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T) rHrGréÚcopyrrüÚpopÚvaluesrXrYr r?rL)rOZ arg_attrsrÐrîr\rRrRrSr?üs      cst ˆ¡‡fdd„ƒ}|S)z©Decorator to give another decorator the @no_type_check effect. This wraps the decorator with something that wraps the decorated function in @no_type_check. csˆ||Ž}t|ƒ}|S)N)r?)rzr{r})Ú decoratorrRrSÚwrapped_decorators z2no_type_check_decorator..wrapped_decorator)rrƒ)rrrR)rrSr@scOs tdƒ‚dS)z*Helper for @overload to raise when called.z´You should not call an overloaded function. A series of @overload-decorated functions outside a stub module should always be followed by an implementation that is not @overload-ed.N)ÚNotImplementedError)rzr{rRrRrSÚ_overload_dummy&srcCstS)a Decorator for overloaded functions/methods. In a stub file, place two or more stub definitions for the same function in a row, each decorated with @overload. For example: @overload def utf8(value: None) -> None: ... @overload def utf8(value: bytes) -> bytes: ... @overload def utf8(value: str) -> bytes: ... 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This implements a simple-minded structural issubclass check (similar but more general than the one-offs in collections.abc such as Hashable). rRTcs tƒ |¡S)N)r˜rø)rqrw)ršrRrSrøœsz_Protocol.__class_getitem__)rZrVrWr�r‘rrørªrRrR)ršrSrF�srF)Ú metaclassÚTÚKTÚVTÚT_co)rºÚV_coÚVT_coÚT_contra)r»ÚCT_co)rºr¹cCst||d|d�S)NT)rÓrÒ)rJ)rØrwrÒrRrRrSÚ_alias²sr/rR)rÓa�Callable type; Callable[[int], str] is a function of (int) -> str. The subscription syntax must always be used with exactly two values: the argument list and the return type. The argument list must be a list of types or ellipsis; the return type must be a single type. There is no syntax to indicate optional or keyword arguments, such function types are rarely used as callback types. F)rÒrÓa@Tuple type; Tuple[X, Y] is the cross-product type of X and Y. Example: Tuple[T1, T2] is a tuple of two elements corresponding to type variables T1 and T2. Tuple[int, float, str] is a tuple of an int, a float and a string. To specify a variable-length tuple of homogeneous type, use Tuple[T, ...]. )rÒa¾A special construct usable to annotate class objects. For example, suppose we have the following classes:: class User: ... # Abstract base for User classes class BasicUser(User): ... class ProUser(User): ... class TeamUser(User): ... And a function that takes a class argument that's a subclass of User and returns an instance of the corresponding class:: U = TypeVar('U', bound=User) def new_user(user_class: Type[U]) -> U: user = user_class() # (Here we could write the user object to a database) return user joe = new_user(BasicUser) At this point the type checker knows that joe has type BasicUser. c@s&eZdZdZdZeedœdd„ƒZdS)r.z(An ABC with one abstract method __int__.rR)ÚreturncCsdS)NrR)rŽrRrRrSÚ__int__ szSupportsInt.__int__N)rZrVrWr�r‘rÚintr1rRrRrRrSr.sc@s&eZdZdZdZeedœdd„ƒZdS)r-z*An ABC with one abstract method __float__.rR)r0cCsdS)NrR)rŽrRrRrSÚ __float__szSupportsFloat.__float__N)rZrVrWr�r‘rÚfloatr3rRrRrRrSr-sc@s&eZdZdZdZeedœdd„ƒZdS)r,z,An ABC with one abstract method __complex__.rR)r0cCsdS)NrR)rŽrRrRrSÚ __complex__szSupportsComplex.