IEnumDescriptor
PIComposer APIPIComposer API

IEnumDescriptor abstract#

abstract class IEnumDescriptor extends ITypeDescriptor

Descriptor for an ENUMERATION type in the EXPRESS schema system.

In PIComposer, null safety is a major design requirement. To support this, all enumerations include an initial value PI_NULL (at index 0) to represent a null or unset enumeration value. Therefore, the EXPRESS schema enumeration values begin at index 1.

Inheritance

Object → INullableObjectITypeDescriptorIEnumDescriptor

Implementers

Constructors#

IEnumDescriptor()#

IEnumDescriptor()

Properties#

baseType no setter inherited#

int get baseType

Gets the base type identifier.

Conceptually similar to the return value of getFundamentalBaseType, representing the underlying fundamental type.

Inherited from ITypeDescriptor.

Implementation
int get baseType;

fundamentalType no setter inherited#

FundamentalType get fundamentalType

Gets the fundamental type categorization.

Returns the FundamentalType enumeration value that categorizes this type within the fundamental type system.

Inherited from ITypeDescriptor.

Implementation
FundamentalType get fundamentalType;

hashCode no setter inherited#

int get hashCode

The hash code for this object.

A hash code is a single integer which represents the state of the object that affects operator == comparisons.

All objects have hash codes. The default hash code implemented by Object represents only the identity of the object, the same way as the default operator == implementation only considers objects equal if they are identical (see identityHashCode).

If operator == is overridden to use the object state instead, the hash code must also be changed to represent that state, otherwise the object cannot be used in hash based data structures like the default Set and Map implementations.

Hash codes must be the same for objects that are equal to each other according to operator ==. The hash code of an object should only change if the object changes in a way that affects equality. There are no further requirements for the hash codes. They need not be consistent between executions of the same program and there are no distribution guarantees.

Objects that are not equal are allowed to have the same hash code. It is even technically allowed that all instances have the same hash code, but if clashes happen too often, it may reduce the efficiency of hash-based data structures like HashSet or HashMap.

If a subclass overrides hashCode, it should override the operator == operator as well to maintain consistency.

Inherited from Object.

Implementation
external int get hashCode;

isNull no setter inherited#

bool get isNull

Indicates whether the object represents a null value.

Returns true if the object is considered null according to its implementation, false otherwise.

Inherited from INullableObject.

Implementation
bool get isNull;

referenceType no setter inherited#

int get referenceType

Gets the reference type identifier.

The defined type this type is aliased to. Example: TYPE IfcLabel = STRING(255); END_TYPE; TYPE IfcBoxAlignment = IfcLabel; END_TYPE; The reference type of IfcBoxAlignment is IfcLabel

Inherited from ITypeDescriptor.

Implementation
int get referenceType;

runtimeType no setter inherited#

Type get runtimeType

A representation of the runtime type of the object.

Inherited from Object.

Implementation
external Type get runtimeType;

schema no setter inherited#

ISchema get schema

Gets the schema object that holds this descriptor.

Returns the ISchema instance that contains and manages this type descriptor.

Inherited from ITypeDescriptor.

Implementation
ISchema get schema;

schemaEnum no setter inherited#

SupportedSchema get schemaEnum

Gets the schema where this type is defined.

Returns the SupportedSchema enumeration value identifying the specific schema that contains this type definition.

Inherited from ITypeDescriptor.

Implementation
SupportedSchema get schemaEnum;

type no setter inherited#

String get type

Gets the EXPRESS type name that this descriptor represents.

Inherited from ITypeDescriptor.

Implementation
String get type;

typeId no setter inherited#

int get typeId

Gets the hash-based identifier for the type.

Computed from the type name using toTypeId function.

Inherited from ITypeDescriptor.

Implementation
int get typeId => toTypeId(type);

valueCount no setter#

int get valueCount

Gets the total number of values in the enumeration, including PI_NULL.

