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I am very new to Java, and trying to use Mathematica's Java interface to access a file using memory mapping (in hope of a performance improvement).

The Mathematica code I have is (I believe) equivalent to the following Java code (based on this):

import java.io.FileInputStream;
import java.nio.MappedByteBuffer;
import java.nio.channels.FileChannel;

public class MainClass {
  private static final int LENGTH = 8*100;

  public static void main(String[] args) throws Exception {
    MappedByteBuffer buffer = new FileInputStream("test.bin").getChannel().map(FileChannel.MapMode.READ_ONLY, 0, LENGTH);
    buffer.load();
    buffer.isLoaded(); // returns false, why?
  }
}

I would like to use the array() method on buffer, so I am trying to load the buffers contents into memory first using load(). However, even after load(), isLoaded() returns false, and buffer.array() throws an exception: java.lang.UnsupportedOperationException at java.nio.ByteBuffer.array(ByteBuffer.java:940).

Why doesn't the buffer load and how can I call the array() method?

My ultimate aim here is to get an array of doubles using asDoubleBuffer().array(). The method getDouble() does work correctly, but I was hoping to get this done in one go for good performance. What am I doing wrong?


As I am doing this from Mathematica, I'll post the actual Mathematica code I used too (equivalent to the above in Java):

Needs["JLink`"]
LoadJavaClass["java.nio.channels.FileChannel$MapMode"]
buffer = JavaNew["java.io.FileInputStream", "test.bin"]@getChannel[]@map[FileChannel$MapMode`READUONLY, 0, 8*100]

buffer@load[]
buffer@isLoaded[] (* returns False *)
share|improve this question
    
"A return value of false does not necessarily imply that the buffer's content is not resident in physical memory." load is only best efforts, and indeed may have loaded the data into physical memory only for it to be immediately swapped out. –  Tom Hawtin - tackline Dec 21 '11 at 15:38
    
@TomHawtin-tackline I think I misunderstood the purpose of load then. What I'd like to achieve is to get the contents of the buffer as an array of doubles. The array method unfrotunately doesn't work, and throws the exception I mentioned. I updated the question based on yuor feedback. –  Szabolcs Dec 21 '11 at 15:40
    
array only works for buffers that are backed by an array (typically from *Buffer.wrap). –  Tom Hawtin - tackline Dec 21 '11 at 15:46
    
@Szabolcs J/Link is using MathLink underneath for its operation. Therefore, importing a file to Mathematica through J/Link can not be faster than using Mathlink, which by itself can induce a pretty large overhead. If I understand correctly the source of your question, the main problem is not the load time for .mx files (I'd be hard pressed to see anything beating .mx load speed), but their coarse granularity. This should not matter much is every large .mx file only needs to be loaded once (in which case, this coarse granularity will be sufficient). If not, I'd create a file-system-type ... –  Leonid Shifrin Dec 21 '11 at 19:01
    
@Szabolcs abstraction layer on top of much more fine-grained .mx files (which would serve as "clusters" for a large .mx file), so that we can get a good approximation to a random access .mx file and avoid re-reading unnecessary data. I think that would be the key. For a large data file (.mx or otherwise), I'd first convert it to such "composite" format (which may take a while but needs to be done only once). After that, onse should be able to work with it similar to a normal random-access file, and things should be fast then. –  Leonid Shifrin Dec 21 '11 at 19:05

1 Answer 1

up vote 3 down vote accepted

According to Javadoc
"The content of a mapped byte buffer can change at any time, for example if the content of the corresponding region of the mapped file is changed by this program or another. Whether or not such changes occur, and when they occur, is operating-system dependent and therefore unspecified.

All or part of a mapped byte buffer may become inaccessible at any time, for example if the mapped file is truncated. An attempt to access an inaccessible region of a mapped byte buffer will not change the buffer's content and will cause an unspecified exception to be thrown either at the time of the access or at some later time. It is therefore strongly recommended that appropriate precautions be taken to avoid the manipulation of a mapped file by this program, or by a concurrently running program, except to read or write the file's content."

To me it seems to many conditions and undesirable misbehavior. Do you need particularly this class?

If you just need to read file contents in fastest way, give a try:

FileChannel fChannel = new FileInputStream(f).getChannel();
    byte[] barray = new byte[(int) f.length()];
    ByteBuffer bb = ByteBuffer.wrap(barray);
    bb.order(ByteOrder.LITTLE_ENDIAN);
    fChannel.read(bb);

It works at speed almost equal to disk system test speed.

For double you can use DoubleBuffer (with double[] array if f.length()/4 size) or just call getDouble(int) method of ByteBuffer.

share|improve this answer
    
I don't need this class in particular. I was hoping to be able to get the contents of part of a very large binary file (not all of it) as an array of doubles, in a faster way than what the builtin Mathematica functionality provides. –  Szabolcs Dec 21 '11 at 15:46
    
Updated answer with "For double you can use DoubleBuffer (with double[] array of f.length()/4 size) or just call getDouble(int) method of ByteBuffer." You said you will read only some doubles. I'd use ByteBuffer to avoid possible conversion of unneeded bytes to doubles (in case of DoubleBuffer). –  andrey Dec 21 '11 at 15:51
    
Thanks @andrey. I do need to get a double [] eventually, as this is what gets auto-converted back to a Mathematica object (i.e. I can't just use getDouble with some index). If I try to read into a DoubleBuffer directly, it doesn't work. If I read into a ByteBuffer, it does work, and I can get it asDoubleBuffer(), but what I obtain this way returns false for hasArray() again, i.e. I can't convert it to a plain array of doubles. Do you have any suggestions on how to get an array of double without explicitly looping through the whole thing and copying them out one by one? –  Szabolcs Dec 21 '11 at 16:06
3  
Alright, I managed to get it working with .asDoubleBuffer().get(anArray), but it turns out to be very slow for large files, so I'm giving up in trying to use Java for this (since I have next to zero Java knowledge and this already took too long). Thanks for the help! –  Szabolcs Dec 21 '11 at 16:29
    
Sorry for later response. I just checked out that default byte ordering in ByteBuffer is BIG_ENDIAN. For reading doubles we need LITTLE_ENDIAN. Perhaps it's too late, but anyway, I've fixed code with "bb.order(ByteOrder.LITTLE_ENDIAN);" More about converting stackoverflow.com/questions/6471177/… –  andrey Dec 22 '11 at 7:28

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