** = Old results marked were performed with the original BIOS & boost behaviour as published on 7/7.

Benchmarking Performance: Web Tests

While more the focus of low-end and small form factor systems, web-based benchmarks are notoriously difficult to standardize. Modern web browsers are frequently updated, with no recourse to disable those updates, and as such there is difficulty in keeping a common platform. The fast paced nature of browser development means that version numbers (and performance) can change from week to week. Despite this, web tests are often a good measure of user experience: a lot of what most office work is today revolves around web applications, particularly email and office apps, but also interfaces and development environments. Our web tests include some of the industry standard tests, as well as a few popular but older tests.

We have also included our legacy benchmarks in this section, representing a stack of older code for popular benchmarks.

All of our benchmark results can also be found in our benchmark engine, Bench.

WebXPRT 3: Modern Real-World Web Tasks, including AI

The company behind the XPRT test suites, Principled Technologies, has recently released the latest web-test, and rather than attach a year to the name have just called it ‘3’. This latest test (as we started the suite) has built upon and developed the ethos of previous tests: user interaction, office compute, graph generation, list sorting, HTML5, image manipulation, and even goes as far as some AI testing.

For our benchmark, we run the standard test which goes through the benchmark list seven times and provides a final result. We run this standard test four times, and take an average.

Users can access the WebXPRT test at http://principledtechnologies.com/benchmarkxprt/webxprt/

WebXPRT 3 (2018)

WebXPRT 2015: HTML5 and Javascript Web UX Testing

The older version of WebXPRT is the 2015 edition, which focuses on a slightly different set of web technologies and frameworks that are in use today. This is still a relevant test, especially for users interacting with not-the-latest web applications in the market, of which there are a lot. Web framework development is often very quick but with high turnover, meaning that frameworks are quickly developed, built-upon, used, and then developers move on to the next, and adjusting an application to a new framework is a difficult arduous task, especially with rapid development cycles. This leaves a lot of applications as ‘fixed-in-time’, and relevant to user experience for many years.

Similar to WebXPRT3, the main benchmark is a sectional run repeated seven times, with a final score. We repeat the whole thing four times, and average those final scores.

WebXPRT15

Speedometer 2: JavaScript Frameworks

Our newest web test is Speedometer 2, which is a accrued test over a series of javascript frameworks to do three simple things: built a list, enable each item in the list, and remove the list. All the frameworks implement the same visual cues, but obviously apply them from different coding angles.

Our test goes through the list of frameworks, and produces a final score indicative of ‘rpm’, one of the benchmarks internal metrics. We report this final score.

Speedometer 2

Google Octane 2.0: Core Web Compute

A popular web test for several years, but now no longer being updated, is Octane, developed by Google. Version 2.0 of the test performs the best part of two-dozen compute related tasks, such as regular expressions, cryptography, ray tracing, emulation, and Navier-Stokes physics calculations.

The test gives each sub-test a score and produces a geometric mean of the set as a final result. We run the full benchmark four times, and average the final results.

Google Octane 2.0

Mozilla Kraken 1.1: Core Web Compute

Even older than Octane is Kraken, this time developed by Mozilla. This is an older test that does similar computational mechanics, such as audio processing or image filtering. Kraken seems to produce a highly variable result depending on the browser version, as it is a test that is keenly optimized for.

The main benchmark runs through each of the sub-tests ten times and produces an average time to completion for each loop, given in milliseconds. We run the full benchmark four times and take an average of the time taken.

Mozilla Kraken 1.1

Web Tests Analysis

Overall, in the web tests, the new Ryzen 3900X and 3700X perform very well with both chips showcasing quite large improvements over the 2700X.

We’re seeing quite an interesting match-up against Intel’s 9700K here, which is leading all of the benchmarks. The reason for this is that SKU has SMT turned off. The singe-threaded performance advantage of this is that the CPU core no longer has to share the µOP cache structure between to different threads, and has the whole capacity dedicated to one thread. Web workloads in particular are amongst the most instruction pressure heavy workloads out there, and they benefit extremely from turning SMT off on modern cores.

Whilst we didn’t have the time yet to test the new 3900X and 3700X with SMT off, AMD’s core and op cache works the same in that it’s sharing the capacity amongst two threads, statically partitioning it. I’m pretty sure we’d see larger increases in the web benchmarks when turning off SMT as well, and we’ll be sure to revisit this particular point in the future.

SPEC2006 & 2017: Industry Standard - ST Performance & IPC Benchmarking Performance: CPU System Tests
Comments Locked

447 Comments

View All Comments

  • Mugur - Monday, July 8, 2019 - link

    You don't know what boost means, then... All cores overclock has nothing to do with boost.
  • Xyler94 - Monday, July 8, 2019 - link

    Now I know you're an idiot. That's single core boost, not all core. Intel doesn't even state all core boost... except on a single product, the 9900KS, which is a last ditch effort to be like "Hey guys, we can hit 5ghz all core! don't look at the Ryzen Chips... please!"

    FYI, AMD hit 5ghz all core before Intel did, with the terrible FX9590 or something like that. It was not a good CPU.
  • Tkan215 - Monday, July 8, 2019 - link

    this mean AMD can have great clock boost easily with time if intel can go from 4.0 to 5.0 ghz wall . Amd most likely can in the future
  • sor - Sunday, July 7, 2019 - link

    The gaming benchmarks are mostly flat, AMD and Intel within a 1-2% margin of error.

    If you look at the one big win for Intel, do you have a 712hz monitor that AMD just can’t keep up with at a paltry 655fps?
  • Korguz - Sunday, July 7, 2019 - link

    Maxiking still faster by 5%, and probably costing MORE for that 5%.. no thanks... seems intel is also dreaming about 5 ghz. you are criticizing amd for doing something they havent really been able to do in years.. so go by intel cpus, and pay a lot more....
  • Mahigan - Sunday, July 7, 2019 - link

    Wow.. you're angry. I think you take this far too seriously.
  • wilsonkf - Sunday, July 7, 2019 - link

    Are the tests re-run on Intel CPUs? 9900K seems to be losing more ground to 9700k than when they were launched. Is it the effect of patches on Intel HT CPUs?
  • RSAUser - Monday, July 8, 2019 - link

    Comment above Anand tech states no zombie mitigation, plus not 1903 which forces those patches to be enabled.
  • Meteor2 - Sunday, July 14, 2019 - link

    Might be related to the Spectre patches. Can't remember the timing between those and the 9000 series.
  • spaceship9876 - Sunday, July 7, 2019 - link

    I was hoping that you would clock the 2700x, 3700x and intel chip with the same manual clock speeds so that we can see a real IPC comparison between zen+, zen2 and intel.

Log in

Don't have an account? Sign up now