include Sexpable.S with type t := t
val t_of_sexp : Sexplib0.Sexp.t -> tval sexp_of_t : t -> Sexplib0.Sexp.t
val t_sexp_grammar : Sexp.Private.Raw_grammar.t
include Floatable.S with type t := t
include Identifiable.S with type t := t
val hash_fold_t : Hash.state -> t -> Hash.stateval hash : t -> Hash.hash_value
include Sexpable.S with type t := t
val t_of_sexp : Sexplib0.Sexp.t -> tval sexp_of_t : t -> Sexplib0.Sexp.t
include Stringable.S with type t := t
include Comparable.S with type t := t
val ascending : t -> t -> intascendingis identical tocompare.descending x y = ascending y x. These are intended to be mnemonic when used likeList.sort ~compare:ascendingandList.sort ~cmp:descending, since they cause the list to be sorted in ascending or descending order, respectively.
val descending : t -> t -> intval between : t -> low:t -> high:t -> boolbetween t ~low ~highmeanslow <= t <= high
val clamp_exn : t -> min:t -> max:t -> tclamp_exn t ~min ~maxreturnst', the closest value totsuch thatbetween t' ~low:min ~high:maxis true.Raises if
not (min <= max).
val clamp : t -> min:t -> max:t -> t Or_error.t
include Comparator.S with type t := t
val comparator : (t, comparator_witness) Comparator.comparator
val validate_lbound : min:t Maybe_bound.t -> t Validate.checkval validate_ubound : max:t Maybe_bound.t -> t Validate.checkval validate_bound : min:t Maybe_bound.t -> max:t Maybe_bound.t -> t Validate.check
include Pretty_printer.S with type t := t
val pp : Formatter.t -> t -> unit
include Comparable.With_zero with type t := t
val validate_positive : t Validate.checkval validate_non_negative : t Validate.checkval validate_negative : t Validate.checkval validate_non_positive : t Validate.checkval is_positive : t -> boolval is_non_negative : t -> boolval is_negative : t -> boolval is_non_positive : t -> boolval sign : t -> Base__Sign0.tReturns
Neg,Zero, orPosin a way consistent with the above functions.
include Invariant.S with type t := t
val invariant : t -> unit
module Hex : sig ... endval to_string_hum : ?delimiter:char -> t -> stringdelimiteris an underscore by default.
Infix operators and constants
val zero : tval one : tval minus_one : tval (+) : t -> t -> tval (-) : t -> t -> tval (*) : t -> t -> tval (**) : t -> t -> tInteger exponentiation
val (/%) : t -> t -> tval (%) : t -> t -> tval (/) : t -> t -> tval rem : t -> t -> tval (//) : t -> t -> floatFloat division of integers.
Other common functions
val abs : t -> tReturns the absolute value of the argument. May be negative if the input is
min_value.
Successor and predecessor functions
Exponentiation
val pow : t -> t -> tpow base exponentreturnsbaseraised to the power ofexponent. It is OK ifbase <= 0.powraises ifexponent < 0, or an integer overflow would occur.
Bit-wise logical operations
val bit_and : t -> t -> tThese are identical to
land,lor, etc. except they're not infix and have different names.
val bit_or : t -> t -> tval bit_xor : t -> t -> tval bit_not : t -> tval popcount : t -> intReturns the number of 1 bits in the binary representation of the input.
Bit-shifting operations
Increment and decrement functions for integer references
Conversion functions to related integer types
val of_int32_exn : int32 -> tval to_int32_exn : t -> int32val of_int64_exn : int64 -> tval to_int64 : t -> int64val of_nativeint_exn : nativeint -> tval to_nativeint_exn : t -> nativeintval of_float_unchecked : float -> tof_float_uncheckedtruncates the given floating point number to an integer, rounding towards zero. The result is unspecified if the argument is nan or falls outside the range of representable integers.
val num_bits : intThe number of bits available in this integer type. Note that the integer representations are signed.
val max_value : tThe largest representable integer.
val min_value : tThe smallest representable integer.
val shift_right_logical : t -> int -> tShifts right, filling in with zeroes, which will not preserve the sign of the input.
val ceil_pow2 : t -> tceil_pow2 xreturns the smallest power of 2 that is greater than or equal tox. The implementation may only be called forx > 0. Example:ceil_pow2 17 = 32
val floor_pow2 : t -> tfloor_pow2 xreturns the largest power of 2 that is less than or equal tox. The implementation may only be called forx > 0. Example:floor_pow2 17 = 16
val ceil_log2 : t -> intceil_log2 xreturns the ceiling of log-base-2 ofx, and raises ifx <= 0.
val floor_log2 : t -> intfloor_log2 xreturns the floor of log-base-2 ofx, and raises ifx <= 0.
val is_pow2 : t -> boolis_pow2 xreturns true iffxis a power of 2.is_pow2raises ifx <= 0.
val clz : t -> intReturns the number of leading zeros in the binary representation of the input, as an integer between 0 and one less than
num_bits.The results are unspecified for
t = 0.
val ctz : t -> intReturns the number of trailing zeros in the binary representation of the input, as an integer between 0 and one less than
num_bits.The results are unspecified for
t = 0.
module O : sig ... endA sub-module designed to be opened to make working with ints more convenient.
val max_value_30_bits : tmax_value_30_bits = 2^30 - 1. It is useful for writing tests that work on both 64-bit and 32-bit platforms.
Conversion functions
val of_int : int -> tval to_int : t -> intval of_int32 : int32 -> t optionval to_int32 : t -> int32 optionval of_int64 : int64 -> t optionval of_nativeint : nativeint -> t optionval to_nativeint : t -> nativeint
Truncating conversions
val of_int32_trunc : int32 -> tval to_int32_trunc : t -> int32val of_int64_trunc : int64 -> tval of_nativeint_trunc : nativeint -> t
Byte swap operations
module type Hexable = sig ... endmodule type Int_without_module_types = sig ... endmodule type Operators = sig ... endmodule type Operators_unbounded = sig ... endmodule type Round = sig ... endmodule type S = sig ... endmodule type S_common = sig ... endmodule type S_unbounded = sig ... end