Frame Rating Performance Testing Setup
For our testing today, we are only going to be looking at two specific games: Battlefield 4 and Metro: Last Light. Because these cards are based on the exact same GPU with slightly different clock rates, the variances between them are going to be somewhat small but also incredibly predictable. After our stock GPU testing you’ll find a look at noise, power and overclocking capability which is where I think most of you will make your decisions.
Testing Configuration
The specifications for our testing system haven't changed much.
Test System Setup | |
CPU | Intel Core i7-3960X Sandy Bridge-E |
Motherboard | ASUS P9X79 Deluxe |
Memory | Corsair Dominator DDR3-1600 16GB |
Hard Drive | OCZ Agility 4 256GB SSD |
Sound Card | On-board |
Graphics Card | NVIDIA GeForce GTX 750 Ti 2GB EVGA GTX 750 Ti 2GB FTW Galaxy GTX 750 Ti 2GB GC PNY GTX 750 Ti 2GB XLR8 OC |
Graphics Drivers | NVIDIA: 335.23 |
Power Supply | Corsair AX1200i |
Operating System | Windows 8 Pro x64 |
Frame Rating: Our Testing Process
If you aren't familiar with it, you should probably do a little research into our testing methodology as it is quite different than others you may see online. Rather than using FRAPS to measure frame rates or frame times, we are using an secondary PC to capture the output from the tested graphics card directly and then use post processing on the resulting video to determine frame rates, frame times, frame variance and much more.
This amount of data can be pretty confusing if you attempting to read it without proper background, but I strongly believe that the results we present paint a much more thorough picture of performance than other options. So please, read up on the full discussion about our Frame Rating methods before moving forward!!
While there are literally dozens of file created for each “run” of benchmarks, there are several resulting graphs that FCAT produces, as well as several more that we are generating with additional code of our own.
If you don't need the example graphs and explanations below, you can jump straight to the benchmark results now!!
The PCPER FRAPS File
While the graphs above are produced by the default version of the scripts from NVIDIA, I have modified and added to them in a few ways to produce additional data for our readers. The first file shows a sub-set of the data from the RUN file above, the average frame rate over time as defined by FRAPS, though we are combining all of the GPUs we are comparing into a single graph. This will basically emulate the data we have been showing you for the past several years.
The PCPER Observed FPS File
This graph takes a different subset of data points and plots them similarly to the FRAPS file above, but this time we are look at the “observed” average frame rates, shown previously as the blue bars in the RUN file above. This takes out the dropped and runts frames, giving you the performance metrics that actually matter – how many frames are being shown to the gamer to improve the animation sequences.
As you’ll see in our full results on the coming pages, seeing a big difference between the FRAPS FPS graphic and the Observed FPS will indicate cases where it is likely the gamer is not getting the full benefit of the hardware investment in their PC.
The PLOT File
The primary file that is generated from the extracted data is a plot of calculated frame times including runts. The numbers here represent the amount of time that frames appear on the screen for the user, a “thinner” line across the time span represents frame times that are consistent and thus should produce the smoothest animation to the gamer. A “wider” line or one with a lot of peaks and valleys indicates a lot more variance and is likely caused by a lot of runts being displayed.
The RUN File
While the two graphs above show combined results for a set of cards being compared, the RUN file will show you the results from a single card on that particular result. It is in this graph that you can see interesting data about runts, drops, average frame rate and the actual frame rate of your gaming experience.
For tests that show no runts or drops, the data is pretty clean. This is the standard frame rate per second over a span of time graph that has become the standard for performance evaluation on graphics cards.
A test that does have runts and drops will look much different. The black bar labeled FRAPS indicates the average frame rate over time that traditional testing would show if you counted the drops and runts in the equation – as FRAPS FPS measurement does. Any area in red is a dropped frame – the wider the amount of red you see, the more colored bars from our overlay were missing in the captured video file, indicating the gamer never saw those frames in any form.
The wide yellow area is the representation of runts, the thin bands of color in our captured video, that we have determined do not add to the animation of the image on the screen. The larger the area of yellow the more often those runts are appearing.
Finally, the blue line is the measured FPS over each second after removing the runts and drops. We are going to be calling this metric the “observed frame rate” as it measures the actual speed of the animation that the gamer experiences.
The PERcentile File
Scott introduced the idea of frame time percentiles months ago but now that we have some different data using direct capture as opposed to FRAPS, the results might be even more telling. In this case, FCAT is showing percentiles not by frame time but instead by instantaneous FPS. This will tell you the minimum frame rate that will appear on the screen at any given percent of time during our benchmark run. The 50th percentile should be very close to the average total frame rate of the benchmark but as we creep closer to the 100% we see how the frame rate will be affected.
The closer this line is to being perfectly flat the better as that would mean we are running at a constant frame rate the entire time. A steep decline on the right hand side tells us that frame times are varying more and more frequently and might indicate potential stutter in the animation.
The PCPER Frame Time Variance File
Of all the data we are presenting, this is probably the one that needs the most discussion. In an attempt to create a new metric for gaming and graphics performance, I wanted to try to find a way to define stutter based on the data sets we had collected. As I mentioned earlier, we can define a single stutter as a variance level between t_game and t_display. This variance can be introduced in t_game, t_display, or on both levels. Since we can currently only reliably test the t_display rate, how can we create a definition of stutter that makes sense and that can be applied across multiple games and platforms?
