Module Core_kernel__.Std_internal
included first so that everything else shadows it
include Core_kernel__.Core_pervasives
Exceptions
Comparisons
val (=) : 'a -> 'a -> boole1 = e2tests for structural equality ofe1ande2. Mutable structures (e.g. references and arrays) are equal if and only if their current contents are structurally equal, even if the two mutable objects are not the same physical object. Equality between functional values raisesInvalid_argument. Equality between cyclic data structures may not terminate.
val (>=) : 'a -> 'a -> boolStructural ordering functions. These functions coincide with the usual orderings over integers, characters, strings, byte sequences and floating-point numbers, and extend them to a total ordering over all types. The ordering is compatible with
( = ). As in the case of( = ), mutable structures are compared by contents. Comparison between functional values raisesInvalid_argument. Comparison between cyclic structures may not terminate.
val compare : 'a -> 'a -> intcompare x yreturns0ifxis equal toy, a negative integer ifxis less thany, and a positive integer ifxis greater thany. The ordering implemented bycompareis compatible with the comparison predicates=,<and>defined above, with one difference on the treatment of the float valueCaml.nan. Namely, the comparison predicates treatnanas different from any other float value, including itself; whilecomparetreatsnanas equal to itself and less than any other float value. This treatment ofnanensures thatcomparedefines a total ordering relation.compareapplied to functional values may raiseInvalid_argument.compareapplied to cyclic structures may not terminate.The
comparefunction can be used as the comparison function required by theSet.MakeandMap.Makefunctors, as well as theList.sortandArray.sortfunctions.
val min : 'a -> 'a -> 'aReturn the smaller of the two arguments. The result is unspecified if one of the arguments contains the float value
nan.
val max : 'a -> 'a -> 'aReturn the greater of the two arguments. The result is unspecified if one of the arguments contains the float value
nan.
val (==) : 'a -> 'a -> boole1 == e2tests for physical equality ofe1ande2. On mutable types such as references, arrays, byte sequences, records with mutable fields and objects with mutable instance variables,e1 == e2is true if and only if physical modification ofe1also affectse2. On non-mutable types, the behavior of( == )is implementation-dependent; however, it is guaranteed thate1 == e2impliescompare e1 e2 = 0.
Boolean operations
val (&&) : bool -> bool -> boolThe boolean 'and'. Evaluation is sequential, left-to-right: in
e1 && e2,e1is evaluated first, and if it returnsfalse,e2is not evaluated at all.
Debugging
val __LOC__ : string__LOC__returns the location at which this expression appears in the file currently being parsed by the compiler, with the standard error format of OCaml: "File %S, line %d, characters %d-%d"
val __LINE__ : int__LINE__returns the line number at which this expression appears in the file currently being parsed by the compiler.
val __POS__ : string * int * int * int__POS__returns a tuple(file,lnum,cnum,enum), corresponding to the location at which this expression appears in the file currently being parsed by the compiler.fileis the current filename,lnumthe line number,cnumthe character position in the line andenumthe last character position in the line.
val __LOC_OF__ : 'a -> string * 'a__LOC_OF__ exprreturns a pair(loc, expr)wherelocis the location ofexprin the file currently being parsed by the compiler, with the standard error format of OCaml: "File %S, line %d, characters %d-%d"
val __LINE_OF__ : 'a -> int * 'a__LINE_OF__ exprreturns a pair(line, expr), wherelineis the line number at which the expressionexprappears in the file currently being parsed by the compiler.
val __POS_OF__ : 'a -> (string * int * int * int) * 'a__POS_OF__ exprreturns a pair(expr,loc), wherelocis a tuple(file,lnum,cnum,enum)corresponding to the location at which the expressionexprappears in the file currently being parsed by the compiler.fileis the current filename,lnumthe line number,cnumthe character position in the line andenumthe last character position in the line.
Composition operators
Integer arithmetic
val (/) : int -> int -> intInteger division. Raise
Division_by_zeroif the second argument is 0. Integer division rounds the real quotient of its arguments towards zero. More precisely, ifx >= 0andy > 0,x / yis the greatest integer less than or equal to the real quotient ofxbyy. Moreover,(- x) / y = x / (- y) = - (x / y).
val (mod) : int -> int -> intInteger remainder. If
yis not zero, the result ofx mod ysatisfies the following properties:x = (x / y) * y + x mod yandabs(x mod y) <= abs(y) - 1. Ify = 0,x mod yraisesDivision_by_zero. Note thatx mod yis negative only ifx < 0. RaiseDivision_by_zeroifyis zero.
Bitwise operations
val (lsl) : int -> int -> intn lsl mshiftsnto the left bymbits. The result is unspecified ifm < 0orm >= bitsize, wherebitsizeis32on a 32-bit platform and64on a 64-bit platform.
Floating-point arithmetic
OCaml's floating-point numbers follow the IEEE 754 standard, using double precision (64 bits) numbers. Floating-point operations never raise an exception on overflow, underflow, division by zero, etc. Instead, special IEEE numbers are returned as appropriate, such as infinity for 1.0 /. 0.0, neg_infinity for -1.0 /. 0.0, and nan ('not a number') for 0.0 /. 0.0. These special numbers then propagate through floating-point computations as expected: for instance, 1.0 /. infinity is 0.0, and any arithmetic operation with nan as argument returns nan as result.
val expm1 : float -> floatexpm1 xcomputesexp x -. 1.0, giving numerically-accurate results even ifxis close to0.0.- since
- 3.12.0
val log1p : float -> floatlog1p xcomputeslog(1.0 +. x)(natural logarithm), giving numerically-accurate results even ifxis close to0.0.- since
- 3.12.0
val acos : float -> floatArc cosine. The argument must fall within the range
[-1.0, 1.0]. Result is in radians and is between0.0andpi.
val asin : float -> floatArc sine. The argument must fall within the range
[-1.0, 1.0]. Result is in radians and is between-pi/2andpi/2.
val atan2 : float -> float -> floatatan2 y xreturns the arc tangent ofy /. x. The signs ofxandyare used to determine the quadrant of the result. Result is in radians and is between-piandpi.
val hypot : float -> float -> floathypot x yreturnssqrt(x *. x + y *. y), that is, the length of the hypotenuse of a right-angled triangle with sides of lengthxandy, or, equivalently, the distance of the point(x,y)to origin.- since
- 4.00.0
val ceil : float -> floatRound above to an integer value.
ceil freturns the least integer value greater than or equal tof. The result is returned as a float.
val floor : float -> floatRound below to an integer value.
floor freturns the greatest integer value less than or equal tof. The result is returned as a float.
val copysign : float -> float -> floatcopysign x yreturns a float whose absolute value is that ofxand whose sign is that ofy. Ifxisnan, returnsnan. Ifyisnan, returns eitherxor-. x, but it is not specified which.- since
- 4.00.0
val mod_float : float -> float -> floatmod_float a breturns the remainder ofawith respect tob. The returned value isa -. n *. b, wherenis the quotienta /. brounded towards zero to an integer.
val frexp : float -> float * intfrexp freturns the pair of the significant and the exponent off. Whenfis zero, the significantxand the exponentnoffare equal to zero. Whenfis non-zero, they are defined byf = x *. 2 ** nand0.5 <= x < 1.0.
val float : int -> floatSame as
Caml.float_of_int.
val truncate : float -> intSame as
Caml.int_of_float.
val int_of_float : float -> intTruncate the given floating-point number to an integer. The result is unspecified if the argument is
nanor falls outside the range of representable integers.
val nan : floatA special floating-point value denoting the result of an undefined operation such as
0.0 /. 0.0. Stands for 'not a number'. Any floating-point operation withnanas argument returnsnanas result. As for floating-point comparisons,=,<,<=,>and>=returnfalseand<>returnstrueif one or both of their arguments isnan.
val epsilon_float : floatThe difference between
1.0and the smallest exactly representable floating-point number greater than1.0.
type fpclass= Caml.fpclass=The five classes of floating-point numbers, as determined by the
Caml.classify_float function.
val classify_float : float -> fpclassReturn the class of the given floating-point number: normal, subnormal, zero, infinite, or not a number.
String operations
More string operations are provided in module String.
Character operations
More character operations are provided in module Char.
Unit operations
String conversion functions
val string_of_bool : bool -> stringReturn the string representation of a boolean. As the returned values may be shared, the user should not modify them directly.
val bool_of_string : string -> boolConvert the given string to a boolean. Raise
Invalid_argument "bool_of_string"if the string is not"true"or"false".
val int_of_string : string -> intConvert the given string to an integer. The string is read in decimal (by default) or in hexadecimal (if it begins with
0xor0X), octal (if it begins with0oor0O), or binary (if it begins with0bor0B). RaiseFailure "int_of_string"if the given string is not a valid representation of an integer, or if the integer represented exceeds the range of integers representable in typeint.
