要复制文件并将其保存到目标路径，您可以使用下面的方法。

public static void copy(File src, File dst) throws IOException {
    InputStream in = new FileInputStream(src);
    try {
        OutputStream out = new FileOutputStream(dst);
        try {
            // Transfer bytes from in to out
            byte[] buf = new byte[1024];
            int len;
            while ((len = in.read(buf)) > 0) {
                out.write(buf, 0, len);
            }
        } finally {
            out.close();
        }
    } finally {
        in.close();
    }
}

在API 19+上，您可以使用Java自动资源管理:

public static void copy(File src, File dst) throws IOException {
    try (InputStream in = new FileInputStream(src)) {
        try (OutputStream out = new FileOutputStream(dst)) {
            // Transfer bytes from in to out
            byte[] buf = new byte[1024];
            int len;
            while ((len = in.read(buf)) > 0) {
                out.write(buf, 0, len);
            }
        }
    }
}

或者，您也可以使用FileChannel来复制文件。在复制大文件时，它可能比字节复制方法更快。如果你的文件大于2GB，你就不能使用它。

public void copy(File src, File dst) throws IOException {
    FileInputStream inStream = new FileInputStream(src);
    FileOutputStream outStream = new FileOutputStream(dst);
    FileChannel inChannel = inStream.getChannel();
    FileChannel outChannel = outStream.getChannel();
    inChannel.transferTo(0, inChannel.size(), outChannel);
    inStream.close();
    outStream.close();
}

下面是一个解决方案，如果在复制时发生错误，它实际上会关闭输入/输出流。这个解决方案利用apache Commons IO IOUtils方法来复制和处理流的关闭。

    public void copyFile(File src, File dst)  {
        InputStream in = null;
        OutputStream out = null;
        try {
            in = new FileInputStream(src);
            out = new FileOutputStream(dst);
            IOUtils.copy(in, out);
        } catch (IOException ioe) {
            Log.e(LOGTAG, "IOException occurred.", ioe);
        } finally {
            IOUtils.closeQuietly(out);
            IOUtils.closeQuietly(in);
        }
    }

这些对我来说很有效

public static void copyFileOrDirectory(String srcDir, String dstDir) {

    try {
        File src = new File(srcDir);
        File dst = new File(dstDir, src.getName());

        if (src.isDirectory()) {

            String files[] = src.list();
            int filesLength = files.length;
            for (int i = 0; i < filesLength; i++) {
                String src1 = (new File(src, files[i]).getPath());
                String dst1 = dst.getPath();
                copyFileOrDirectory(src1, dst1);

            }
        } else {
            copyFile(src, dst);
        }
    } catch (Exception e) {
        e.printStackTrace();
    }
}

public static void copyFile(File sourceFile, File destFile) throws IOException {
    if (!destFile.getParentFile().exists())
        destFile.getParentFile().mkdirs();

    if (!destFile.exists()) {
        destFile.createNewFile();
    }

    FileChannel source = null;
    FileChannel destination = null;

    try {
        source = new FileInputStream(sourceFile).getChannel();
        destination = new FileOutputStream(destFile).getChannel();
        destination.transferFrom(source, 0, source.size());
    } finally {
        if (source != null) {
            source.close();
        }
        if (destination != null) {
            destination.close();
        }
    }
}

现在回答可能太迟了，但最方便的方法是使用

FileUtils's

文件srcFile，文件destFile

这就是我所做的

`

private String copy(String original, int copyNumber){
    String copy_path = path + "_copy" + copyNumber;
        try {
            FileUtils.copyFile(new File(path), new File(copy_path));
            return copy_path;
        } catch (IOException e) {
            e.printStackTrace();
        }
        return null;
    }

`

Kotlin扩展它

fun File.copyTo(file: File) {
    inputStream().use { input ->
        file.outputStream().use { output ->
            input.copyTo(output)
        }
    }
}

这在Android O (API 26)上很简单，如你所见:

  @RequiresApi(api = Build.VERSION_CODES.O)
  public static void copy(File origin, File dest) throws IOException {
    Files.copy(origin.toPath(), dest.toPath());
  }

现在使用Kotlin要简单得多:

 File("originalFileDir", "originalFile.name")
            .copyTo(File("newFileDir", "newFile.name"), true)

Trueorfalse用于覆盖目标文件

https://kotlinlang.org/api/latest/jvm/stdlib/kotlin.io/java.io.-file/copy-to.html

在kotlin中，只需:

val fileSrc : File = File("srcPath")
val fileDest : File = File("destPath")

fileSrc.copyTo(fileDest)

在Kotlin:很短的路

// fromPath : Path the file you want to copy 
// toPath :   The path where you want to save the file
// fileName : name of the file that you want to copy
// newFileName: New name for the copied file (you can put the fileName too instead of put a new name)    

val toPathF = File(toPath)
if (!toPathF.exists()) {
   path.mkdir()
}

File(fromPath, fileName).copyTo(File(toPath, fileName), replace)

这适用于任何文件，如图像和视频

在kotlin中你可以用

file1.copyTo(file2)

file1是原始文件的对象，而file2是要复制到的新文件的对象

简单易行的方法!

import android.os.FileUtils;

try (InputStream in = new FileInputStream(sourceFile); 
     OutputStream out = new FileOutputStream(destinationFile) ){
                
     FileUtils.copy(in, out); 

}catch(Exception e){
     Log.d("ReactNative","Error copying file: "+e.getMessage());
}