Maat is a multi-paradigm programming(functional and object oriented)language
inspired from the lovely Perl, Raku and Lua programming languages.
…, ...: to specify unimplemented codep: postfix, i: infix, b: prefix
++: (p,b) incrementation operator--: (p,b) decrementation operator-: (b) negate the operand+: (b)~: (b) binary complement… or ...: (b) Array destruction operator in the context of list assingment and and^: (p) ^5 return an array of element i.e from 0 to 5√: (p) sqaure root operator⁰ ¹ ² ³ ⁴ ⁵ ⁶ ⁷ ⁸ ⁹: (b) super-script power operatorsdefined: (b) check if a varible is nil and return true otherwisesleep: (b) call sleep() syscallreturn: (b) return from a functionexit: exit program with given exit codesay: (b) print to the standard output with a trailing new lineprint: (b) print without a new lineprintf: (b) print formatted stringprintfln: (b) formatted string + a trailing new line and return to a file descriptorsprintf: (b) sprintf, return formatted stringsprintfln: (b) sprintf + a trailing new linejoin: (b)die: (b) program dies with a message on STDERRwarn: (b) warn with a message on STDERRisa: (i) checks if the left object isa(of the same class or kind of inherited) the right objectminmax: (i) return in an Array the min and the max of the right and left operand respectively., .^: method/attribute call operators for objects and metaobjects/metaclasses respectively,, =>: (i, b) comma operator, and key-value separator infix operator!: (p) negation operator ex: !true == false=, :=: (i) assignment and binding operator//: (i) a // b, return a it is set otherwise b== / ⩵, != / ≠, >, >= / ≥, <, <= / ≤: (i) basic operators between objects+, -, / / ÷, *, %, .. / ``: (i) add, sub, div, div, mul, remainder and range operator+=, /= / ÷=, -=, //=, *=, %=: (i) left operand(a variable) = left operand value op right operand<<, >>, ^, &, &=, |=: (i) bitwise shift on left and right, logical or and and&&, ||, &&=, ||=: (i) logical "and" and "or" operator≅ / =~, ~~: (i) regex operator and smart match operator∉, ∈, ∊, ∍, ∋, ∌, ⊂, ⊄ , ⊆, ⊈, ⊃, ⊅, ⊇, ⊉, ≡, ≢, ⊖, ∩, ⊍, ∪, ⊖, ⊎, ∖: (i) set operators.<=> : op1 <=> op2 says if op1 < op2 yield -1, op1 == op2 yield 0, op1 > op2 yield 1∘: mathematic function composition, take two subroutines as operand?:: tenary operator( ).++, --, √ and unary prefix … / ...**, ⁰, ¹, ², ³, ⁴, ⁵, ⁶, ⁷, ⁸, ⁹!, ~, \ and unary + and -=~, !~*, /, %+, -, ., ∘∩, ⊍∪, ⊖, ⊎, ∖∈, ∊, ∉, ∋, ∍, ∌, ≡, ≢, ⊂, ⊄, ⊃, ⊅, ⊆, ⊈, ⊇, ⊉, ≼, ≽<<, >>isa<, >, <= / ≤, >= / ≥==, !=, <=>, ~~&|, ^&&||, //.., lonely operator … / ...?:=, :=, &=, |=, &&=, ||=, +=, /= / ÷=, -=, //=, *=, .=, %=, last, break, redo, and dump,, =>Pair delimiters below are used to declare enums, arrays, hashes and regexs
( ) [ ] { } < >
« » » « ‹ › › ‹
„ ” “ ” ‘ ’ ‚ ’
〈 〉 〈 〉 《 》 「 」
『 』 【 】 〔 〕 〖 〗
〘 〙 〚 〛 ⌈ ⌉ ⌊ ⌋
❪ ❫ ❬ ❭ ❮ ❯ ❰ ❱
❲ ❳ ❴ ❵ ⟅ ⟆ ⟦ ⟧
⟨ ⟩ ⟪ ⟫ ⟬ ⟭ ⟮ ⟯
⦃ ⦄ ⦅ ⦆ ⦋ ⦌ ⦍ ⦎
⦗ ⦘ ⧼ ⧽ 〈 〉 ❨ ❩
⦏ ⦐ ⦑ ⦒
var x = a|one two three|
-- [ "Three", "Two", "One" ]
var b = x.map(.cap).rev
-- [ "0ne", "tw0", "three" ]
x =~ s<o>«0»
We also have a restricted set of delimiter characters for double quoted strings(q), single quoted strings(Q)
and regex operators.