Pair operations
List operations
More list operations are provided in module List.
Input/output
Note: all input/output functions can raise Sys_error when the system calls they invoke fail.
type in_channel= Caml.in_channelThe type of input channel.
type out_channel= Caml.out_channelThe type of output channel.
val stdin : Caml.in_channelThe standard input for the process.
val stdout : Caml.out_channelThe standard output for the process.
val stderr : Caml.out_channelThe standard error output for the process.
Output functions on standard output
Output functions on standard error
Input functions on standard input
val read_line : unit -> stringFlush standard output, then read characters from standard input until a newline character is encountered. Return the string of all characters read, without the newline character at the end.
General output functions
type open_flag= Caml.open_flag=
val open_out : string -> Caml.out_channelOpen the named file for writing, and return a new output channel on that file, positionned at the beginning of the file. The file is truncated to zero length if it already exists. It is created if it does not already exists.
val open_out_bin : string -> Caml.out_channelSame as
Caml.open_out, but the file is opened in binary mode, so that no translation takes place during writes. On operating systems that do not distinguish between text mode and binary mode, this function behaves likeCaml.open_out.
val open_out_gen : Caml.open_flag list -> int -> string -> Caml.out_channelopen_out_gen mode perm filenameopens the named file for writing, as described above. The extra argumentmodespecify the opening mode. The extra argumentpermspecifies the file permissions, in case the file must be created.Caml.open_out andCaml.open_out_bin are special cases of this function.
val flush : Caml.out_channel -> unitFlush the buffer associated with the given output channel, performing all pending writes on that channel. Interactive programs must be careful about flushing standard output and standard error at the right time.
val output_char : Caml.out_channel -> char -> unitWrite the character on the given output channel.
val output_string : Caml.out_channel -> string -> unitWrite the string on the given output channel.
val output_bytes : Caml.out_channel -> bytes -> unitWrite the byte sequence on the given output channel.
val output : Caml.out_channel -> bytes -> int -> int -> unitoutput oc buf pos lenwriteslencharacters from byte sequencebuf, starting at offsetpos, to the given output channeloc. RaiseInvalid_argument "output"ifposandlendo not designate a valid range ofbuf.
val output_substring : Caml.out_channel -> string -> int -> int -> unitSame as
outputbut take a string as argument instead of a byte sequence.
val output_byte : Caml.out_channel -> int -> unitWrite one 8-bit integer (as the single character with that code) on the given output channel. The given integer is taken modulo 256.
val output_binary_int : Caml.out_channel -> int -> unitWrite one integer in binary format (4 bytes, big-endian) on the given output channel. The given integer is taken modulo 232. The only reliable way to read it back is through the
Caml.input_binary_int function. The format is compatible across all machines for a given version of OCaml.
val output_value : Caml.out_channel -> 'a -> unitWrite the representation of a structured value of any type to a channel. Circularities and sharing inside the value are detected and preserved. The object can be read back, by the function
Caml.input_value. See the description of moduleMarshalfor more information.Caml.output_value is equivalent toMarshal.to_channel with an empty list of flags.
val seek_out : Caml.out_channel -> int -> unitseek_out chan possets the current writing position toposfor channelchan. This works only for regular files. On files of other kinds (such as terminals, pipes and sockets), the behavior is unspecified.
val pos_out : Caml.out_channel -> intReturn the current writing position for the given channel. Does not work on channels opened with the
Open_appendflag (returns unspecified results).
val out_channel_length : Caml.out_channel -> intReturn the size (number of characters) of the regular file on which the given channel is opened. If the channel is opened on a file that is not a regular file, the result is meaningless.
val close_out : Caml.out_channel -> unitClose the given channel, flushing all buffered write operations. Output functions raise a
Sys_errorexception when they are applied to a closed output channel, exceptclose_outandflush, which do nothing when applied to an already closed channel. Note thatclose_outmay raiseSys_errorif the operating system signals an error when flushing or closing.
val close_out_noerr : Caml.out_channel -> unitSame as
close_out, but ignore all errors.
val set_binary_mode_out : Caml.out_channel -> bool -> unitset_binary_mode_out oc truesets the channelocto binary mode: no translations take place during output.set_binary_mode_out oc falsesets the channelocto text mode: depending on the operating system, some translations may take place during output. For instance, under Windows, end-of-lines will be translated from\nto\r\n. This function has no effect under operating systems that do not distinguish between text mode and binary mode.
General input functions
val open_in : string -> Caml.in_channelOpen the named file for reading, and return a new input channel on that file, positionned at the beginning of the file.
val open_in_bin : string -> Caml.in_channelSame as
Caml.open_in, but the file is opened in binary mode, so that no translation takes place during reads. On operating systems that do not distinguish between text mode and binary mode, this function behaves likeCaml.open_in.
val open_in_gen : Caml.open_flag list -> int -> string -> Caml.in_channelopen_in_gen mode perm filenameopens the named file for reading, as described above. The extra argumentsmodeandpermspecify the opening mode and file permissions.Caml.open_in andCaml.open_in_bin are special cases of this function.
val input_char : Caml.in_channel -> charRead one character from the given input channel. Raise
End_of_fileif there are no more characters to read.
val input_line : Caml.in_channel -> stringRead characters from the given input channel, until a newline character is encountered. Return the string of all characters read, without the newline character at the end. Raise
End_of_fileif the end of the file is reached at the beginning of line.
val input : Caml.in_channel -> bytes -> int -> int -> intinput ic buf pos lenreads up tolencharacters from the given channelic, storing them in byte sequencebuf, starting at character numberpos. It returns the actual number of characters read, between 0 andlen(inclusive). A return value of 0 means that the end of file was reached. A return value between 0 andlenexclusive means that not all requestedlencharacters were read, either because no more characters were available at that time, or because the implementation found it convenient to do a partial read;inputmust be called again to read the remaining characters, if desired. (See alsoCaml.really_input for reading exactlylencharacters.) ExceptionInvalid_argument "input"is raised ifposandlendo not designate a valid range ofbuf.
val really_input : Caml.in_channel -> bytes -> int -> int -> unitreally_input ic buf pos lenreadslencharacters from channelic, storing them in byte sequencebuf, starting at character numberpos. RaiseEnd_of_fileif the end of file is reached beforelencharacters have been read. RaiseInvalid_argument "really_input"ifposandlendo not designate a valid range ofbuf.
val really_input_string : Caml.in_channel -> int -> stringreally_input_string ic lenreadslencharacters from channelicand returns them in a new string. RaiseEnd_of_fileif the end of file is reached beforelencharacters have been read.
val input_byte : Caml.in_channel -> intSame as
Caml.input_char, but return the 8-bit integer representing the character. RaiseEnd_of_fileif an end of file was reached.
val input_binary_int : Caml.in_channel -> intRead an integer encoded in binary format (4 bytes, big-endian) from the given input channel. See
Caml.output_binary_int. RaiseEnd_of_fileif an end of file was reached while reading the integer.
val input_value : Caml.in_channel -> 'aRead the representation of a structured value, as produced by
Caml.output_value, and return the corresponding value. This function is identical toMarshal.from_channel; see the description of moduleMarshalfor more information, in particular concerning the lack of type safety.
val seek_in : Caml.in_channel -> int -> unitseek_in chan possets the current reading position toposfor channelchan. This works only for regular files. On files of other kinds, the behavior is unspecified.
val pos_in : Caml.in_channel -> intReturn the current reading position for the given channel.
val in_channel_length : Caml.in_channel -> intReturn the size (number of characters) of the regular file on which the given channel is opened. If the channel is opened on a file that is not a regular file, the result is meaningless. The returned size does not take into account the end-of-line translations that can be performed when reading from a channel opened in text mode.
val close_in : Caml.in_channel -> unitClose the given channel. Input functions raise a
Sys_errorexception when they are applied to a closed input channel, exceptclose_in, which does nothing when applied to an already closed channel.
val close_in_noerr : Caml.in_channel -> unitSame as
close_in, but ignore all errors.
val set_binary_mode_in : Caml.in_channel -> bool -> unitset_binary_mode_in ic truesets the channelicto binary mode: no translations take place during input.set_binary_mode_out ic falsesets the channelicto text mode: depending on the operating system, some translations may take place during input. For instance, under Windows, end-of-lines will be translated from\r\nto\n. This function has no effect under operating systems that do not distinguish between text mode and binary mode.
Operations on large files
module LargeFile = Core_kernel__.Core_pervasives.LargeFileOperations on large files. This sub-module provides 64-bit variants of the channel functions that manipulate file positions and file sizes. By representing positions and sizes by 64-bit integers (type
int64) instead of regular integers (typeint), these alternate functions allow operating on files whose sizes are greater thanmax_int.
