7

我正在编写一个小文件上传实用程序,作为一个更大项目的一部分。最初,我使用 Apache commons File 实用程序类从 servlet 处理这个问题。这是我为该服务编写的快速测试客户端的片段:

public static void main(String[] args) {

  JaxWsProxyFactoryBean factory = new JaxWsProxyFactoryBean();

 factory.getInInterceptors().add(new LoggingInInterceptor());
 factory.getOutInterceptors().add(new LoggingOutInterceptor());
 factory.setServiceClass(FileUploadService.class);
 factory.setAddress("http://localhost:8080/FileUploadService/FileUploadService");
 FileUploadService client = (FileUploadService) factory.create();

 FileType file = new FileType();
 file.setName("statemo_1256144312279");
 file.setType("xls");

 DataSource source = new FileDataSource(new File("c:/development/statemo_1256144312279.xls"));
 file.setHandler(new DataHandler(source));
 Boolean ret = client.uploadFile(file);
 System.out.println (ret);
 System.exit(0);

}

这绝对没问题。现在,当我尝试替换 Apache 公共实用程序时,问题就来了。在上面的代码中,我从一个具有绝对路径名的文件创建一个数据源。但是,在我的 servlet 中,我无法获得绝对路径名,并且我通过网络发送的文件是空的。

这是servlet代码:

 @SuppressWarnings("unchecked")
    protected void doPost (final HttpServletRequest request, final HttpServletResponse response) 
        throws ServletException, IOException {

    // form should have enctype="multipart/form-data" as an attribute
 if (!ServletFileUpload.isMultipartContent (request)) {
  LOG.info("Invalid form attribute");
  return;
 }

 //DataInputStream in = new DataInputStream(request.getInputStream());

 final DiskFileItemFactory factory = new DiskFileItemFactory ();
 factory.setSizeThreshold(FILE_THRESHOLD_SIZE);

 final ServletFileUpload sfu = new ServletFileUpload (factory);
 sfu.setSizeMax(MAX_FILE_SIZE);

 final HttpSession session = request.getSession();

 final List<FileItem> files = new ArrayList<FileItem>();

 final List<String> filesToProcess = new ArrayList<String>();

 try {
        final List<FileItem> items = sfu.parseRequest(request);

        for (final FileItem f : items) {
            if (!f.isFormField())
                files.add(f);
        }

        /*for (final FileItem f : files) {
         final String absoluteFileName = UPLOAD_DESTINATION + FilenameUtils.getName(f.getName());

            //f.write(new File (absoluteFileName));
            filesToProcess.add(absoluteFileName);
        }*/

        FileItem f = files.get(0);

        LOG.info("File: " + FilenameUtils.getName(f.getName()));
        LOG.info("FileBaseName: " + FilenameUtils.getBaseName(f.getName()));
        LOG.info("FileExtension: " + FilenameUtils.getExtension(f.getName()));

        FileUploadServiceClient client = new FileUploadServiceClient();

        DataSource source = new FileDataSource(new File(f.getName()));

        FileType file = new FileType();
        file.setHandler(new DataHandler(source));
        file.setName(FilenameUtils.getBaseName(f.getName()));
        file.setType(FilenameUtils.getExtension(f.getName()));

        Boolean ret = client.uploadFile(file);

        LOG.info("File uploaded - " + ret);

        filesToProcess.add(UPLOAD_DESTINATION + FilenameUtils.getName(f.getName()));
        session.setAttribute("filesToProcess", filesToProcess);

  final RequestDispatcher dispatcher = request.getRequestDispatcher("Validate");
        if (null != dispatcher) {
         dispatcher.forward(request, response);
        }
    } catch (FileUploadException e) {
        LOG.info("Exception " + e.getMessage());
        e.printStackTrace();
    } catch (Exception e) {
        LOG.info("Exception " + e.getMessage());
        e.printStackTrace();
    }

}

今天早上的大部分时间我一直在努力解决这个问题,但我一无所获。即使我完全摆脱了 Apache commons 文件的内容并自己处理请求的解析,我仍然无法适当地构造 DataSource。

谢谢!

4

3 回答 3

5

这实际上相当简单,我只是将字节从 InputStream 复制到 DataSource:

FileItem f = files.get(0);

// there is a problem here where the file being created is empty, since we only have a
// partial path:
DataSource source = new FileDataSource(new File(f.getName()));

// because of the above problem, we are going to copy over the data ourselves:
byte[] sourceBytes = f.get();
OutputStream sourceOS = source.getOutputStream();
sourceOS.write(sourceBytes);
于 2010-01-26T19:31:31.823 回答
2
  • 是commons-email的代码ByteArrayDataSource
  • 尝试替换 apache commons 听起来很奇怪——不要,除非你有充分的理由
  • 可以在 servlet 中获取绝对路径。您可以调用getServletContext().getRealPath("/")which 将返回应用程序的绝对路径,然后您可以获取相对于它的文件。
于 2010-01-26T19:22:10.753 回答
2

在我们的应用程序中,有些对象具有 InputStream 和 Name 属性。我们正在使用下一个类来构造具有这些属性的 DataSource。

public class InputStreamDataSource implements DataSource {

    ByteArrayOutputStream buffer = new ByteArrayOutputStream();
    private final String name;

    public InputStreamDataSource(InputStream inputStream, String name) {
        this.name = name;
        try {
            int nRead;
            byte[] data = new byte[16384];
            while ((nRead = inputStream.read(data, 0, data.length)) != -1) {
              buffer.write(data, 0, nRead);
            }
            inputStream.close();
            buffer.flush();
        } catch (IOException e) {
            e.printStackTrace();
        }

    }

    @Override
    public String getContentType() {            
        return new MimetypesFileTypeMap().getContentType(name);
    }

    @Override
    public InputStream getInputStream() throws IOException {
            return new ByteArrayInputStream(buffer.toByteArray());
    }

    @Override
    public String getName() {
       return name;
    }

    @Override
    public OutputStream getOutputStream() throws IOException {
        throw new IOException("Read-only data");
    }

}
于 2016-02-11T16:21:05.590 回答