/ | % " '
var a = a|ONE TWO THREE|
a.each { .lc.say }
say q"interpolation won't work"
say Q<interpolation works, array: #a>
-- [ "0ne", "Tw0" ]
a.grep({(x) x =~ m|o| }).map(s|o|0|r).map(.ucfirst).say
Maat has four types of variables: package, lexical, temporal and persistent variables.
Package variable can be accessed from other packages using their full qualified name and lexically scoped variables cannot be accessed from outside the package in which it was declared.
Temporal variables are declared within a scope and refers to previously declared package variables from the current package if its name at declaration isn't fully qualified otherwise refers to the variable in the specified package. Any changes made to temporal variables remains local to the scope from where it was declare and thus the referenced variables remains untouched. You cannot localize lexically scoped variables.
Declare package variables with the keyword global, lexically scoped variables with
var and temporal variable with tmp.
package One::Two {
global x = a<one two three>
var a = { one => 1 }
{
-- a: { one => 1, two => 2 }
var a += { two => 2 }
-- could still use "One::Two::x" at declaration
tmp x = {}
-- empty hash
say One::Two::x
}
-- output: h{one 1}
a.say
-- output: a<one two three>
x.say
}
package One::Two::Three {
-- refers to the package variable "x" declared in the namespace "One::Two"
say One::Two::Three::x
-- compiler tells there is no such package variable in namespace "One::Two::Three"
say One::Two::Three::a
}
In regards to functions, static variables are lexically scoped variables which retains their values between
function and block(during recursion or jumps with a loop control) calls. We declare static lexically scoped
variables with the state keyword.
fun increment(n) {
state k = n
_FUN_(nil), return k if ++k != 9
}
-- 9
increment(0, 9).say
constant variables are lexically scoped by default unless you precise they're global with the global keyword.
-- lexically scoped declaration of a constant
const z = 4
-- a constant global
const global (x, y) = (2, 10)
Special variables are package variables, some are writetable and can change the behavoir of your programs while others are readonly and contain useful information to make important decisions.
We expand the content of special variables using the sigil $. some of these variables are writable(w)
while others are read-only(r).
say "Running #$0 on #$OS"
Maat: (r) Maat versionOS: (r) OS version on which pity was build.: (r) current line in a file,: (w) output field separator/: (w) input record separator": (w) Separator character during interpolation$: (r) Pid of the current maat program0: (r) Program name!: (r) retrieve errors from syscallsWe donot expand type 2 special variables with $, they are just like simple variable we use in our Maat programs
_ : (w) Topic variable, used mostly in blocks__ : (w) Topic variable, used mostly in blocksENV: a Map which contains your current environment variablesPATH: an Array which contains the absolute path to directories where maat searches for modulesINC: a Map, each key correspond to an imported module and have a value which correspond its location in the filesystemSIG: for traping signals, map a signal name to a Fun object to be called when given signal is trappedARGV: array containing command line argumentsARGC: represents the argument count, it is an object of type IntDATA: represents a file handle to manipulate data under _DATA_, just like in perl_FUN_: for recursion, call the current function_BLOCK_: for recursion, call the current block_FILE_: a string object, represents the name of current script in executionπ: Pi, 3.14....e: Euler's numberMaat has 25 builtin objects, types are objects and objects are types, check details on each types here.
We separate statements with a generic newline or a semicolon in case we have more than one statement on a single line.
Blocks
say 1
say 2; say 3
{ say 1 }; { say 4 }
{
say "one"
{ say "two" }
-- recall the current block
_BLOCK_
}
do block
do { CODE }
var v = do { 2 }
-- output: "2"
say v
-- "3"
(do { 3 }).say
do { false } or die "failed"
work blockwork { CODE }
Run a block asyncronously
work {
4.sleep
say "done"
}
var i = work { Inf.sleep }
-- declare an anonymous function
var a = { sleep 4; say "done" }
-- run function in "a" asyncronously and return a work object which represents it
var w = work a.call()
say "do stuffs"
-- abide work 'w' for maximum 4 seconds
abide w
-- abide work 'i' forever
abide i
ifif EXPR [ -> VAR ] { CODE } [ elsif EXPR -> [ VAR ] { CODE } ] [ else { CODE } ]
Conditional if construct, note that paranthesis are optional.