References
type 'a ref= 'a Caml.ref={mutable contents : 'a;}The type of references (mutable indirection cells) containing a value of type
'a.
val ref : 'a -> 'a refReturn a fresh reference containing the given value.
val (!) : 'a ref -> 'a!rreturns the current contents of referencer. Equivalent tofun r -> r.contents.
val (:=) : 'a ref -> 'a -> unitr := astores the value ofain referencer. Equivalent tofun r v -> r.contents <- v.
val incr : int ref -> unitIncrement the integer contained in the given reference. Equivalent to
fun r -> r := succ !r.
val decr : int ref -> unitDecrement the integer contained in the given reference. Equivalent to
fun r -> r := pred !r.
type ('a, 'b) result= ('a, 'b) Caml.result=|Ok of 'a|Error of 'b
Operations on format strings
type ('a, 'b, 'c, 'd, 'e, 'f) format6= ('a, 'b, 'c, 'd, 'e, 'f) CamlinternalFormatBasics.format6Format strings have a general and highly polymorphic type
('a, 'b, 'c, 'd, 'e, 'f) format6. The two simplified types,formatandformat4below are included for backward compatibility with earlier releases of OCaml.The meaning of format string type parameters is as follows:
'ais the type of the parameters of the format for formatted output functions (printf-style functions);'ais the type of the values read by the format for formatted input functions (scanf-style functions).
'bis the type of input source for formatted input functions and the type of output target for formatted output functions. Forprintf-style functions from modulePrintf,'bis typicallyout_channel; forprintf-style functions from moduleFormat,'bis typicallyFormat.formatter; forscanf-style functions from moduleScanf,'bis typicallyScanf.Scanning.in_channel.
Type argument
'bis also the type of the first argument given to user's defined printing functions for%aand%tconversions, and user's defined reading functions for%rconversion.'cis the type of the result of the%aand%tprinting functions, and also the type of the argument transmitted to the first argument ofkprintf-style functions or to thekscanf-style functions.
'dis the type of parameters for thescanf-style functions.
'eis the type of the receiver function for thescanf-style functions.
'fis the final result type of a formatted input/output function invocation: for theprintf-style functions, it is typicallyunit; for thescanf-style functions, it is typically the result type of the receiver function.
type ('a, 'b, 'c, 'd) format4= ('a, 'b, 'c, 'c, 'c, 'd) format6type ('a, 'b, 'c) format= ('a, 'b, 'c, 'c) format4
val string_of_format : ('a, 'b, 'c, 'd, 'e, 'f) format6 -> stringConverts a format string into a string.
val format_of_string : ('a, 'b, 'c, 'd, 'e, 'f) format6 -> ('a, 'b, 'c, 'd, 'e, 'f) format6format_of_string sreturns a format string read from the string literals. Note:format_of_stringcan not convert a string argument that is not a literal. If you need this functionality, use the more generalScanf.format_from_string function.
val (^^) : ('a, 'b, 'c, 'd, 'e, 'f) format6 -> ('f, 'b, 'c, 'e, 'g, 'h) format6 -> ('a, 'b, 'c, 'd, 'g, 'h) format6f1 ^^ f2catenates format stringsf1andf2. The result is a format string that behaves as the concatenation of format stringsf1andf2: in case of formatted output, it accepts arguments fromf1, then arguments fromf2; in case of formatted input, it returns results fromf1, then results fromf2.
Program termination
val exit : int -> 'aTerminate the process, returning the given status code to the operating system: usually 0 to indicate no errors, and a small positive integer to indicate failure. All open output channels are flushed with
flush_all. An implicitexit 0is performed each time a program terminates normally. An implicitexit 2is performed if the program terminates early because of an uncaught exception.
val at_exit : (unit -> unit) -> unitRegister the given function to be called at program termination time. The functions registered with
at_exitwill be called when the program executesCaml.exit, or terminates, either normally or because of an uncaught exception. The functions are called in 'last in, first out' order: the function most recently added withat_exitis called first.
include Core_kernel.Int.Replace_polymorphic_compare
include Base_quickcheck.Export
val quickcheck_generator_unit : Base.unit Base_quickcheck.Generator.tval quickcheck_generator_bool : Base.bool Base_quickcheck.Generator.tval quickcheck_generator_char : Base.char Base_quickcheck.Generator.tval quickcheck_generator_string : Base.string Base_quickcheck.Generator.tval quickcheck_generator_int : Base.int Base_quickcheck.Generator.tval quickcheck_generator_int32 : Base.int32 Base_quickcheck.Generator.tval quickcheck_generator_int64 : Base.int64 Base_quickcheck.Generator.tval quickcheck_generator_nativeint : Base.nativeint Base_quickcheck.Generator.tval quickcheck_generator_float : Base.float Base_quickcheck.Generator.tval quickcheck_observer_unit : Base.unit Base_quickcheck.Observer.tval quickcheck_observer_bool : Base.bool Base_quickcheck.Observer.tval quickcheck_observer_char : Base.char Base_quickcheck.Observer.tval quickcheck_observer_string : Base.string Base_quickcheck.Observer.tval quickcheck_observer_int : Base.int Base_quickcheck.Observer.tval quickcheck_observer_int32 : Base.int32 Base_quickcheck.Observer.tval quickcheck_observer_int64 : Base.int64 Base_quickcheck.Observer.tval quickcheck_observer_nativeint : Base.nativeint Base_quickcheck.Observer.tval quickcheck_observer_float : Base.float Base_quickcheck.Observer.tval quickcheck_shrinker_unit : Base.unit Base_quickcheck.Shrinker.tval quickcheck_shrinker_bool : Base.bool Base_quickcheck.Shrinker.tval quickcheck_shrinker_char : Base.char Base_quickcheck.Shrinker.tval quickcheck_shrinker_string : Base.string Base_quickcheck.Shrinker.tval quickcheck_shrinker_int : Base.int Base_quickcheck.Shrinker.tval quickcheck_shrinker_int32 : Base.int32 Base_quickcheck.Shrinker.tval quickcheck_shrinker_int64 : Base.int64 Base_quickcheck.Shrinker.tval quickcheck_shrinker_nativeint : Base.nativeint Base_quickcheck.Shrinker.tval quickcheck_shrinker_float : Base.float Base_quickcheck.Shrinker.tval quickcheck_generator_option : 'a Base_quickcheck.Generator.t -> 'a Base.option Base_quickcheck.Generator.tval quickcheck_generator_list : 'a Base_quickcheck.Generator.t -> 'a Base.list Base_quickcheck.Generator.tval quickcheck_observer_option : 'a Base_quickcheck.Observer.t -> 'a Base.option Base_quickcheck.Observer.tval quickcheck_observer_list : 'a Base_quickcheck.Observer.t -> 'a Base.list Base_quickcheck.Observer.tval quickcheck_shrinker_option : 'a Base_quickcheck.Shrinker.t -> 'a Base.option Base_quickcheck.Shrinker.tval quickcheck_shrinker_list : 'a Base_quickcheck.Shrinker.t -> 'a Base.list Base_quickcheck.Shrinker.t
include Core_kernel.Either.Export
type ('f, 's) _either= ('f, 's) Base__Either.t=|First of 'f|Second of 's
include Core_kernel__.Import.From_sexplib
type bigstring= Sexplib.Conv.bigstring
val sexp_of_bigstring : bigstring -> Ppx_sexp_conv_lib.Sexp.tval bigstring_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> bigstring
type mat= Sexplib.Conv.mat
val sexp_of_mat : mat -> Ppx_sexp_conv_lib.Sexp.tval mat_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> mat
type vec= Sexplib.Conv.vec