Implementation
int get valueCount;

values no setter#

List<String> get values

Gets all string values of the enumeration, including PI_NULL.

Returns a list containing all enumeration values in order, with PI_NULL as the first element (index 0).

Implementation
List<String> get values;

Methods#

createEnum()#

PIEnum createEnum([ int value = 0])

Creates a PIEnum instance for this enumeration type.

value: Optional zero-based index value for the enumeration. Defaults to 0 (PI_NULL) if not specified.

Returns a new PIEnum instance representing the specified value.

Implementation
PIEnum createEnum([int value = 0]);

getValue()#

String getValue(int index)

Gets the string representation of the enumeration value at the specified index.

index: The zero-based index of the enumeration value to retrieve.

Returns the string value at the given index. Note: Index 0 always returns PI_NULL for all enum.

Implementation
String getValue(int index);

getValueIndex()#

int getValueIndex(int hash)

Gets the index of an enumeration value by its hash identifier.

hash: The hash value of the enumeration string (see toTypeId).

Returns the zero-based index of the enumeration value with the matching hash, or -1 if not found.

Implementation
int getValueIndex(int hash);

isEquivalent() inherited#

bool isEquivalent(ITypeDescriptor other)

Inherited from ITypeDescriptor.

Implementation
bool isEquivalent(ITypeDescriptor other);

noSuchMethod() inherited#

dynamic noSuchMethod(Invocation invocation)

Invoked when a nonexistent method or property is accessed.

A dynamic member invocation can attempt to call a member which doesn't exist on the receiving object. Example:

dynamic object = 1;
object.add(42); // Statically allowed, run-time error

This invalid code will invoke the noSuchMethod method of the integer 1 with an Invocation representing the .add(42) call and arguments (which then throws).

Classes can override noSuchMethod to provide custom behavior for such invalid dynamic invocations.

A class with a non-default noSuchMethod invocation can also omit implementations for members of its interface. Example:

class MockList<T> implements List<T> {
  noSuchMethod(Invocation invocation) {
    log(invocation);
    super.noSuchMethod(invocation); // Will throw.
  }
}
void main() {
  MockList().add(42);
}

This code has no compile-time warnings or errors even though the MockList class has no concrete implementation of any of the List interface methods. Calls to List methods are forwarded to noSuchMethod, so this code will log an invocation similar to Invocation.method(#add, [42]) and then throw.

If a value is returned from noSuchMethod, it becomes the result of the original invocation. If the value is not of a type that can be returned by the original invocation, a type error occurs at the invocation.

The default behavior is to throw a NoSuchMethodError.

Inherited from Object.

Implementation
@pragma("vm:entry-point")
@pragma("wasm:entry-point")
external dynamic noSuchMethod(Invocation invocation);

toString() inherited#

String toString()

A string representation of this object.

Some classes have a default textual representation, often paired with a static parse function (like int.parse). These classes will provide the textual representation as their string representation.

Other classes have no meaningful textual representation that a program will care about. Such classes will typically override toString to provide useful information when inspecting the object, mainly for debugging or logging.

Inherited from Object.

Implementation
external String toString();

Operators#

operator ==() inherited#

bool operator ==(Object other)

The equality operator.

The default behavior for all Objects is to return true if and only if this object and other are the same object.

Override this method to specify a different equality relation on a class. The overriding method must still be an equivalence relation. That is, it must be:

  • Total: It must return a boolean for all arguments. It should never throw.

  • Reflexive: For all objects o, o == o must be true.

  • Symmetric: For all objects o1 and o2, o1 == o2 and o2 == o1 must either both be true, or both be false.

  • Transitive: For all objects o1, o2, and o3, if o1 == o2 and o2 == o3 are true, then o1 == o3 must be true.

The method should also be consistent over time, so whether two objects are equal should only change if at least one of the objects was modified.

If a subclass overrides the equality operator, it should override the hashCode method as well to maintain consistency.

Inherited from Object.

Implementation
external bool operator ==(Object other);