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I've been trying to figure out the mystical realm of MIDI parsing, and I'm having no luck. All I'm trying to do is get the note value (60 = C4, 72 = C5, etc), in order of when they occur.

My code is as follows. All it does is very simply open a file as a byte array and read everything out as hex:

byte[] MIDI = File.ReadAllBytes("TestMIDI.mid");
foreach (var element in MIDI) {
    string b = Convert.ToString(element,16);
    Debug.WriteLine(b);
}

All TestMIDI.mid contains is one note on C5. Here's a hex dump of it. Using this info, I'm trying to find the simple hex value for Note On (0x9, or just 9 in the dump), but there aren't any. I can find a few 72's, but there are 3, which doesn't make any sense to me (note on, note off, then what?).

This is my first attempt at parsing MIDI as a file and using hex dumps (are they even called that?), so I'm sorry if I'm heading in the complete wrong direction. All I need is to get the note that plays, and in what order. I don't need timing or anything fancy at all. The reason behind this, if it matters - is to then generate new code in a different language to be played out of a speaker, very similar to the beep command on *nix. Because of this, I don't want to use any frameworks that 1) I didn't program, and really didn't learn anything and 2) do far more than what I need, making the framework heavier than the actual code by me.

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1  
The Note On code 0x9 is packed in 4 bits, with the other 4 bits of the byte being the channel number (if I understood correctly the specs), so you would not find a byte with value 0x9 . –  MiMo Nov 6 '12 at 0:38
    
@MiMo hmm, thank you! So you're saying that there are 4 of those 'groups' (2 chars separated by a space = group) to make up the 'Note On' 0x9? Total hex noob here, sorry! If so, though, it would be far easier to find the note value I want (in this case, 72). –  Jaxo Nov 6 '12 at 0:40
1  
Those 'groups' are bytes - each byte contains 8 bits, 4 bits out of these (corresponding to a single character in the dump) contain the 'Note On' code. I don't know MIDI, I just had a quick look at the specs you linked - but it seems not trivial, it won't be easy to parse - especially if you don't know well how to process individual binary bits & bytes. –  MiMo Nov 6 '12 at 0:54
    
I have edited your title. Please see, "Should questions include “tags” in their titles?", where the consensus is "no, they should not". –  John Saunders Nov 6 '12 at 1:05

2 Answers 2

To do this right, you'll need at least some semblance of a MIDI parser. Searching through 0x9 events is a good start, but 0x9 is also a Note-Off event if the velocity field is 0. 0x9 can also be present inside other events (meta events, MPQN events, delta times, etc), so you'll get false positives. So, you need something that actually knows the MIDI file format to do this accurately.

Look for a library, write your own, or port an open-source one. Mine is in Java if you want to look.

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2  
I've created a MIDI file parser in C# which is part of NAudio. It has been tested on tens of thousands of MIDI files, so should prove reliable. If you don't want to take a dependency on a library, just borrow the parts from the code that you need. –  Mark Heath Nov 6 '12 at 14:54
up vote 0 down vote accepted

Figured it out, thanks to MiMo's help in the comments of the OP!

The code is actually really simple - I'll try to explain it:

byte[] MIDI = File.ReadAllBytes("TestMIDI5.mid");
for(int i=0;i<MIDI.Length;i++){
    if(MIDI[i]==144) {
        Debug.WriteLine(MIDI[i+1]);  //This is the note value
    }
}

I'll try an explain-it-like-I'm-five explanation, since that's the understanding I have of it, basically.

What this does it take a MIDI file, and look for the bytegroup of '90'. According to me (with the help of MiMo), a 'bytegroup' is a byte, containing 8 bits. What this code does it loop through the .mid file until it finds a '90' (in hex). Once it finds it, it looks at the value ahead of it - and that's the note value, simple as that. If you look 7 bytes after the '90' byte, you can get other information about that note.

Even if this is wrong, it seems to be working for me so far. I hope this will help someone else in the future!

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Throw a AND 0xF0 in there too and you'll be safe in regards to channels other that 0. –  0x2bad 0xdeadbeef Nov 6 '12 at 1:20
1  
Why not skip the string conversion and just write if(MIDI[i] == 0x90) {? –  Jeremy Nov 6 '12 at 1:36
3  
For most cases, this will be fine. It's possible that you will get false positives with this method, since the byte 0x90 can occur as part of a delta time, time signature, mpqn event, etc and not actually indicate a Note-On event. To be entirely sure, you'll need a legitimate MIDI parser. –  LeffelMania Nov 6 '12 at 1:39

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