or (in C++) to bind a reference to 439it. 440 441Programs can use object subscripting with Objective-C object pointers of 442type ``id``. Normal dynamic message send rules apply; the compiler must 443see *some* declaration of the subscripting methods, and will pick the 444declaration seen first. 445 446Caveats 447======= 448 449Objects created using the literal or boxed expression syntax are not 450guaranteed to be uniqued by the runtime, but nor are they guaranteed to 451be newly-allocated. As such, the result of performing direct comparisons 452against the location of an object literal (using ``==``, ``!=``, ``<``, 453``<=``, ``>``, or ``>=``) is not well-defined. This is usually a simple 454mistake in code that intended to call the ``isEqual:`` method (or the 455``compare:`` method). 456 457This caveat applies to compile-time string literals as well. 458Historically, string literals (using the ``@"..."`` syntax) have been 459uniqued across translation units during linking. This is an 460implementation detail of the compiler and should not be relied upon. If 461you are using such code, please use global string constants instead 462(``NSString * const MyConst = @"..."``) or use ``isEqual:``. 463 464Grammar Additions 465================= 466 467To support the new syntax described above, the Objective-C 468``@``-expression grammar has the following new productions: 469 470:: 471 472 objc-at-expression : '@' (string-literal | encode-literal | selector-literal | protocol-literal | object-literal) 473 ; 474 475 object-literal : ('+' | '-')? numeric-constant 476 | character-constant 477 | boolean-constant 478 | array-literal 479 | dictionary-literal 480 ; 481 482 boolean-constant : '__objc_yes' | '__objc_no' | 'true' | 'false' /* boolean keywords. */ 483 ; 484 485 array-literal : '[' assignment-expression-list ']' 486 ; 487 488 assignment-expression-list : assignment-expression (',' assignment-expression-list)? 489 | /* empty */ 490 ; 491 492 dictionary-literal : '{' key-value-list '}' 493 ; 494 495 key-value-list : key-value-pair (',' key-value-list)? 496 | /* empty */ 497 ; 498 499 key-value-pair : assignment-expression ':' assignment-expression 500 ; 501 502Note: ``@true`` and ``@false`` are only supported in Objective-C++. 503 504Availability Checks 505=================== 506 507Programs test for the new features by using clang's \_\_has\_feature 508checks. Here are examples of their use: 509 510.. code-block:: objc 511 512 #if __has_feature(objc_array_literals) 513 // new way. 514 NSArray *elements = @[ @"H", @"He", @"O", @"C" ]; 515 #else 516 // old way (equivalent). 517 id objects[] = { @"H", @"He", @"O", @"C" }; 518 NSArray *elements = [NSArray arrayWithObjects:objects count:4]; 519 #endif 520 521 #if __has_feature(objc_dictionary_literals) 522 // new way. 523 NSDictionary *masses = @{ @"H" : @1.0078, @"He" : @4.0026, @"O" : @15.9990, @"C" : @12.0096 }; 524 #else 525 // old way (equivalent). 526 id keys[] = { @"H", @"He", @"O", @"C" }; 527 id values[] = { [NSNumber numberWithDouble:1.0078], [NSNumber numberWithDouble:4.0026], 528 [NSNumber numberWithDouble:15.9990], [NSNumber numberWithDouble:12.0096] }; 529 NSDictionary *masses = [NSDictionary dictionaryWithObjects:objects forKeys:keys count:4]; 530 #endif 531 532 #if __has_feature(objc_subscripting) 533 NSUInteger i, count = elements.count; 534 for (i = 0; i < count; ++i) { 535 NSString *element = elements[i]; 536 NSNumber *mass = masses[element]; 537 NSLog(@"the mass of %@ is %@", element, mass); 538 } 539 #else 540 NSUInteger i, count = [elements count]; 541 for (i = 0; i < count; ++i) { 542 NSString *element = [elements objectAtIndex:i]; 543 NSNumber *mass = [masses objectForKey:element]; 544 NSLog(@"the mass of %@ is %@", element, mass); 545 } 546 #endif 547 548Code can use also ``__has_feature(objc_bool)`` to check for the 549availability of numeric literals support. This checks for the new 550``__objc_yes / __objc_no`` keywords, which enable the use of 551``@YES / @NO`` literals. 552 553To check whether boxed expressions are supported, use 554``__has_feature(objc_boxed_expressions)`` feature macro. 555