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/*
* This file is part of "lunisolar-magma".
*
* (C) Copyright 2015 Lunisolar (http://lunisolar.eu/).
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
package eu.lunisolar.magma.func.function;
import javax.annotation.Nonnull; // NOSONAR
import javax.annotation.Nullable; // NOSONAR
import java.util.Comparator; // NOSONAR
import java.util.Objects; // NOSONAR
import eu.lunisolar.magma.basics.*; //NOSONAR
import eu.lunisolar.magma.basics.builder.*; // NOSONAR
import eu.lunisolar.magma.basics.exceptions.*; // NOSONAR
import eu.lunisolar.magma.basics.meta.*; // NOSONAR
import eu.lunisolar.magma.basics.meta.functional.*; // NOSONAR
import eu.lunisolar.magma.basics.meta.functional.type.*; // NOSONAR
import eu.lunisolar.magma.basics.meta.functional.domain.*; // NOSONAR
import eu.lunisolar.magma.func.*; // NOSONAR
import eu.lunisolar.magma.func.operator.unary.*; // NOSONAR
import eu.lunisolar.magma.func.operator.binary.*; // NOSONAR
import eu.lunisolar.magma.func.operator.ternary.*; // NOSONAR
import eu.lunisolar.magma.func.function.*; // NOSONAR
import eu.lunisolar.magma.func.function.from.*; // NOSONAR
import eu.lunisolar.magma.func.function.to.*; // NOSONAR
import eu.lunisolar.magma.func.function.conversion.*; // NOSONAR
import eu.lunisolar.magma.func.predicate.*; // NOSONAR
import eu.lunisolar.magma.func.supplier.*; // NOSONAR
import eu.lunisolar.magma.func.consumer.*; // NOSONAR
import eu.lunisolar.magma.func.consumer.primitives.*; // NOSONAR
import eu.lunisolar.magma.func.consumer.primitives.bi.*; // NOSONAR
import eu.lunisolar.magma.func.consumer.primitives.tri.*; // NOSONAR
import eu.lunisolar.magma.func.consumer.primitives.obj.*; // NOSONAR
import eu.lunisolar.magma.func.action.*; // NOSONAR
/**
* Throwing functional interface (lambda) LTriFunctionX for Java 8.
*
* Type: function
*
* Domain (lvl: 3): T1 t1,T2 t2,T3 t3
*
* Co-domain: R
*
* @see LTriFunction
*/
@FunctionalInterface
@SuppressWarnings("UnusedDeclaration")
public interface LTriFunctionX extends MetaFunction, MetaInterface.Throwing { // NOSONAR
static final String DESCRIPTION = "LTriFunctionX: R doApply(T1 t1,T2 t2,T3 t3) throws X";
@Nullable
R doApply(T1 t1, T2 t2, T3 t3) throws X;
/** Function call that handles exceptions by always nesting checked exceptions and propagating the otheres as is. */
default R nestingDoApply(T1 t1, T2 t2, T3 t3) {
try {
return this.doApply(t1, t2, t3);
} catch (RuntimeException | Error e) { // NOSONAR
throw e;
} catch (Throwable e) { // NOSONAR
throw new NestedException(e);
}
}
/** Function call that handles exceptions by always propagating them as is even when they are undeclared checked ones. */
default R shovingDoApply(T1 t1, T2 t2, T3 t3) {
return ((LTriFunctionX) this).doApply(t1, t2, t3);
}
/** Function call that handles exceptions according to the instructions. */
default R handlingDoApply(T1 t1, T2 t2, T3 t3, HandlingInstructions handling) throws Y {
try {
return this.doApply(t1, t2, t3);
} catch (Throwable e) { // NOSONAR
throw Handler.handleOrNest(e, handling);
}
}
static final LSupplier NULL_VALUE_MESSAGE_SUPPLIER = () -> "Evaluated value by nonNullDoApply() method cannot be null (" + DESCRIPTION + ").";
/** Function call that ensures the result is not null */
@Nonnull
default R nonNullDoApply(T1 t1, T2 t2, T3 t3) throws X {
return Null.requireNonNull(doApply(t1, t2, t3), NULL_VALUE_MESSAGE_SUPPLIER);
}
/** Returns description of the functional interface. */
@Nonnull
default String functionalInterfaceDescription() {
return LTriFunctionX.DESCRIPTION;
}
/** Captures arguments but delays the evaluation. */
default LSupplierX captureTriFunc(T1 t1, T2 t2, T3 t3) {
return () -> this.doApply(t1, t2, t3);
}
/** Creates function that always returns the same value. */
static LTriFunctionX constant(R r) {
return (t1, t2, t3) -> r;
