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xing-hu / EMSE-DeepCom

Licence: MIT license
The dataset for EMSE-DeepCom

Programming Languages

NewLisp
63 projects

EMSE-DeepCom

The source code and dataset for EMSE-DeepCom

Model Training

Command: python3 __main__.py config.yaml --train -v

Projects extracted from Github

The project information are listed in the file projects.txt. Each line represents a project which includes the GitHub username and project name connected by "_"

The distribution of the Java methods and classes in projects

Data process

Generate ASTs for Java methods

Command: python3 get_ast.py source.code ast.json source.code:the source code file and each line represents one Java method. ast.json: the ast file for Java method and each line represents one ast:

For Example:

public boolean doesNotHaveIds (){ 
  return getIds () == null || getIds ().getIds().isEmpty(); 
}
[
{"id": 0, "type": "MethodDeclaration", "children": [1, 2], "value": "doesNotHaveIds"}, 
    {"id": 1, "type": "BasicType", "value": "boolean"}, 
    {"id": 2, "type": "ReturnStatement", "children": [3], "value": "return"}, 
        {"id": 3, "type": "BinaryOperation", "children": [4, 7]}, 
            {"id": 4, "type": "BinaryOperation", "children": [5, 6]}, 
                {"id": 5, "type": "MethodInvocation", "value": "getIds"}, 
                {"id": 6, "type": "Literal", "value": "null"}, 
            {"id": 7, "type": "MethodInvocation", "children": [8, 9], "value": "getIds"}, 
                {"id": 8, "type": "MethodInvocation", "value": "."}, 
                {"id": 9, "type": "MethodInvocation", "value": "."}
 ]

Dataset and Outputs

As the limitation of LFS, the dataset can be downloaded from Google Drive

Evaluate Metrics

The evaluation scripts are listed in the file Scripts.

The Sentence-level evaluation by NLTK:

Command: python3 evaluation.py reference predictions

The Corpus-level evaluation by multi-bleu.perl:

Command: perl multi-bleu.perl reference < predictions

The METEOR evaluation by meteor 1.5:

Command: java -Xmx2G -jar meteor-1.5.jar predictions reference -l en -norm

reference: the ground-truth file (the test.token.nl file in our dataset). predictions: the generated comments file. Each line represents one sample.

Note that the project description data, including the texts, logos, images, and/or trademarks, for each open source project belongs to its rightful owner. If you wish to add or remove any projects, please contact us at [email protected].