val sexp_of_vec : vec -> Ppx_sexp_conv_lib.Sexp.tval vec_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> vec
val sexp_of_opaque : _ -> Base.Sexp.tval opaque_of_sexp : Base.Sexp.t -> _val sexp_of_pair : ('a -> Base.Sexp.t) -> ('b -> Base.Sexp.t) -> ('a * 'b) -> Base.Sexp.tval pair_of_sexp : (Base.Sexp.t -> 'a) -> (Base.Sexp.t -> 'b) -> Base.Sexp.t -> 'a * 'b
exceptionOf_sexp_error of Core_kernel__.Import.exn * Base.Sexp.t
val of_sexp_error : Core_kernel__.Import.string -> Base.Sexp.t -> _val of_sexp_error_exn : Core_kernel__.Import.exn -> Base.Sexp.t -> _
include Core_kernel.Interfaces
module type Applicative = Core_kernel__.Import.Applicative.Smodule type Binable = Core_kernel__.Binable0.Smodule type Comparable = Core_kernel.Comparable.Smodule type Comparable_binable = Core_kernel.Comparable.S_binablemodule type Floatable = Core_kernel__.Import.Floatable.Smodule type Hashable = Core_kernel.Hashable.Smodule type Hashable_binable = Core_kernel.Hashable.S_binablemodule type Identifiable = Core_kernel.Identifiable.Smodule type Infix_comparators = Core_kernel.Comparable.Infixmodule type Intable = Core_kernel__.Import.Intable.Smodule type Monad = Core_kernel__.Import.Monad.Smodule type Quickcheckable = Core_kernel.Quickcheckable.Smodule type Robustly_comparable = Core_kernel.Robustly_comparable.Smodule type Sexpable = Core_kernel.Sexpable.Smodule type Stable = Core_kernel__.Stable_module_types.S0module type Stable_int63able = Core_kernel__.Stable_int63able.Smodule type Stable1 = Core_kernel__.Stable_module_types.S1module type Stable2 = Core_kernel__.Stable_module_types.S2module type Stable3 = Core_kernel__.Stable_module_types.S3module type Stable4 = Core_kernel__.Stable_module_types.S4module type Stringable = Core_kernel__.Import.Stringable.Smodule type Unit = Core_kernel.Unit.Sinclude Core_kernel.List.Infix
val (@) : 'a Base__List.t -> 'a Base__List.t -> 'a Base__List.t
include Core_kernel__.Never_returns
type never_returns= Core_kernel.Nothing.t
val sexp_of_never_returns : never_returns -> Ppx_sexp_conv_lib.Sexp.tval never_returns : Core_kernel.Nothing.t -> 'a
include Core_kernel.Ordering.Export
type _ordering= Base.Ordering.t=|Less|Equal|Greater
include Core_kernel.Perms.Export
type read= Core_kernel.Perms.Read.t
val bin_shape_read : Bin_prot.Shape.tval bin_size_read : read Bin_prot.Size.sizerval bin_write_read : read Bin_prot.Write.writerval bin_writer_read : read Bin_prot.Type_class.writerval bin_read_read : read Bin_prot.Read.readerval __bin_read_read__ : (Core_kernel__.Import.int -> read) Bin_prot.Read.readerval bin_reader_read : read Bin_prot.Type_class.readerval bin_read : read Bin_prot.Type_class.tval compare_read : read -> read -> Core_kernel__.Import.intval hash_fold_read : Base.Hash.state -> read -> Base.Hash.stateval hash_read : read -> Base.Hash.hash_valueval sexp_of_read : read -> Ppx_sexp_conv_lib.Sexp.tval read_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> read
type write= Core_kernel.Perms.Write.tWe don't expose
bin_ioforwritedue to a naming conflict with the functions exported bybin_ioforread_write. If you wantbin_ioforwrite, useWrite.t.
val compare_write : write -> write -> Core_kernel__.Import.intval hash_fold_write : Base.Hash.state -> write -> Base.Hash.stateval hash_write : write -> Base.Hash.hash_valueval sexp_of_write : write -> Ppx_sexp_conv_lib.Sexp.tval write_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> write
type immutable= Core_kernel.Perms.Immutable.t
val bin_shape_immutable : Bin_prot.Shape.tval bin_size_immutable : immutable Bin_prot.Size.sizerval bin_write_immutable : immutable Bin_prot.Write.writerval bin_writer_immutable : immutable Bin_prot.Type_class.writerval bin_read_immutable : immutable Bin_prot.Read.readerval __bin_read_immutable__ : (Core_kernel__.Import.int -> immutable) Bin_prot.Read.readerval bin_reader_immutable : immutable Bin_prot.Type_class.readerval bin_immutable : immutable Bin_prot.Type_class.tval compare_immutable : immutable -> immutable -> Core_kernel__.Import.intval hash_fold_immutable : Base.Hash.state -> immutable -> Base.Hash.stateval hash_immutable : immutable -> Base.Hash.hash_valueval sexp_of_immutable : immutable -> Ppx_sexp_conv_lib.Sexp.tval immutable_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> immutable
type read_write= Core_kernel.Perms.Read_write.t
val bin_shape_read_write : Bin_prot.Shape.tval bin_size_read_write : read_write Bin_prot.Size.sizerval bin_write_read_write : read_write Bin_prot.Write.writerval bin_writer_read_write : read_write Bin_prot.Type_class.writerval bin_read_read_write : read_write Bin_prot.Read.readerval __bin_read_read_write__ : (Core_kernel__.Import.int -> read_write) Bin_prot.Read.readerval bin_reader_read_write : read_write Bin_prot.Type_class.readerval bin_read_write : read_write Bin_prot.Type_class.tval compare_read_write : read_write -> read_write -> Core_kernel__.Import.intval hash_fold_read_write : Base.Hash.state -> read_write -> Base.Hash.stateval hash_read_write : read_write -> Base.Hash.hash_valueval sexp_of_read_write : read_write -> Ppx_sexp_conv_lib.Sexp.tval read_write_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> read_write
type 'a perms= 'a Core_kernel.Perms.Upper_bound.t
val bin_shape_perms : Bin_prot.Shape.t -> Bin_prot.Shape.tval bin_size_perms : 'a Bin_prot.Size.sizer -> 'a perms Bin_prot.Size.sizerval bin_write_perms : 'a Bin_prot.Write.writer -> 'a perms Bin_prot.Write.writerval bin_writer_perms : 'a Bin_prot.Type_class.writer -> 'a perms Bin_prot.Type_class.writerval bin_read_perms : 'a Bin_prot.Read.reader -> 'a perms Bin_prot.Read.readerval __bin_read_perms__ : 'a Bin_prot.Read.reader -> (Core_kernel__.Import.int -> 'a perms) Bin_prot.Read.readerval bin_reader_perms : 'a Bin_prot.Type_class.reader -> 'a perms Bin_prot.Type_class.readerval bin_perms : 'a Bin_prot.Type_class.t -> 'a perms Bin_prot.Type_class.tval compare_perms : ('a -> 'a -> Core_kernel__.Import.int) -> 'a perms -> 'a perms -> Core_kernel__.Import.intval hash_fold_perms : (Base.Hash.state -> 'a -> Base.Hash.state) -> Base.Hash.state -> 'a perms -> Base.Hash.stateval sexp_of_perms : ('a -> Ppx_sexp_conv_lib.Sexp.t) -> 'a perms -> Ppx_sexp_conv_lib.Sexp.tval perms_of_sexp : (Ppx_sexp_conv_lib.Sexp.t -> 'a) -> Ppx_sexp_conv_lib.Sexp.t -> 'a perms
include Core_kernel.Result.Export
type ('ok, 'err) _result= ('ok, 'err) Core_kernel.Result.t=|Ok of 'ok|Error of 'err
val is_ok : ('a, 'b) Core_kernel.Result.t -> boolval is_error : ('a, 'b) Core_kernel.Result.t -> bool
type -'a return= private 'a Core_kernel__.Import.With_return.return={return : b. 'a -> 'b;}
exceptionBug of Core_kernel__.Import.stringexceptionC_malloc_exn of Core_kernel__.Import.int * Core_kernel__.Import.intRaised if malloc in C bindings fail (errno * size).
exceptionFinally of Core_kernel__.Import.Exn.t * Core_kernel__.Import.Exn.t
val fst3 : ('a * 'b * 'c) -> 'aval snd3 : ('a * 'b * 'c) -> 'bval trd3 : ('a * 'b * 'c) -> 'cval uw : 'a option -> 'aval phys_same : 'a -> 'b -> boolphys_sameis likephys_equal, but with a more general type.phys_sameis useful when dealing with existential types, when one has a packed value and an unpacked value that one wants to check are physically equal. One can't usephys_equalin such a situation because the types are different.
