Question

在Eclipse中给出以下代码：

import org.eclipse.jdt.core.dom.AST;
import org.eclipse.jdt.core.dom.ASTParser;
import org.eclipse.jdt.core.dom.CompilationUnit;

public class Question {
    public static void main(String[] args) {
        String source = "class Bob {}";
        ASTParser parser = ASTParser.newParser(AST.JLS3); 
        parser.setSource(source.toCharArray());
        CompilationUnit result = (CompilationUnit) parser.createAST(null);

        String source2 = "class Bob {public void MyMethod(){}}";
        ASTParser parser2 = ASTParser.newParser(AST.JLS3); 
        parser2.setSource(source2.toCharArray());
        CompilationUnit result2 = (CompilationUnit) parser2.createAST(null);
    }
}

如何使用Eclipse Compare API（org.eclipse.compare）查找AST差异？（这可以在插件之外完成吗？）

我正在查看以下API

http://kickjava.com/src/org/eclipse/compare/structuremergeviewer/Differencer.java.htm http://kickjava.com/src/org/eclipse/jdt/internal/ui/compare/JavaStructureCreator.java.htm http://kickjava.com/src/org/eclipse/compare/CompareUI.java.htm

任何人都可以指向示例代码（或API - 但代码是首选）。

Answer 1

GumTree完成这项工作，免费：）

它还支持其他语言，例如javascript。

Answer 2

鉴于Eclipse不进行AST差异，也许OP希望在语言结构方面忽略空格和注释来找到两个文件之间的差异。我们的Smart Differencer tool根据语言结构（变量，表达式，语句，块，方法......）比较两个源文件，并描述了对这些元素的抽象编辑操作方面的差异（删除，复制，移动），重命名区域中的标识符，...）

Answer 3

实际上，使用ASTNode的属性检查相等性很简单。在那之后，由您决定，您希望如何获得差异。检查代码示例是否进行了相等性测试：

public class ASTCompare {

    @SuppressWarnings("unchecked")
    static boolean equals(ASTNode left, ASTNode right) {
        // if both are null, they are equal, but if only one, they aren't
        if (left == null && right == null) {
            return true;
        } else if (left == null || right == null) {
            return false;
        }
        // if node types are the same we can assume that they will have the same
        // properties
        if (left.getNodeType() != right.getNodeType()) {
            return false;
        }
        List<StructuralPropertyDescriptor> props = left
                .structuralPropertiesForType();
        for (StructuralPropertyDescriptor property : props) {
            Object leftVal = left.getStructuralProperty(property);
            Object rightVal = right.getStructuralProperty(property);
            if (property.isSimpleProperty()) {
                // check for simple properties (primitive types, Strings, ...)
                // with normal equality
                if (!leftVal.equals(rightVal)) {
                    return false;
                }
            } else if (property.isChildProperty()) {
                // recursively call this function on child nodes
                if (!equals((ASTNode) leftVal, (ASTNode) rightVal)) {
                    return false;
                }
            } else if (property.isChildListProperty()) {
                Iterator<ASTNode> leftValIt = ((Iterable<ASTNode>) leftVal)
                        .iterator();
                Iterator<ASTNode> rightValIt = ((Iterable<ASTNode>) rightVal)
                        .iterator();
                while (leftValIt.hasNext() && rightValIt.hasNext()) {
                    // recursively call this function on child nodes
                    if (!equals(leftValIt.next(), rightValIt.next())) {
                        return false;
                    }
                }
                // one of the value lists have additional elements
                if (leftValIt.hasNext() || rightValIt.hasNext()) {
                    return false;
                }
            }
        }
        return true;
    }
}

Eclipse抽象语法树差异

3 个答案: