private void analyzeCall(RexCall call, Constancy callConstancy) { parentCallTypeStack.add(call.getOperator()); // visit operands, pushing their states onto stack super.visitCall(call); // look for NON_CONSTANT operands int nOperands = call.getOperands().length; List<Constancy> operandStack = stack.subList(stack.size() - nOperands, stack.size()); for (Constancy operandConstancy : operandStack) { if (operandConstancy == Constancy.NON_CONSTANT) { callConstancy = Constancy.NON_CONSTANT; } } // Even if all operands are constant, the call itself may // be non-deterministic. if (!call.getOperator().isDeterministic()) { callConstancy = Constancy.NON_CONSTANT; } else if (call.getOperator().isDynamicFunction()) { // We can reduce the call to a constant, but we can't // cache the plan if the function is dynamic preparingStmt.disableStatementCaching(); } // Row operator itself can't be reduced to a literal, but if // the operands are constants, we still want to reduce those if ((callConstancy == Constancy.REDUCIBLE_CONSTANT) && (call.getOperator() instanceof SqlRowOperator)) { callConstancy = Constancy.NON_CONSTANT; } if (callConstancy == Constancy.NON_CONSTANT) { // any REDUCIBLE_CONSTANT children are now known to be maximal // reducible subtrees, so they can be added to the result // list for (int iOperand = 0; iOperand < nOperands; ++iOperand) { Constancy constancy = operandStack.get(iOperand); if (constancy == Constancy.REDUCIBLE_CONSTANT) { addResult(call.getOperands()[iOperand]); } } // if this cast expression can't be reduced to a literal, // then see if we can remove the cast if (call.getOperator() == SqlStdOperatorTable.castFunc) { reduceCasts(call); } } // pop operands off of the stack operandStack.clear(); // pop this parent call operator off the stack parentCallTypeStack.remove(parentCallTypeStack.size() - 1); // push constancy result for this call onto stack stack.add(callConstancy); }
private Expression translate0(RexNode expr) { if (expr instanceof RexInputRef) { // TODO: multiple inputs, e.g. joins final Expression input = getInput(0); final int index = ((RexInputRef) expr).getIndex(); final List<RelDataTypeField> fields = program.getInputRowType().getFieldList(); final RelDataTypeField field = fields.get(index); if (fields.size() == 1) { return input; } else if (input.getType() == Object[].class) { return Expressions.convert_( Expressions.arrayIndex(input, Expressions.constant(field.getIndex())), Types.box(JavaRules.EnumUtil.javaClass(typeFactory, field.getType()))); } else { return Expressions.field(input, field.getName()); } } if (expr instanceof RexLocalRef) { return translate(program.getExprList().get(((RexLocalRef) expr).getIndex())); } if (expr instanceof RexLiteral) { return Expressions.constant( ((RexLiteral) expr).getValue(), typeFactory.getJavaClass(expr.getType())); } if (expr instanceof RexCall) { final RexCall call = (RexCall) expr; final SqlOperator operator = call.getOperator(); final ExpressionType expressionType = SQL_TO_LINQ_OPERATOR_MAP.get(operator); if (expressionType != null) { switch (operator.getSyntax()) { case Binary: return Expressions.makeBinary( expressionType, translate(call.getOperands()[0]), translate(call.getOperands()[1])); case Postfix: case Prefix: return Expressions.makeUnary(expressionType, translate(call.getOperands()[0])); default: throw new RuntimeException("unknown syntax " + operator.getSyntax()); } } Method method = SQL_OP_TO_JAVA_METHOD_MAP.get(operator); if (method != null) { List<Expression> exprs = translateList(Arrays.asList(call.operands)); return !Modifier.isStatic(method.getModifiers()) ? Expressions.call(exprs.get(0), method, exprs.subList(1, exprs.size())) : Expressions.call(method, exprs); } switch (expr.getKind()) { default: throw new RuntimeException("cannot translate expression " + expr); } } throw new RuntimeException("cannot translate expression " + expr); }