You must explicitly defined a topic variable as the if construct does not change the value of
the default topic variable _.
if true { say "it is true" }
if 0 {
say "you are a failure"
}
elsif false {
say "still a failure, go away!!"
}
else {
say "welcome my man!"
}
say 1 if true
var x = Num.rand(120)
if x % 2 -> r {
say "remainder is #{r}"
}
withwith EXPR [ -> VAR ] { CODE } [ orwith EXPR [ -> VAR ] { CODE } ] [ else { CODE } ]
Conditional with statement, parathensis are optional as always.
with tests for definedness (that's !nil) whereas if tests for truth in the returned
value of the expression.
Just like the if construct, the with does not set the default topic variable _ but you can explicitly
define a topic variable if the return value of the evaluated expression EXPR is of interest to you.
var (u, y) = 5, nil
with u { say "defined" }
-- output: 5
with y { say "never here" }
orwith u / 2 -> m { say m, u }
else { say "and never here too" }
Explicit topicalization avoids you from doing the following
var x = (y + 1) / 2
with x { ... }
But simple do
with (y + 1) / 2 -> x { ... }
forfor LIST [ -> VAR [ , ... ] ] { CODE }
for ARRAY [ -> VAR [ , ... ] ] { CODE }
for LAZY_ITERATOR [ -> VAR [ , ... ] ] { CODE }
for iterator over the following iterable objects
Here is an example of iterations over a list of values
-- list: three iterations
for "a", r/regex/, [2, 4] { .say }
var ar = a<one two three four five>
-- trailing comma to indicate it is a list and thus only one iteration
for ar, { .say }
-- we have a.len + 1 iterations
-- list: using the array destruction operator which breaks 'ar' into a list
-- set a custom default value when we are out of elements
for ar…, 2 -> m, n = 'default' { (n + '-' + m).say }
Iterating over Array objects
-- output: 3 3 5 4 4
for ar -> i { say i.len }
-- 'ar' is now a[3 3 5 4 4] as 'j' binds the corresponding indexed element
for ar -> j {
j = j.len
}
-- output: (3, 3) (5, 4) (4, none)
for ar -> i, j = "none" {
print "(#i, #j) "
}
.say for ar
gather-takegather is statement/block prefix which returns a sequence of values comming from calls to take in
the dynamic scope of block/function passed as argument to gather.
fun factors(Num n) -> Lazy {
var k = 1
lazy gather {
while k ** 2 < n {
take k, n.div(k) if n % k
k++
}
take k if k ** 2 == n
}
}
factors(36).each { .say }
keyskeys is a looping construct which iterates over hash keys to perform certain operations if any of them
smart-matches any of the cases.
var fruits = h[banana 2 orange 1 melon 2]
keys fruits -> k, v {
match /^b/ | /ge$/ { _ = .rev; v += 2 }
default { v *= 2 }
}
-- output: { banan => 5, orang => 3, melon => 4 }
fruits.say
given-matchWe implement the switch-case using given-match construct, When an object is specified this construct tests
the topic variable initialized to the argument passed to given against the following cases using the smartmatch
operator(~~). We execute the block of the first matching case and instantly exit the given block. We can
continue on to the next case by using the proceed instruction within the block of a case.
-- output: Num, 42
given 34 {
match Num { say "Num"; proceed }
match 42 { say "42" }
default { say "Default" }
}
-- use '|' for alternation
var name = "kueppo"
given name {
match /^k/ | /o$/ { say "matches" }
match /^m/ { say "starts with 'm'" }
default { say "default" }
}
Note that smartmatch operator is the default operator used when
You can also use given as a standalone statement to specify the variable of concern in the execution
of a block.
var x = [2, 5]
given x {
say "variable x has two elements" if x.len == 2
}
print .map {(rx) rx ** 2 } given x
loopJust like the C-for loop
general form: loop initializer; condition; step { ... }
loop var k = 0; k ≤ 20; k² { k.say }
-- you can skip some parts
loop var k = 0;;k++ {
k.say
break if k == 10
}
loop { say "looping forever" }
while and untilThe basic while and until loop.
