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Currently I'm hitting a hard limit of 130688 bytes. If I try and send anything larger in one message I get a ENOBUFS error.

I have checked the net.core.rmem_default, net.core.wmem_default, net.core.rmem_max, net.core.wmem_max, and net.unix.max_dgram_qlen sysctl options and increased them all but they have no effect because these deal with the total buffer size not the message size.

I have also set the SO_SNDBUF and SO_RCVBUF socket options, but this has the same issue as above. The default socket buffer size are set based on the _default socket options anyways.

I've looked at the kernel source where ENOBUFS is returned in the socket stack, but it wasn't clear to me where it was coming from. The only places that seem to return this error have to do with not being able to allocate memory.

Is the max size actually 130688? If not can this be changed without recompiling the kernel?

Thanks!

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That is a huge datagram. In my opinion, by the time that you have a datagram that large, you may as well have used TCP. –  Jon Trauntvein Jan 18 '11 at 21:37
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Yea, that doesn't help. As I stated in the post, it won't let you send a message over 130688 regardless of your wmem settings. I have them over 32MB and have tried many combinations below that. –  Jaime Jan 18 '11 at 22:04
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Just to add to that. Its a misconception that the send buffers and receive buffers are for single messages. The buffer is the total kernel buffer for all messages. The wmem and qlen sysctl options actually will effect how and when send blocks. As the send buffer fills up (assuming no one receives), when the total bytes in the buffer would go beyond the buffer size or the total count will go beyond the qlen, send will block. –  Jaime Jan 18 '11 at 22:15
    
I get your point (and the question) better. Redacted confusing comment and upvoted; will explore around as time permits, as I'm interested in the answer as well. –  JB. Jan 18 '11 at 22:40
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I agree that its possible this is the hard limit. Just trying to find some proof and maybe some reasoning behind it. –  Jaime Jan 19 '11 at 13:49

2 Answers 2

up vote 6 down vote accepted

AF_UNIX SOCK_DATAGRAM/SOCK_SEQPACKET datagrams need contiguous memory. Contiguous physical memory is hard to find, and the allocation fails, logging something similar to this on the kernel log:

udgc: page allocation failure. order:7, mode:0x44d0
[...snip...]
DMA: 185*4kB 69*8kB 34*16kB 27*32kB 11*64kB 1*128kB 1*256kB 0*512kB 0*1024kB 0*2048kB 0*4096kB = 3788kB
Normal: 13*4kB 6*8kB 100*16kB 62*32kB 24*64kB 10*128kB 0*256kB 1*512kB 0*1024kB 0*2048kB 0*4096kB = 7012kB
[...snip...]

unix_dgram_sendmsg() calls sock_alloc_send_skb() lxr1, which calls sock_alloc_send_pskb() with data_len = 0 and header_len = size of datagram lxr2. sock_alloc_send_pskb() allocates header_len from "normal" skbuff buffer space, and data_len from scatter/gather pages lxr3. So, it looks like AF_UNIX sockets don't support scatter/gather on current Linux.

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Excellent work. This is essentially what I found in my traces, but you have provided actual reason. I wonder why datagrams would have this limit but not streams? –  Jaime Jan 28 '11 at 13:18
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SOCK_STREAM sockets don't preserve message boundaries. –  ninjalj Jan 28 '11 at 18:50
    
See also expanded answer at stackoverflow.com/questions/21856517/… –  Jonathan Ben-Avraham Aug 22 '14 at 8:53

It depends on the MTU http://en.wikipedia.org/wiki/Maximum_transmission_unit. Which in most cases is less than your number. Anyway the number you are measuring is probably just what you are sending. The packet will get truncated.

The wiki page has this to say:

The transmission of a packet on a physical network segment that is larger than the segment's MTU is known as jabber. This is almost always caused by faulty devices. Many network switches have a built-in capability to detect when a device is jabbering and block it until it resumes proper operation.

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even sending larger(UDP) datagrams isn't limited by the MTU, they'll get fragmented and reassembled by the IP layer. –  nos Jan 18 '11 at 21:48
    
Why would you do that? –  Navi Jan 18 '11 at 21:50
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AF_UNIX doesn't go over an interface. It's local. It doesn't have an MTU in the sense you're thinking. –  derobert Jan 19 '11 at 0:20
    
The title clearly says we're talking about AF_UNIX (aka AF_LOCAL) sockets, so none of this applies. –  deuberger Feb 4 '11 at 15:28

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