}
/** Captures single parameter function into this interface where only 1st parameter will be used. */
@Nonnull
static LTriFunctionX apply1st(@Nonnull LFunctionX func) {
return (t1, t2, t3) -> func.doApply(t1);
}
/** Captures single parameter function into this interface where only 2nd parameter will be used. */
@Nonnull
static LTriFunctionX apply2nd(@Nonnull LFunctionX func) {
return (t1, t2, t3) -> func.doApply(t2);
}
/** Captures single parameter function into this interface where only 3rd parameter will be used. */
@Nonnull
static LTriFunctionX apply3rd(@Nonnull LFunctionX func) {
return (t1, t2, t3) -> func.doApply(t3);
}
/** Convenient method in case lambda expression is ambiguous for the compiler (that might happen for overloaded methods accepting different interfaces). */
@Nonnull
static LTriFunctionX lX(final @Nonnull LTriFunctionX lambda) {
Null.nonNullArg(lambda, "lambda");
return lambda;
}
/** Convenient method in case lambda expression is ambiguous for the compiler (that might happen for overloaded methods accepting different interfaces). */
@Nonnull
static LTriFunctionX lX(@Nonnull Class xClass, final @Nonnull LTriFunctionX lambda) {
Null.nonNullArg(lambda, "lambda");
return lambda;
}
//
/** Wraps opposite (throwing vs non-throwing) instance. */
@Nonnull
static LTriFunctionX wrapX(final @Nonnull LTriFunction other) {
return (LTriFunctionX) other;
}
//
//
/** Allows to manipulate the domain of the function. */
@Nonnull
default LTriFunctionX triFuncCompose(@Nonnull final LFunctionX super V1, ? extends T1, X> before1, @Nonnull final LFunctionX super V2, ? extends T2, X> before2,
@Nonnull final LFunctionX super V3, ? extends T3, X> before3) {
Null.nonNullArg(before1, "before1");
Null.nonNullArg(before2, "before2");
Null.nonNullArg(before3, "before3");
return (final V1 v1, final V2 v2, final V3 v3) -> this.doApply(before1.doApply(v1), before2.doApply(v2), before3.doApply(v3));
}
//
//
/** Combines two functions together in a order. */
@Nonnull
default LTriFunctionX then(@Nonnull LFunctionX super R, ? extends V, X> after) {
Null.nonNullArg(after, "after");
return (T1 t1, T2 t2, T3 t3) -> after.doApply(this.doApply(t1, t2, t3));
}
/** Combines two functions together in a order. */
@Nonnull
default LTriConsumerX then(@Nonnull LConsumerX super R, X> after) {
Null.nonNullArg(after, "after");
return (T1 t1, T2 t2, T3 t3) -> after.doAccept(this.doApply(t1, t2, t3));
}
//
//
/** Converts to non-throwing variant (if required). */
@Nonnull
default LTriFunction nestingTriFunc() {
return this::nestingDoApply;
}
/** Converts to throwing variant (RuntimeException). */
@Nonnull
default LTriFunctionX nestingTriFuncX() {
return this::nestingDoApply;
}
/** Converts to non-throwing variant that will propagate checked exception as it would be unchecked - there is no exception wrapping involved (at least not here). */
default LTriFunction shovingTriFunc() {
return this::shovingDoApply;
}
/** Converts to throwing variant (RuntimeException) that will propagate checked exception as it would be unchecked - there is no exception wrapping involved (at least not here). */
default LTriFunctionX shovingTriFuncX() {
return this::shovingDoApply;
}
//
/** Converts to function that makes sure that the result is not null. */
@Nonnull
default LTriFunctionX nonNullTriFunc() {
return this::nonNullDoApply;
}
//
/** Converts to function that handles exceptions according to the instructions. */
@Nonnull
default LTriFunction handleTriFunc(@Nonnull HandlingInstructions handling) {
return (T1 t1, T2 t2, T3 t3) -> this.handlingDoApply(t1, t2, t3, handling);
}
/** Converts to function that handles exceptions according to the instructions. */
@Nonnull
default LTriFunctionX handleTriFuncX(@Nonnull HandlingInstructions handling) {
return (T1 t1, T2 t2, T3 t3) -> this.handlingDoApply(t1, t2, t3, handling);
}
//
}