val (%) : Core_kernel.Int.t -> Core_kernel.Int.t -> Core_kernel.Int.tval (/%) : Core_kernel.Int.t -> Core_kernel.Int.t -> Core_kernel.Int.tval (//) : Core_kernel.Int.t -> Core_kernel.Int.t -> floatval (==>) : bool -> bool -> boolval bprintf : Base__.Import0.Caml.Buffer.t -> ('a, Base__.Import0.Caml.Buffer.t, unit) Stdlib.format -> 'aval const : 'a -> 'b -> 'aval eprintf : ('a, Stdio.Out_channel.t, Base.unit) Base.format -> 'aval error : ?strict:unit -> string -> 'a -> ('a -> Base.Sexp.t) -> 'b Core_kernel.Or_error.tval error_s : Base.Sexp.t -> 'a Core_kernel.Or_error.tval failwithf : ('a, unit, string, unit -> 'b) Stdlib.format4 -> 'aval failwithp : ?strict:Core_kernel__.Import.unit -> Stdlib.Lexing.position -> Core_kernel__.Import.string -> 'a -> ('a -> Base.Sexp.t) -> 'bval failwiths : ?strict:Core_kernel__.Import.unit -> ?here:Stdlib.Lexing.position -> Core_kernel__.Import.string -> 'a -> ('a -> Base.Sexp.t) -> 'bval force : 'a Base.Lazy.t -> 'aval fprintf : Stdio.Out_channel.t -> ('a, Stdio.Out_channel.t, Base.unit) Base.format -> 'aval ident : 'a -> 'aval invalid_argf : ('a, unit, string, unit -> 'b) Stdlib.format4 -> 'aval ifprintf : 'a -> ('b, 'a, 'c, unit) Stdlib.format4 -> 'bval is_none : 'a option -> boolval is_some : 'a option -> boolval ksprintf : (string -> 'a) -> ('b, unit, string, 'a) Stdlib.format4 -> 'bval ok_exn : 'a Core_kernel.Or_error.t -> 'aval phys_equal : 'a -> 'a -> boolval phys_same : 'a -> 'b -> boolval print_s : ?mach:Base.unit -> Base.Sexp.t -> Base.unitval eprint_s : ?mach:Base.unit -> Base.Sexp.t -> Base.unitval printf : ('a, Stdio.Out_channel.t, Base.unit) Base.format -> 'aval protect : f:(unit -> 'a) -> finally:(unit -> unit) -> 'aval protectx : f:('a -> 'b) -> 'a -> finally:('a -> unit) -> 'bval raise_s : Base.Sexp.t -> 'aval round : ?dir:[ `Down | `Nearest | `Up | `Zero ] -> float -> floatval (**.) : Base__Float.t -> Base__Float.t -> Base__Float.tval sprintf : ('a, unit, string) Stdlib.format -> 'aval stage : 'a -> 'a Core_kernel__.Import.Staged.tval unstage : 'a Core_kernel__.Import.Staged.t -> 'aval with_return : ('a Core_kernel__.Import.With_return.return -> 'a) -> 'aval with_return_option : ('a Core_kernel__.Import.With_return.return -> unit) -> 'a option
include Typerep_lib.Std_internal
module rec Typerep = Typerep_lib.Std_internal.Typerepruntime type representations
val typerep_of_int : int Typerep.tval typerep_of_int32 : int32 Typerep.tval typerep_of_int64 : int64 Typerep.tval typerep_of_nativeint : nativeint Typerep.tval typerep_of_int63 : Base.Int63.t Typerep.tval typerep_of_char : char Typerep.tval typerep_of_float : float Typerep.tval typerep_of_string : string Typerep.tval typerep_of_bytes : bytes Typerep.tval typerep_of_bool : bool Typerep.tval typerep_of_unit : unit Typerep.t
val value_tuple0 : tuple0val typerep_of_option : 'a Typerep.t -> 'a option Typerep.tval typerep_of_list : 'a Typerep.t -> 'a list Typerep.tval typerep_of_array : 'a Typerep.t -> 'a array Typerep.tval typerep_of_lazy_t : 'a Typerep.t -> 'a lazy_t Typerep.tval typerep_of_ref : 'a Typerep.t -> 'a Stdlib.ref Typerep.tval typerep_of_function : 'a Typerep.t -> 'b Typerep.t -> ('a -> 'b) Typerep.tval typerep_of_tuple0 : tuple0 Typerep.tval typerep_of_tuple2 : 'a Typerep.t -> 'b Typerep.t -> ('a * 'b) Typerep.tval typerep_of_tuple3 : 'a Typerep.t -> 'b Typerep.t -> 'c Typerep.t -> ('a * 'b * 'c) Typerep.tval typerep_of_tuple4 : 'a Typerep.t -> 'b Typerep.t -> 'c Typerep.t -> 'd Typerep.t -> ('a * 'b * 'c * 'd) Typerep.tval typerep_of_tuple5 : 'a Typerep.t -> 'b Typerep.t -> 'c Typerep.t -> 'd Typerep.t -> 'e Typerep.t -> ('a * 'b * 'c * 'd * 'e) Typerep.tval typename_of_int : int Typerep_lib.Typename.tval typename_of_int32 : int32 Typerep_lib.Typename.tval typename_of_int64 : int64 Typerep_lib.Typename.tval typename_of_nativeint : nativeint Typerep_lib.Typename.tval typename_of_int63 : Base.Int63.t Typerep_lib.Typename.tval typename_of_char : char Typerep_lib.Typename.tval typename_of_float : float Typerep_lib.Typename.tval typename_of_string : string Typerep_lib.Typename.tval typename_of_bytes : bytes Typerep_lib.Typename.tval typename_of_bool : bool Typerep_lib.Typename.tval typename_of_unit : unit Typerep_lib.Typename.tval typename_of_option : 'a Typerep_lib.Typename.t -> 'a option Typerep_lib.Typename.tval typename_of_list : 'a Typerep_lib.Typename.t -> 'a list Typerep_lib.Typename.tval typename_of_array : 'a Typerep_lib.Typename.t -> 'a array Typerep_lib.Typename.tval typename_of_lazy_t : 'a Typerep_lib.Typename.t -> 'a lazy_t Typerep_lib.Typename.tval typename_of_ref : 'a Typerep_lib.Typename.t -> 'a Stdlib.ref Typerep_lib.Typename.tval typename_of_function : 'a Typerep_lib.Typename.t -> 'b Typerep_lib.Typename.t -> ('a -> 'b) Typerep_lib.Typename.tval typename_of_tuple0 : tuple0 Typerep_lib.Typename.tval typename_of_tuple2 : 'a Typerep_lib.Typename.t -> 'b Typerep_lib.Typename.t -> ('a * 'b) Typerep_lib.Typename.tval typename_of_tuple3 : 'a Typerep_lib.Typename.t -> 'b Typerep_lib.Typename.t -> 'c Typerep_lib.Typename.t -> ('a * 'b * 'c) Typerep_lib.Typename.tval typename_of_tuple4 : 'a Typerep_lib.Typename.t -> 'b Typerep_lib.Typename.t -> 'c Typerep_lib.Typename.t -> 'd Typerep_lib.Typename.t -> ('a * 'b * 'c * 'd) Typerep_lib.Typename.tval typename_of_tuple5 : 'a Typerep_lib.Typename.t -> 'b Typerep_lib.Typename.t -> 'c Typerep_lib.Typename.t -> 'd Typerep_lib.Typename.t -> 'e Typerep_lib.Typename.t -> ('a * 'b * 'c * 'd * 'e) Typerep_lib.Typename.t
include sig ... end with type 'a array := 'a Core_kernel__.Import.array with type bool := Core_kernel__.Import.bool with type char := Core_kernel__.Import.char with type float := Core_kernel__.Import.float with type int := Core_kernel__.Import.int with type int32 := Core_kernel__.Import.int32 with type int64 := Core_kernel__.Import.int64 with type 'a list := 'a Core_kernel__.Import.list with type nativeint := Core_kernel__.Import.nativeint with type 'a option := 'a Core_kernel__.Import.option with type string := Core_kernel__.Import.string with type bytes := Core_kernel__.Import.bytes with type 'a lazy_t := 'a lazy_t with type 'a ref := 'a ref with type unit := Core_kernel__.Import.unit
val bin_shape_array : Bin_prot.Shape.t -> Bin_prot.Shape.tval bin_size_array : 'a Bin_prot.Size.sizer -> 'a array Bin_prot.Size.sizerval bin_write_array : 'a Bin_prot.Write.writer -> 'a array Bin_prot.Write.writerval bin_writer_array : 'a Bin_prot.Type_class.writer -> 'a array Bin_prot.Type_class.writerval bin_read_array : 'a Bin_prot.Read.reader -> 'a array Bin_prot.Read.readerval __bin_read_array__ : 'a Bin_prot.Read.reader -> (Core_kernel__.Import.int -> 'a array) Bin_prot.Read.readerval bin_reader_array : 'a Bin_prot.Type_class.reader -> 'a array Bin_prot.Type_class.readerval bin_array : 'a Bin_prot.Type_class.t -> 'a array Bin_prot.Type_class.tval compare_array : ('a -> 'a -> Core_kernel__.Import.int) -> 'a array -> 'a array -> Core_kernel__.Import.intval equal_array : ('a -> 'a -> Core_kernel__.Import.bool) -> 'a array -> 'a array -> Core_kernel__.Import.boolval sexp_of_array : ('a -> Ppx_sexp_conv_lib.Sexp.t) -> 'a array -> Ppx_sexp_conv_lib.Sexp.tval array_of_sexp : (Ppx_sexp_conv_lib.Sexp.t -> 'a) -> Ppx_sexp_conv_lib.Sexp.t -> 'a arrayval typerep_of_array : 'a Typerep_lib.Std.Typerep.t -> 'a array Typerep_lib.Std.Typerep.tval typename_of_array : 'a Typerep_lib.Std.Typename.t -> 'a array Typerep_lib.Std.Typename.t