var k = 6
while k > 1 {
k.say
k--
}
until k == 0 {
say "not entering here"
}
do-while/until
var k = Set.new(2, 4, 5)
var b = [2, 7, 3]
do {
k.push(b.pop)
} while [2, 7] ∉ k
do {
say "forever"
} until false;
loop control statments: next, break, and redo
general form: next [LABEL|LEVEL], if you donot specify the label then it
performs the action for the current block.
next: just like C's continue loop control statementbreak: just like C's break loop control statementredo: rerun the block without testing the conditionlabelslabels permits you to jump between labeled blocks using a loop control statement
-- an infinite loop with prints "one"
ONE: {
say "one"
redo ONE
}
-- print "two" to the stdout and repeatly print "three"
TWO: {
say "two"
THREE: {
say "three"
_BLOCK_
}
# dead code to be wiped by the compiler
say "never gonna be executed"
}
onceonce gives you the possibility to execute a statement within a loop only once regardless
of the number of iterations. One great advantage it offers is avoid the burdens of using a
conditional construct to avoid the execution of a statement.
var h = h{one 1 two 2 three 3}
h.each_kv {(k,v)
once say 'only once!' if v == 1
printfln "%s => %d", k, v
}
try-catch-finallytry-catch for handling exceptions.
_ and __We've been using topic variables since the begining of this section without known what they are, a topic
variable is just an argument passed to an executing block, you can declare a topic variable to avoid the
default one(_), you can declare more than one topic variable to fetch the desired number of elements
for calls.
NOTE: topic variables should only be named at the begining of the block of concern.
var a = [2, 5, 34]
-- declaring a topic variable x
print a.map {(x)
once x++
next if x == 3
√x
}
-- output: 2,2 4,nan
[2, 2, 4].each {(x, y = "nan") say "#x,#y" }
Maat has support for multiple dispatching, type checks and named arguments. Mixing named arguments with unnamed ones brings a lot of confusion in your code and hence either you name all your arguments or you don't name anything at all.
fun callme(c, n) { c.call(_) for ^n }
callme({ .say }, 5)
mul fun intro(name, age) {
say "Hello, my name is #name, I'm #{age}yo"
}
mul fun intro(name) {
say "Hello, my name is #name!"
}
intro("kueppo", "20")
intro("sarah")
intro(age = 5, name = liza)
-- no candidates for this and thus fails at compile time
intro(age = 10)
-- You can also specify the return type
fun mul(Str s, Int k) -> Str { s * k }
fun mul(Str s) { s * 2 }
mul("one").say
mul("two", 5).say
-- using the array accumulator operator for variadic arguments
fun tellme(Str name, Array counts…) {
printfln "You have %d %s", counts.sum, name
}
tellme("pineaples", 2, 4, 10)
Function as well as methods do have support for the save trait, note that return type has
to appear after any trait
fun fib(n) :save -> Num {
n < 2 ? n : _FUN_(n - 1) + _FUN_(n - 2)
}
role D { ... }
role E { ... }
class B { ... }
class C { ... }
-- "is" for inheritance and "does" for roles
class A :is(B, C) :does(D, E) {
has x :ro -- read-only attribute, ro: say A.x; not possible: A.x = "some value"
has y :rw = 0 -- read-write attribute with default value '0', write: A.y = 2; read: say A.y
has Num z -- attribute of type 'Num', maat has a type check system
state count = 0 -- static variable which is accessible to all objects via class 'A': A.count
meth xyz() {
-- self.x, self.y, etc.
...
}
mul meth amethod() {}
-- a method which returns an object of type 'Num'
mul meth amethod() -> Num {}
-- defining a method 'priv' as private, oi means only-in
meth priv() :oi {}
}
List of traits supported by class attributes
rw: Attribute is read-writero: Attribute is read-onlybuilt: Make attribute private but can only also be written from outside the object only via object instanciationWe also have the oi trait which makes a method private
To every object is associated a metaobject which permits object introspection, given an object obj, you can
introspect this method via its metaobject by using the .^ method call operator.
-- consider 'obj' a variable containing an object, We have the following metamethods
obj.^who --
obj.^name -- name of the class from which the object was instantiated
obj.^methods
Maat uses Perl compatible regular expressions(PCRE), see Regex object for more details.