We define a single frame variance as the difference between the current frame time and the previous frame time – how consistent the two frames presented to the gamer. However, as I found in my testing plotting the value of this frame variance is nearly a perfect match to the data presented by the minimum FPS (PER) file created by FCAT. To be more specific, stutter is only perceived when there is a break from the previous animation frame rates.
Our current running theory for a stutter evaluation is this: find the current frame time variance by comparing the current frame time to the running average of the frame times of the previous 20 frames. Then, by sorting these frame times and plotting them in a percentile form we can get an interesting look at potential stutter. Comparing the frame times to a running average rather than just to the previous frame should prevent potential problems from legitimate performance peaks or valleys found when moving from a highly compute intensive scene to a lower one.
While we are still trying to figure out if this is the best way to visualize stutter in a game, we have seen enough evidence in our game play testing and by comparing the above graphic to other data generated through our Frame rating system to be reasonably confident in our assertions. So much in fact that I am going to going this data the PCPER ISU, which beer fans will appreciate the acronym of International Stutter Units.
To compare these results you want to see a line that is as close the 0ms mark as possible indicating very little frame rate variance when compared to a running average of previous frames. There will be some inevitable incline as we reach the 90+ percentile but that is expected with any game play sequence that varies from scene to scene. What we do not want to see is a sharper line up that would indicate higher frame variance (ISU) and could be an indication that the game sees microstuttering and hitching problems.
Where are the single-slot
Where are the single-slot cards? I know a lot of gamers won’t want a single slot cooler due to the increased amount of noise they inevitably produce, but for those of us with different needs (i.e. GPGPU work, coin mining, folding), stacking a ton of cards into a densely-populated motherboard would be ideal.
Galaxy might be making what
Galaxy might be making what you are looking for: http://www.galaxytech.com/__EN_GB__/Product2/ProductDetail?proID=517&isStop=0&isPack=False&isPow=False
I’m just wondering what
I’m just wondering what happened with the 750 Ti contest. It’s been nearly a week since it ended, will you guys reveal the winners soon?
The card linked still
The card linked still requires two slots as the cooler sits higher than one. I really don’t see how this is a “slim” model. They should have spread the cooler out with a larger fan and made it use 1.5x slots; that would use two slots but have a gap for air.
I’m not even sure if cards that only use 1x slots would work for MULTIPLE cards well. You’re likely better off using HALF the number of 2x slot cards.
put automatic captions on at
put automatic captions on at the start of the video and this happened http://imgur.com/40iuSEA
seems accurate for our videos
seems accurate for our videos
I secretly whisper that into
I secretly whisper that into the mic at the beginning of every video. 🙂
Thanks for the review, guys.
Thanks for the review, guys. I’ve been keeping my eye on these early Maxwell reviews. Perhaps a 750ti build for a non-1080p gaming rig, or a friend who may not need Ultra settings for every game. Hopefully when more Maxwell parts are released the miners won’t scoop them all up.
http://www.cryptocoinsnews.co
http://www.cryptocoinsnews.com/category/news/
the above sight has good info for cryptocurrency news
The most important thing for me is that the new asics for litecoin mining are being delivered in July.
all this really means is that pretty soon GPU mining is going to die out soon.
I am happy to have sold off my CF’d 7870 tahiti LE and 7950 twin fzr for a profit. I am without any gaming ability for now but i will buy back in at a low point again soon.
as a reference to when buying was good I had picked up my tahiti le for $215 about 7 months ago and the 7950 for $205 a couple of months after and I sold them both for $550. I needed the cash and am happy for the first time in my life I made a profit off of used hardware but damn do I miss my gaming rig.
Can’t wait till the EVGA FTW
Can’t wait till the EVGA FTW model drops below$150. Maybe a 4th of July sale?
Thinking of updating my
Thinking of updating my beater system. How much of a performance gain is it compared to a 7770 Ghz edition @ 1200p? Just playing Hawken, and Titan Fall.
I’ve been listening to your
I’ve been listening to your podcast. You folks at PC Perspective know about hardware. Recently started buying hardware for a new Gaming PC build and so far I’ve got these hardware parts:
GIGABYTE Z87-HD3 MOBO
Haswell Core i5 4570 processor
Asus VS278Q-P Monitor
So its a bit frustrating right now for me choosing a graphics card because as you might know, the vast selection in specs and budget concerns along with future proofing is confusing. Can the fine folks at PC Perspective recommend a well suited card ?
I do plan on playing TitanFall and later this year maybe upgrade the processor.
Thanks.
-Corona
How can you see no advantage
How can you see no advantage to the 6 pin pcie when the EVGA had a flatline stable overclock which technically put it ahead of the pny overall?
“Even though all three cards can overclock well above their stock speeds, and that equates to quite a bit over the reference speeds, clearly the EVGA card gives us the best result, followed closely by the PNY.”
Actually, the PNY outdoes all
Actually, the PNY outdoes all other cards, because whilst it is not shown in this video (yes I own one), the PNY overclocks to 1372 mhz core clock automatically, and the memory overclocks to 3005 mhz. No bias, just facts.