val bin_shape_bool : Bin_prot.Shape.tval bin_size_bool : bool Bin_prot.Size.sizerval bin_write_bool : bool Bin_prot.Write.writerval bin_writer_bool : bool Bin_prot.Type_class.writerval bin_read_bool : bool Bin_prot.Read.readerval __bin_read_bool__ : (Core_kernel__.Import.int -> bool) Bin_prot.Read.readerval bin_reader_bool : bool Bin_prot.Type_class.readerval bin_bool : bool Bin_prot.Type_class.tval compare_bool : bool -> bool -> Core_kernel__.Import.intval equal_bool : bool -> bool -> boolval hash_fold_bool : Base.Hash.state -> bool -> Base.Hash.stateval hash_bool : bool -> Base.Hash.hash_valueval sexp_of_bool : bool -> Ppx_sexp_conv_lib.Sexp.tval bool_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> boolval typerep_of_bool : bool Typerep_lib.Std.Typerep.tval typename_of_bool : bool Typerep_lib.Std.Typename.t
val bin_shape_char : Bin_prot.Shape.tval bin_size_char : char Bin_prot.Size.sizerval bin_write_char : char Bin_prot.Write.writerval bin_writer_char : char Bin_prot.Type_class.writerval bin_read_char : char Bin_prot.Read.readerval __bin_read_char__ : (Core_kernel__.Import.int -> char) Bin_prot.Read.readerval bin_reader_char : char Bin_prot.Type_class.readerval bin_char : char Bin_prot.Type_class.tval compare_char : char -> char -> Core_kernel__.Import.intval equal_char : char -> char -> boolval hash_fold_char : Base.Hash.state -> char -> Base.Hash.stateval hash_char : char -> Base.Hash.hash_valueval sexp_of_char : char -> Ppx_sexp_conv_lib.Sexp.tval char_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> charval typerep_of_char : char Typerep_lib.Std.Typerep.tval typename_of_char : char Typerep_lib.Std.Typename.t
val bin_shape_float : Bin_prot.Shape.tval bin_size_float : float Bin_prot.Size.sizerval bin_write_float : float Bin_prot.Write.writerval bin_writer_float : float Bin_prot.Type_class.writerval bin_read_float : float Bin_prot.Read.readerval __bin_read_float__ : (Core_kernel__.Import.int -> float) Bin_prot.Read.readerval bin_reader_float : float Bin_prot.Type_class.readerval bin_float : float Bin_prot.Type_class.tval compare_float : float -> float -> Core_kernel__.Import.intval equal_float : float -> float -> boolval hash_fold_float : Base.Hash.state -> float -> Base.Hash.stateval hash_float : float -> Base.Hash.hash_valueval sexp_of_float : float -> Ppx_sexp_conv_lib.Sexp.tval float_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> floatval typerep_of_float : float Typerep_lib.Std.Typerep.tval typename_of_float : float Typerep_lib.Std.Typename.t
val bin_shape_int : Bin_prot.Shape.tval bin_size_int : int Bin_prot.Size.sizerval bin_write_int : int Bin_prot.Write.writerval bin_writer_int : int Bin_prot.Type_class.writerval bin_read_int : int Bin_prot.Read.readerval __bin_read_int__ : (int -> int) Bin_prot.Read.readerval bin_reader_int : int Bin_prot.Type_class.readerval bin_int : int Bin_prot.Type_class.tval compare_int : int -> int -> intval equal_int : int -> int -> boolval hash_fold_int : Base.Hash.state -> int -> Base.Hash.stateval hash_int : int -> Base.Hash.hash_valueval sexp_of_int : int -> Ppx_sexp_conv_lib.Sexp.tval int_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> intval typerep_of_int : int Typerep_lib.Std.Typerep.tval typename_of_int : int Typerep_lib.Std.Typename.t
val bin_shape_int32 : Bin_prot.Shape.tval bin_size_int32 : int32 Bin_prot.Size.sizerval bin_write_int32 : int32 Bin_prot.Write.writerval bin_writer_int32 : int32 Bin_prot.Type_class.writerval bin_read_int32 : int32 Bin_prot.Read.readerval __bin_read_int32__ : (int -> int32) Bin_prot.Read.readerval bin_reader_int32 : int32 Bin_prot.Type_class.readerval bin_int32 : int32 Bin_prot.Type_class.tval compare_int32 : int32 -> int32 -> intval equal_int32 : int32 -> int32 -> boolval hash_fold_int32 : Base.Hash.state -> int32 -> Base.Hash.stateval hash_int32 : int32 -> Base.Hash.hash_valueval sexp_of_int32 : int32 -> Ppx_sexp_conv_lib.Sexp.tval int32_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> int32val typerep_of_int32 : int32 Typerep_lib.Std.Typerep.tval typename_of_int32 : int32 Typerep_lib.Std.Typename.t
val bin_shape_int64 : Bin_prot.Shape.tval bin_size_int64 : int64 Bin_prot.Size.sizerval bin_write_int64 : int64 Bin_prot.Write.writerval bin_writer_int64 : int64 Bin_prot.Type_class.writerval bin_read_int64 : int64 Bin_prot.Read.readerval __bin_read_int64__ : (int -> int64) Bin_prot.Read.readerval bin_reader_int64 : int64 Bin_prot.Type_class.readerval bin_int64 : int64 Bin_prot.Type_class.tval compare_int64 : int64 -> int64 -> intval equal_int64 : int64 -> int64 -> boolval hash_fold_int64 : Base.Hash.state -> int64 -> Base.Hash.stateval hash_int64 : int64 -> Base.Hash.hash_valueval sexp_of_int64 : int64 -> Ppx_sexp_conv_lib.Sexp.tval int64_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> int64val typerep_of_int64 : int64 Typerep_lib.Std.Typerep.tval typename_of_int64 : int64 Typerep_lib.Std.Typename.t
val bin_shape_lazy_t : Bin_prot.Shape.t -> Bin_prot.Shape.tval bin_size_lazy_t : 'a Bin_prot.Size.sizer -> 'a lazy_t Bin_prot.Size.sizerval bin_write_lazy_t : 'a Bin_prot.Write.writer -> 'a lazy_t Bin_prot.Write.writerval bin_writer_lazy_t : 'a Bin_prot.Type_class.writer -> 'a lazy_t Bin_prot.Type_class.writerval bin_read_lazy_t : 'a Bin_prot.Read.reader -> 'a lazy_t Bin_prot.Read.readerval __bin_read_lazy_t__ : 'a Bin_prot.Read.reader -> (int -> 'a lazy_t) Bin_prot.Read.readerval bin_reader_lazy_t : 'a Bin_prot.Type_class.reader -> 'a lazy_t Bin_prot.Type_class.readerval bin_lazy_t : 'a Bin_prot.Type_class.t -> 'a lazy_t Bin_prot.Type_class.tval compare_lazy_t : ('a -> 'a -> int) -> 'a lazy_t -> 'a lazy_t -> intval hash_fold_lazy_t : (Base.Hash.state -> 'a -> Base.Hash.state) -> Base.Hash.state -> 'a lazy_t -> Base.Hash.stateval sexp_of_lazy_t : ('a -> Ppx_sexp_conv_lib.Sexp.t) -> 'a lazy_t -> Ppx_sexp_conv_lib.Sexp.tval lazy_t_of_sexp : (Ppx_sexp_conv_lib.Sexp.t -> 'a) -> Ppx_sexp_conv_lib.Sexp.t -> 'a lazy_tval typerep_of_lazy_t : 'a Typerep_lib.Std.Typerep.t -> 'a lazy_t Typerep_lib.Std.Typerep.tval typename_of_lazy_t : 'a Typerep_lib.Std.Typename.t -> 'a lazy_t Typerep_lib.Std.Typename.t