__complex__N)rZrVrWr�r‘rÚcomplexr5rRrRrRrSr,sc@s&eZdZdZdZeedœdd„ƒZdS)r+z*An ABC with one abstract method __bytes__.rR)r0cCsdS)NrR)rŽrRrRrSÚ __bytes__'szSupportsBytes.__bytes__N)rZrVrWr�r‘rÚbytesr7rRrRrRrSr+#sc@s&eZdZdZdZeedœdd„ƒZdS)r*zMAn ABC with one abstract method __abs__ that is covariant in its return type.rR)r0cCsdS)NrR)rŽrRrRrSÚ__abs__0szSupportsAbs.__abs__N)rZrVrWr�r‘rr*r9rRrRrRrSr*,sc@s*eZdZdZdZedeedœdd„ƒZdS) r/zOAn ABC with one abstract method __round__ that is covariant in its return type.rRr)Úndigitsr0cCsdS)NrR)rŽr:rRrRrSÚ __round__9szSupportsRound.__round__N)r) rZrVrWr�r‘rr2r*r;rRrRrRrSr/5sc svd‰‡fdd„|Dƒ}t |dd„|Dƒ¡}t |¡|_|_yt d¡j dd¡|_ Wnt t fk rpYnX|S)NzDNamedTuple('Name', [(f0, t0), (f1, t1), ...]); each t must be a typecsg|]\}}|t|ˆƒf‘qSrR)rT)r^Únr_)rPrRrSra@sz!_make_nmtuple..cSsg|] \}}|‘qSrRrR)r^r<r_rRrRrSraAsrÙrZr¼) rôÚ namedtupler6r Ú _field_typesrÀrÁrÂrÃrVrÄr¾)r›rXÚnm_tplrR)rPrSÚ _make_nmtuple>sr@) r™r�r‘Ú__getnewargs__Ú_fieldsÚ_field_defaultsr>Ú_makeÚ_replaceÚ_asdictZ_source)rVrZr cseZdZ‡fdd„Z‡ZS)ÚNamedTupleMetac sü| dd¡rtƒ ||||¡S| di¡}t|| ¡ƒ}g}i}xP|D]H}||krn||} | | ¡| ||<qF|rFtdj|d |  ¡¡d�ƒ‚qFWt   |¡|j_ t |ƒ|j_||_xD|D]<} | tkrÒtd| ƒ‚q¸| tkr¸| |jkr¸t|| || ƒq¸W|S)Nr�Fr zXNon-default namedtuple field {field_name} cannot follow default field(s) {default_names}z, )Ú field_nameZ default_namesz&Cannot overwrite NamedTuple attribute )rÃr˜r™r@rrbrLrrßr#rôr6r rfrrCÚ _prohibitedrÄrcrBrí) rqÚtypenamerçÚnsrXr?rZ defaults_dictrHZ default_valueÚkey)ršrRrSr™Vs0       zNamedTupleMeta.__new__)rZrVrWr™rªrRrR)ršrSrGTsrGc@s"eZdZdZdZdd„Zde_dS)r9a4Typed version of namedtuple. Usage in Python versions >= 3.6:: class Employee(NamedTuple): name: str id: int This is equivalent to:: Employee = collections.namedtuple('Employee', ['name', 'id']) The resulting class has extra __annotations__ and _field_types attributes, giving an ordered dict mapping field names to types. __annotations__ should be preferred, while _field_types is kept to maintain pre PEP 526 compatibility. (The field names are in the _fields attribute, which is part of the namedtuple API.) Alternative equivalent keyword syntax is also accepted:: Employee = NamedTuple('Employee', name=str, id=int) In Python versions <= 3.5 use:: Employee = NamedTuple('Employee', [('name', str), ('id', int)]) TcOsÊ|s tdƒ‚|^}}|r"|^}}nd|kr6| d¡}ntdƒ‚|r~y |\}Wq¢tk rztdt|ƒd›d�ƒd‚Yq¢Xn$d|kržt|ƒdkrž| d¡}nd}|dkr´| ¡}n |rÀtd ƒ‚t||ƒS) Nz*NamedTuple.__new__(): not enough argumentsrJzGNamedTuple.__new__() missing 1 required positional argument: 'typename'z@NamedTuple.__new__() takes from 2 to 3 positional arguments but rÙz were givenÚfieldsrtzIEither list of fields or keywords can be provided to NamedTuple, not both)rLrr¾rprr@)rzrárqrJrMrRrRrSr™�s,      zNamedTuple.__new__z*($cls, typename, fields=None, /, **kwargs)N)rZrVrWr�r�r™Ú__text_signature__rRrRrRrSr9sscCsdd„}||_||_|S)a%NewType creates simple unique types with almost zero runtime overhead. NewType(name, tp) is considered a subtype of tp by static type checkers. At runtime, NewType(name, tp) returns a dummy function that simply returns its argument. Usage:: UserId = NewType('UserId', int) def name_by_id(user_id: UserId) -> str: ... UserId('user') # Fails type check name_by_id(42) # Fails type check name_by_id(UserId(42)) # OK num = UserId(5) + 1 # type: int cSs|S)NrR)ÚxrRrRrSÚnew_typeÂszNewType..new_type)rZZ __supertype__)r›rmrPrRrRrSr>¯sc@sžeZdZdZdZeedœdd„ƒZeedœdd„ƒZe ddœd d „ƒZ ee dœd d „ƒZ e e dœd d„ƒZe ddœdd„ƒZe e dœdd„ƒZe d7e edœdd„ƒZe e dœdd„ƒZe d8e edœdd„ƒZe d9e eedœdd„ƒZe d:e e e d œd!d"„ƒZe e dœd#d$„ƒZe e dœd%d&„ƒZe d;e e d'œd(d)„ƒZe e dœd*d+„ƒZe ee d,œd-d.