System Performance

Not all motherboards are created equal. On the face of it, they should all perform the same and differ only in the functionality they provide - however, this is not the case. The obvious pointers are power consumption, but also the ability for the manufacturer to optimize USB speed, audio quality (based on audio codec), POST time and latency. This can come down to manufacturing process and prowess, so these are tested.

Power Consumption

Power consumption was tested on the system while in a single ASUS GTX 980 GPU configuration with a wall meter connected to the Thermaltake 1200W power supply. This power supply has ~75% efficiency > 50W, and 90%+ efficiency at 250W, suitable for both idle and multi-GPU loading. This method of power reading allows us to compare the power management of the UEFI and the board to supply components with power under load, and includes typical PSU losses due to efficiency. These are the real world values that consumers may expect from a typical system (minus the monitor) using this motherboard.

While this method for power measurement may not be ideal, and you feel these numbers are not representative due to the high wattage power supply being used (we use the same PSU to remain consistent over a series of reviews, and the fact that some boards on our test bed get tested with three or four high powered GPUs), the important point to take away is the relationship between the numbers. These boards are all under the same conditions, and thus the differences between them should be easy to spot.

Power: Long Idle (w/ GTX 980)Power: OS Idle (w/ GTX 980)Power: Prime95 Blend (w/ GTX 980)

There is some variance in our power consumption figures of the Supermicro X11SPA-T motherboard as we are using a 12-core Intel Xeon W-3235 chip which has a rated TDP of 180 W. This didn't make much difference in idle and long idle power states, however, it became more apparent at full load with a maximum power draw from the wall of 255 W. 

 

Non-UEFI POST Time

Different motherboards have different POST sequences before an operating system is initialized. A lot of this is dependent on the board itself, and POST boot time is determined by the controllers on board (and the sequence of how those extras are organized). As part of our testing, we look at the POST Boot Time using a stopwatch. This is the time from pressing the ON button on the computer to when Windows starts loading. (We discount Windows loading as it is highly variable given Windows specific features.)

Non UEFI POST Time

As our charts suggest, professional focused models such as the Supermicro X11SPA-T have a much slower POST time than desktop models. This is due to the chipset, controller count, and the type of controllers used including three Ethernet controllers. We achieved a POST time at default settings of 87 seconds, although after disabling as many controllers as the firmware would also us, we managed 69.5 seconds.

DPC Latency

Deferred Procedure Call latency is a way in which Windows handles interrupt servicing. In order to wait for a processor to acknowledge the request, the system will queue all interrupt requests by priority. Critical interrupts will be handled as soon as possible, whereas lesser priority requests such as audio will be further down the line. If the audio device requires data, it will have to wait until the request is processed before the buffer is filled.

If the device drivers of higher priority components in a system are poorly implemented, this can cause delays in request scheduling and process time. This can lead to an empty audio buffer and characteristic audible pauses, pops and clicks. The DPC latency checker measures how much time is taken processing DPCs from driver invocation. The lower the value will result in better audio transfer at smaller buffer sizes. Results are measured in microseconds.

Deferred Procedure Call Latency

None of the boards we have tested so far has been optimized for DPC latency out of the box, and the Supermicro X11SPA-T achieved a DPC latency of 295 microseconds. This is still under our 300 microsecond recommendation, but barely.

Board Features, Test Bed and Setup CPU Performance, Short Form
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  • SSNSeawolf - Friday, January 24, 2020 - link

    Gavin, can you comment as to why the W-3235 has a poor showing in some benchmarks, such as Ashes of the Singularity? It loses against it's older cousin, the 7900X, even though it has a slightly faster turbo, much more cache, more memory channels and the same mesh architecture.

    The only thing I can think of is that the 7900X is LCC Skylake silicon while the W-3235 is HCC, but it doesn't seem that such a big delta can be explained by an extra tile hop or two.
  • olafgarten - Friday, January 24, 2020 - link

    As far as I know it's most likely because AOTS uses a lot of multiprocessing and so the HCC might make a difference there
  • PCWarrior - Monday, January 27, 2020 - link

    Three reasons for the difference:
    1. Looser memory timings (secondary, tertiary) on the workstation Supermicro boards compared to the enthusiast X299 ones with tighter timings. Also, likely looser primary timings (as well as looser secondary and tertiary) due to using 16GB DIMMs (and 6 of them) as opposed to 8GB DIMMS (and only 4 of them).

    2. The cascade lake processors have built-in hardware mitigations that are known to have some performance impact. Sure this impact is smaller impact than equivalent software mitigations but larger impact than no security mitigations at all. The 7900X results show in the charts are likely from 2 years ago with no or fewer security mitigations applied.

    3. Unlike enthusiast X299 boards that out-of-the box have no power limits and the cpu can turbo to its all-core turbo indefinitely, the Supermicro C246 boards adhere to Intel’s spec so the TDP is enforced after 28 (or so) seconds. So the 3235 in the above results was turboing to its all-core frequency (and we don’t know if it is 4GHZ as it is for the 7900X to begin with) for only 28 seconds - after that its frequency dropped to a value that would make the cpu power consumption not exceed 180W (i.e. equal to the TDP).

    P.S: There is a mistake in the article. Specifically, under the Test Bed section it says that the board used was the X11SCA-W (instead of the X11SPA-T that this review is supposedly about). It also says that the RAM used was 2x16GB Corsair Vengeance LPX DDR4-2400 (run at 2666) which would have been the case for the X11SCA-W (mainstream 1151 socket and dual channel RAM). This board (the X11SPA-T) should have been tested with 6x16GB at 2933MHZ. Clearly the author forgot to fully update the table when he copy-pasted it from the older article about the X11SCA-W.
  • Tomatotech - Friday, January 24, 2020 - link

    Nice to see how the big boys handle it. Most of my work is with mITX systems. Would be lovely to see a reasonably priced SFF mobo with more than 2 RAM slots and more than 1 nvme m.2 slot. There have been some but they’re not cheap.
  • eastcoast_pete - Friday, January 24, 2020 - link

    This board is outside my personal needs, but I would love to see a lower-priced good quality consumer ATX board with good VRMs, no LEDs and the appearance of this workstation board at a fair price. Something tells me I wouldn't be the only potential customer. Any takers?
  • Foeketijn - Sunday, January 26, 2020 - link

    I even emailed them to ask for a bullet proof no nonsense AM4 board (with official ECC support).
  • otherwise - Tuesday, February 25, 2020 - link

    The Asus "WS" boards are directly aimed at this market.
  • watersb - Saturday, January 25, 2020 - link

    Wow. Do I build one of these, or go for the Mac Pro?
  • Licky McShmickletips - Saturday, January 25, 2020 - link

    Please allow me to correct a small error in your postulation:

    "Do I build -two- of these, or buy one Mac Pro equivalent?"
  • Death666Angel - Saturday, January 25, 2020 - link

    Do you need MacOS? Go with Apple. Do you just need a good workstation? Build it yourself. :)

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