val bin_shape_list : Bin_prot.Shape.t -> Bin_prot.Shape.tval bin_size_list : 'a Bin_prot.Size.sizer -> 'a list Bin_prot.Size.sizerval bin_write_list : 'a Bin_prot.Write.writer -> 'a list Bin_prot.Write.writerval bin_writer_list : 'a Bin_prot.Type_class.writer -> 'a list Bin_prot.Type_class.writerval bin_read_list : 'a Bin_prot.Read.reader -> 'a list Bin_prot.Read.readerval __bin_read_list__ : 'a Bin_prot.Read.reader -> (int -> 'a list) Bin_prot.Read.readerval bin_reader_list : 'a Bin_prot.Type_class.reader -> 'a list Bin_prot.Type_class.readerval bin_list : 'a Bin_prot.Type_class.t -> 'a list Bin_prot.Type_class.tval compare_list : ('a -> 'a -> int) -> 'a list -> 'a list -> intval equal_list : ('a -> 'a -> bool) -> 'a list -> 'a list -> boolval hash_fold_list : (Base.Hash.state -> 'a -> Base.Hash.state) -> Base.Hash.state -> 'a list -> Base.Hash.stateval sexp_of_list : ('a -> Ppx_sexp_conv_lib.Sexp.t) -> 'a list -> Ppx_sexp_conv_lib.Sexp.tval list_of_sexp : (Ppx_sexp_conv_lib.Sexp.t -> 'a) -> Ppx_sexp_conv_lib.Sexp.t -> 'a listval typerep_of_list : 'a Typerep_lib.Std.Typerep.t -> 'a list Typerep_lib.Std.Typerep.tval typename_of_list : 'a Typerep_lib.Std.Typename.t -> 'a list Typerep_lib.Std.Typename.t
val bin_shape_nativeint : Bin_prot.Shape.tval bin_size_nativeint : nativeint Bin_prot.Size.sizerval bin_write_nativeint : nativeint Bin_prot.Write.writerval bin_writer_nativeint : nativeint Bin_prot.Type_class.writerval bin_read_nativeint : nativeint Bin_prot.Read.readerval __bin_read_nativeint__ : (int -> nativeint) Bin_prot.Read.readerval bin_reader_nativeint : nativeint Bin_prot.Type_class.readerval bin_nativeint : nativeint Bin_prot.Type_class.tval compare_nativeint : nativeint -> nativeint -> intval equal_nativeint : nativeint -> nativeint -> boolval hash_fold_nativeint : Base.Hash.state -> nativeint -> Base.Hash.stateval hash_nativeint : nativeint -> Base.Hash.hash_valueval sexp_of_nativeint : nativeint -> Ppx_sexp_conv_lib.Sexp.tval nativeint_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> nativeintval typerep_of_nativeint : nativeint Typerep_lib.Std.Typerep.tval typename_of_nativeint : nativeint Typerep_lib.Std.Typename.t
val bin_shape_option : Bin_prot.Shape.t -> Bin_prot.Shape.tval bin_size_option : 'a Bin_prot.Size.sizer -> 'a option Bin_prot.Size.sizerval bin_write_option : 'a Bin_prot.Write.writer -> 'a option Bin_prot.Write.writerval bin_writer_option : 'a Bin_prot.Type_class.writer -> 'a option Bin_prot.Type_class.writerval bin_read_option : 'a Bin_prot.Read.reader -> 'a option Bin_prot.Read.readerval __bin_read_option__ : 'a Bin_prot.Read.reader -> (int -> 'a option) Bin_prot.Read.readerval bin_reader_option : 'a Bin_prot.Type_class.reader -> 'a option Bin_prot.Type_class.readerval bin_option : 'a Bin_prot.Type_class.t -> 'a option Bin_prot.Type_class.tval compare_option : ('a -> 'a -> int) -> 'a option -> 'a option -> intval equal_option : ('a -> 'a -> bool) -> 'a option -> 'a option -> boolval hash_fold_option : (Base.Hash.state -> 'a -> Base.Hash.state) -> Base.Hash.state -> 'a option -> Base.Hash.stateval sexp_of_option : ('a -> Ppx_sexp_conv_lib.Sexp.t) -> 'a option -> Ppx_sexp_conv_lib.Sexp.tval option_of_sexp : (Ppx_sexp_conv_lib.Sexp.t -> 'a) -> Ppx_sexp_conv_lib.Sexp.t -> 'a optionval typerep_of_option : 'a Typerep_lib.Std.Typerep.t -> 'a option Typerep_lib.Std.Typerep.tval typename_of_option : 'a Typerep_lib.Std.Typename.t -> 'a option Typerep_lib.Std.Typename.t
val bin_shape_string : Bin_prot.Shape.tval bin_size_string : string Bin_prot.Size.sizerval bin_write_string : string Bin_prot.Write.writerval bin_writer_string : string Bin_prot.Type_class.writerval bin_read_string : string Bin_prot.Read.readerval __bin_read_string__ : (int -> string) Bin_prot.Read.readerval bin_reader_string : string Bin_prot.Type_class.readerval bin_string : string Bin_prot.Type_class.tval compare_string : string -> string -> intval equal_string : string -> string -> boolval hash_fold_string : Base.Hash.state -> string -> Base.Hash.stateval hash_string : string -> Base.Hash.hash_valueval sexp_of_string : string -> Ppx_sexp_conv_lib.Sexp.tval string_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> stringval typerep_of_string : string Typerep_lib.Std.Typerep.tval typename_of_string : string Typerep_lib.Std.Typename.t
val bin_shape_bytes : Bin_prot.Shape.tval bin_size_bytes : bytes Bin_prot.Size.sizerval bin_write_bytes : bytes Bin_prot.Write.writerval bin_writer_bytes : bytes Bin_prot.Type_class.writerval bin_read_bytes : bytes Bin_prot.Read.readerval __bin_read_bytes__ : (int -> bytes) Bin_prot.Read.readerval bin_reader_bytes : bytes Bin_prot.Type_class.readerval bin_bytes : bytes Bin_prot.Type_class.tval compare_bytes : bytes -> bytes -> intval equal_bytes : bytes -> bytes -> boolval sexp_of_bytes : bytes -> Ppx_sexp_conv_lib.Sexp.tval bytes_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> bytesval typerep_of_bytes : bytes Typerep_lib.Std.Typerep.tval typename_of_bytes : bytes Typerep_lib.Std.Typename.t
val bin_shape_ref : Bin_prot.Shape.t -> Bin_prot.Shape.tval bin_size_ref : 'a Bin_prot.Size.sizer -> 'a ref Bin_prot.Size.sizerval bin_write_ref : 'a Bin_prot.Write.writer -> 'a ref Bin_prot.Write.writerval bin_writer_ref : 'a Bin_prot.Type_class.writer -> 'a ref Bin_prot.Type_class.writerval bin_read_ref : 'a Bin_prot.Read.reader -> 'a ref Bin_prot.Read.readerval __bin_read_ref__ : 'a Bin_prot.Read.reader -> (int -> 'a ref) Bin_prot.Read.readerval bin_reader_ref : 'a Bin_prot.Type_class.reader -> 'a ref Bin_prot.Type_class.readerval bin_ref : 'a Bin_prot.Type_class.t -> 'a ref Bin_prot.Type_class.tval compare_ref : ('a -> 'a -> int) -> 'a ref -> 'a ref -> intval equal_ref : ('a -> 'a -> bool) -> 'a ref -> 'a ref -> boolval sexp_of_ref : ('a -> Ppx_sexp_conv_lib.Sexp.t) -> 'a ref -> Ppx_sexp_conv_lib.Sexp.tval ref_of_sexp : (Ppx_sexp_conv_lib.Sexp.t -> 'a) -> Ppx_sexp_conv_lib.Sexp.t -> 'a refval typerep_of_ref : 'a Typerep_lib.Std.Typerep.t -> 'a ref Typerep_lib.Std.Typerep.tval typename_of_ref : 'a Typerep_lib.Std.Typename.t -> 'a ref Typerep_lib.Std.Typename.t
val bin_shape_unit : Bin_prot.Shape.tval bin_size_unit : unit Bin_prot.Size.sizerval bin_write_unit : unit Bin_prot.Write.writerval bin_writer_unit : unit Bin_prot.Type_class.writerval bin_read_unit : unit Bin_prot.Read.readerval __bin_read_unit__ : (int -> unit) Bin_prot.Read.readerval bin_reader_unit : unit Bin_prot.Type_class.readerval bin_unit : unit Bin_prot.Type_class.tval compare_unit : unit -> unit -> intval equal_unit : unit -> unit -> boolval hash_fold_unit : Base.Hash.state -> unit -> Base.Hash.stateval hash_unit : unit -> Base.Hash.hash_valueval sexp_of_unit : unit -> Ppx_sexp_conv_lib.Sexp.tval unit_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> unitval typerep_of_unit : unit Typerep_lib.Std.Typerep.tval typename_of_unit : unit Typerep_lib.Std.Typename.t