„ƒZe eedd/œd0d1„ƒZe d2dœd3d4„ƒZe ddœd5d6„ƒZdS)<ÚIOaûGeneric base class for TextIO and BinaryIO. This is an abstract, generic version of the return of open(). NOTE: This does not distinguish between the different possible classes (text vs. binary, read vs. write vs. read/write, append-only, unbuffered). The TextIO and BinaryIO subclasses below capture the distinctions between text vs. binary, which is pervasive in the interface; however we currently do not offer a way to track the other distinctions in the type system. rR)r0cCsdS)NrR)rŽrRrRrSÚmodeászIO.modecCsdS)NrR)rŽrRrRrSr›åszIO.nameNcCsdS)NrR)rŽrRrRrSÚcloseészIO.closecCsdS)NrR)rŽrRrRrSÚclosedísz IO.closedcCsdS)NrR)rŽrRrRrSÚfilenoñsz IO.filenocCsdS)NrR)rŽrRrRrSÚflushõszIO.flushcCsdS)NrR)rŽrRrRrSÚisattyùsz IO.isattyrÝ)r<r0cCsdS)NrR)rŽr<rRrRrSÚreadýszIO.readcCsdS)NrR)rŽrRrRrSÚreadablesz IO.readable)Úlimitr0cCsdS)NrR)rŽrZrRrRrSÚreadlinesz IO.readline)Úhintr0cCsdS)NrR)rŽr\rRrRrSÚ readlines sz IO.readlinesr)ÚoffsetÚwhencer0cCsdS)NrR)rŽr^r_rRrRrSÚseek szIO.seekcCsdS)NrR)rŽrRrRrSÚseekablesz IO.seekablecCsdS)NrR)rŽrRrRrSÚtellszIO.tell)Úsizer0cCsdS)NrR)rŽrcrRrRrSÚtruncatesz IO.truncatecCsdS)NrR)rŽrRrRrSÚwritablesz IO.writable)Úsr0cCsdS)NrR)rŽrfrRrRrSÚwrite!szIO.write)Úlinesr0cCsdS)NrR)rŽrhrRrRrSÚ writelines%sz IO.writelinesz IO[AnyStr]cCsdS)NrR)rŽrRrRrSÚ __enter__)sz IO.__enter__cCsdS)NrR)rŽrGrÚ tracebackrRrRrSÚ__exit__-sz IO.__exit__)rÝ)rÝ)rÝ)r)N) rZrVrWr�r‘rrIrRr›rrSr¿rTr2rUrVrWr;rXrYr[r5r]r`rarbrdrergrirjrlrRrRrRrSrQÒsT rQc@sBeZdZdZdZeeeefe dœdd„ƒZ eddœdd„ƒZ d S) ÚBinaryIOz5Typed version of the return of open() in binary mode.rR)rfr0cCsdS)NrR)rŽrfrRrRrSrg7szBinaryIO.write)r0cCsdS)NrR)rŽrRrRrSrj;szBinaryIO.__enter__N) rZrVrWr�r‘rrr8Ú bytearrayr2rgrjrRrRrRrSrm2s rmc@s„eZdZdZdZeedœdd„ƒZeedœdd„ƒZ ee edœdd „ƒZ ee dœd d „ƒZ eedœd d „ƒZeddœdd„ƒZdS)ÚTextIOz3Typed version of the return of open() in text mode.rR)r0cCsdS)NrR)rŽrRrRrSÚbufferEsz TextIO.buffercCsdS)NrR)rŽrRrRrSÚencodingIszTextIO.encodingcCsdS)NrR)rŽrRrRrSÚerrorsMsz TextIO.errorscCsdS)NrR)rŽrRrRrSÚline_bufferingQszTextIO.line_bufferingcCsdS)NrR)rŽrRrRrSÚnewlinesUszTextIO.newlinescCsdS)NrR)rŽrRrRrSrjYszTextIO.__enter__N)rZrVrWr�r‘rrmrprIrqr rrr¿rsrrtrrjrRrRrRrSro@sroc@s&eZdZdZdddgZeZeZeZdS)Úioz)Wrapper namespace for IO generic classes.rQrormN)rZrVrWr�Ú__all__rQrormrRrRrRrSru^s  ruz.ioc@s eZdZdZddgZeZeZdS)Úrez&Wrapper namespace for re type aliases.ÚPatternÚMatchN)rZrVrWr�rvrxryrRrRrRrSrwmsrwz.re)T)NN)T)‹r�rõrrrôZcollections.abcÚ contextlibrrðrwZ stdlib_rerÀrXrrrrvrTr]rgrkrsryr�r„r…r‹r’rMrrAr rr r rr×rÑrJròr rÕrÔr<rrYÚBuiltinFunctionTypeÚ MethodTyperrr=r?r@rrBrGrrFr'r(r)r*r+r,r-r.r8rIr;r/rr"r%r$r#rrr)r rr&rr7rrrrrrrrfr rhr5rËr2rurÊr8rrrr!ÚAbstractContextManagerrÚAbstractAsyncContextManagerr(rÉr3rÌr4r6r1r0r:r'rr.r-r,r+r*r/r@rIrcrGr9r>rCrDrQrmrorurZrrxryrRrRrRrSÚs’ !   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