val bin_shape_float_array : Bin_prot.Shape.tval bin_size_float_array : float_array Bin_prot.Size.sizerval bin_write_float_array : float_array Bin_prot.Write.writerval bin_writer_float_array : float_array Bin_prot.Type_class.writerval bin_read_float_array : float_array Bin_prot.Read.readerval __bin_read_float_array__ : (int -> float_array) Bin_prot.Read.readerval bin_reader_float_array : float_array Bin_prot.Type_class.readerval bin_float_array : float_array Bin_prot.Type_class.tval compare_float_array : float_array -> float_array -> intval sexp_of_float_array : float_array -> Ppx_sexp_conv_lib.Sexp.tval float_array_of_sexp : Ppx_sexp_conv_lib.Sexp.t -> float_arrayval typerep_of_float_array : float_array Typerep_lib.Std.Typerep.tval typename_of_float_array : float_array Typerep_lib.Std.Typename.t
val sexp_of_exn : Core_kernel__.Import.Exn.t -> Base.Sexp.t
include sig ... end
type 'a sexp_array= 'a Core_kernel__.Import.array
val bin_shape_sexp_array : Bin_prot.Shape.t -> Bin_prot.Shape.tval bin_size_sexp_array : a. 'a Bin_prot.Size.sizer -> 'a sexp_array Bin_prot.Size.sizerval bin_write_sexp_array : a. 'a Bin_prot.Write.writer -> 'a sexp_array Bin_prot.Write.writerval bin_writer_sexp_array : 'a Bin_prot.Type_class.writer -> 'a sexp_array Bin_prot.Type_class.writerval __bin_read_sexp_array__ : a. 'a Bin_prot.Read.reader -> (Core_kernel__.Import.int -> 'a sexp_array) Bin_prot.Read.readerval bin_read_sexp_array : a. 'a Bin_prot.Read.reader -> 'a sexp_array Bin_prot.Read.readerval bin_reader_sexp_array : 'a Bin_prot.Type_class.reader -> 'a sexp_array Bin_prot.Type_class.readerval bin_sexp_array : 'a Bin_prot.Type_class.t -> 'a sexp_array Bin_prot.Type_class.tval compare_sexp_array : a. ('a -> 'a -> Core_kernel__.Import.int) -> 'a sexp_array -> 'a sexp_array -> Core_kernel__.Import.int
module Typename_of_sexp_array : sig ... endval typename_of_sexp_array : 'a Typerep_lib.Typename.t -> 'a sexp_array Typerep_lib.Typename.tval typerep_of_sexp_array : a. 'a Typerep_lib.Std.Typerep.t -> 'a sexp_array Typerep_lib.Std.Typerep.t
type sexp_bool= Core_kernel__.Import.bool
val bin_shape_sexp_bool : Bin_prot.Shape.tval bin_size_sexp_bool : sexp_bool Bin_prot.Size.sizerval bin_write_sexp_bool : sexp_bool Bin_prot.Write.writerval bin_writer_sexp_bool : sexp_bool Bin_prot.Type_class.writerval __bin_read_sexp_bool__ : (Core_kernel__.Import.int -> sexp_bool) Bin_prot.Read.readerval bin_read_sexp_bool : sexp_bool Bin_prot.Read.readerval bin_reader_sexp_bool : sexp_bool Bin_prot.Type_class.readerval bin_sexp_bool : sexp_bool Bin_prot.Type_class.tval compare_sexp_bool : sexp_bool -> sexp_bool -> Core_kernel__.Import.intval hash_fold_sexp_bool : Base.Hash.state -> sexp_bool -> Base.Hash.stateval hash_sexp_bool : sexp_bool -> Base.Hash.hash_value
module Typename_of_sexp_bool : sig ... endval typename_of_sexp_bool : sexp_bool Typerep_lib.Typename.tval typerep_of_sexp_bool : sexp_bool Typerep_lib.Std.Typerep.t
type 'a sexp_list= 'a Core_kernel__.Import.list
val bin_shape_sexp_list : Bin_prot.Shape.t -> Bin_prot.Shape.tval bin_size_sexp_list : a. 'a Bin_prot.Size.sizer -> 'a sexp_list Bin_prot.Size.sizerval bin_write_sexp_list : a. 'a Bin_prot.Write.writer -> 'a sexp_list Bin_prot.Write.writerval bin_writer_sexp_list : 'a Bin_prot.Type_class.writer -> 'a sexp_list Bin_prot.Type_class.writerval __bin_read_sexp_list__ : a. 'a Bin_prot.Read.reader -> (Core_kernel__.Import.int -> 'a sexp_list) Bin_prot.Read.readerval bin_read_sexp_list : a. 'a Bin_prot.Read.reader -> 'a sexp_list Bin_prot.Read.readerval bin_reader_sexp_list : 'a Bin_prot.Type_class.reader -> 'a sexp_list Bin_prot.Type_class.readerval bin_sexp_list : 'a Bin_prot.Type_class.t -> 'a sexp_list Bin_prot.Type_class.tval compare_sexp_list : a. ('a -> 'a -> Core_kernel__.Import.int) -> 'a sexp_list -> 'a sexp_list -> Core_kernel__.Import.intval hash_fold_sexp_list : a. (Base.Hash.state -> 'a -> Base.Hash.state) -> Base.Hash.state -> 'a sexp_list -> Base.Hash.state
module Typename_of_sexp_list : sig ... endval typename_of_sexp_list : 'a Typerep_lib.Typename.t -> 'a sexp_list Typerep_lib.Typename.tval typerep_of_sexp_list : a. 'a Typerep_lib.Std.Typerep.t -> 'a sexp_list Typerep_lib.Std.Typerep.t
type 'a sexp_option= 'a Core_kernel__.Import.option
val bin_shape_sexp_option : Bin_prot.Shape.t -> Bin_prot.Shape.tval bin_size_sexp_option : a. 'a Bin_prot.Size.sizer -> 'a sexp_option Bin_prot.Size.sizerval bin_write_sexp_option : a. 'a Bin_prot.Write.writer -> 'a sexp_option Bin_prot.Write.writerval bin_writer_sexp_option : 'a Bin_prot.Type_class.writer -> 'a sexp_option Bin_prot.Type_class.writerval __bin_read_sexp_option__ : a. 'a Bin_prot.Read.reader -> (Core_kernel__.Import.int -> 'a sexp_option) Bin_prot.Read.readerval bin_read_sexp_option : a. 'a Bin_prot.Read.reader -> 'a sexp_option Bin_prot.Read.readerval bin_reader_sexp_option : 'a Bin_prot.Type_class.reader -> 'a sexp_option Bin_prot.Type_class.readerval bin_sexp_option : 'a Bin_prot.Type_class.t -> 'a sexp_option Bin_prot.Type_class.tval compare_sexp_option : a. ('a -> 'a -> Core_kernel__.Import.int) -> 'a sexp_option -> 'a sexp_option -> Core_kernel__.Import.intval hash_fold_sexp_option : a. (Base.Hash.state -> 'a -> Base.Hash.state) -> Base.Hash.state -> 'a sexp_option -> Base.Hash.state
module Typename_of_sexp_option : sig ... endval typename_of_sexp_option : 'a Typerep_lib.Typename.t -> 'a sexp_option Typerep_lib.Typename.tval typerep_of_sexp_option : a. 'a Typerep_lib.Std.Typerep.t -> 'a sexp_option Typerep_lib.Std.Typerep.t
val bin_shape_sexp_opaque : Bin_prot.Shape.t -> Bin_prot.Shape.tval bin_size_sexp_opaque : a. 'a Bin_prot.Size.sizer -> 'a sexp_opaque Bin_prot.Size.sizerval bin_write_sexp_opaque : a. 'a Bin_prot.Write.writer -> 'a sexp_opaque Bin_prot.Write.writerval bin_writer_sexp_opaque : 'a Bin_prot.Type_class.writer -> 'a sexp_opaque Bin_prot.Type_class.writerval __bin_read_sexp_opaque__ : a. 'a Bin_prot.Read.reader -> (Core_kernel__.Import.int -> 'a sexp_opaque) Bin_prot.Read.readerval bin_read_sexp_opaque : a. 'a Bin_prot.Read.reader -> 'a sexp_opaque Bin_prot.Read.readerval bin_reader_sexp_opaque : 'a Bin_prot.Type_class.reader -> 'a sexp_opaque Bin_prot.Type_class.readerval bin_sexp_opaque : 'a Bin_prot.Type_class.t -> 'a sexp_opaque Bin_prot.Type_class.tval compare_sexp_opaque : a. ('a -> 'a -> Core_kernel__.Import.int) -> 'a sexp_opaque -> 'a sexp_opaque -> Core_kernel__.Import.intval hash_fold_sexp_opaque : a. (Base.Hash.state -> 'a -> Base.Hash.state) -> Base.Hash.state -> 'a sexp_opaque -> Base.Hash.state
module Typename_of_sexp_opaque : sig ... endval typename_of_sexp_opaque : 'a Typerep_lib.Typename.t -> 'a sexp_opaque Typerep_lib.Typename.tval typerep_of_sexp_opaque : a. 'a Typerep_lib.Std.Typerep.t -> 'a sexp_opaque Typerep_lib.Std.Typerep.t