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Video: Programmer shows it’s possible to run a Minecraft server on a Canon EOS SL2 (200D) DSLR

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Video: Programmer shows it’s possible to run a Minecraft server on a Canon EOS SL2 (200D) DSLR

We’ve already seen how DOOM can be played on a Kodak digital camera from 1998. It appears though that’s not the only gaming software that can be played on a digital camera. In a recent YouTube video, a programmer that goes under the pseudonym Turtius shows it’s possible to run a Minecraft server on a Canon EOS SL2 (200D) with a clever bit of reverse engineering.

The project started as a means of learning to reverse engineer the networking processor Canon uses in its EOS SL2 (200D). After Turtius managed to reverse engineer the network module, he was able to install avrcraft, a Minecraft server optimized to run on 8-bit devices, with the help of the forked version of the popular Canon software add-on Magic Lantern. More specifically, he was able to use Magic Lantern, which doesn’t even offer official support for the EOS SL2 (200D), to access code execution on the camera’s CPU, which he was, in turn, able to use to install the server.

A screenshot from the above video showing the Minecraft server code being executed as text overlaid atop the live view display of the EOS SL2 (200D).

In the 95-second video, Turtius shows the Minecraft server booting up on the back of the camera (the server is seen as the overlaid text) as its live view display shows his monitor in the background running the Minecraft game on their Linux Mint 20.1 PC. The perspective can be a bit confusing, but it was done to show that the camera can still be at least somewhat functional while running the server.

That said, it’s not always functional. Turtius says the camera can’t always take photos or videos while running the server and it often crashes the camera. Also, the server is extremely limited in functionality, as no world generation is possible.

It’s a rather primitive Minecraft server, but it is being powered by a camera.

You can find all of Turtius’ source code on GitHub, but you will need an EOS SL2 (200D) and the willingness to part with it if this bricks your camera. Turtius issues the following disclaimer, as this project isn’t for the faint of heart:

‘I don’t recommend running this without knowing what you’re doing as this could destroy your camera. I am not responsible if you attempt this and your camera breaks, try this at your own risk.’

We’ll repeat: Proceed with caution, unless you don’t mind your DSLR becoming a paperweight. If you do manage to get it running though, definitely send us a video and we’ll toss it in this article, too.

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  1. Pingback: Canon launches €16,000 grant for documentary filmmakers and female photojournalists | godsownmedia

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Pentax K-1 and K-1 II firmware updates include astrophotography features (depending on where you live)

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Pentax K-1 and K-1 II firmware updates include astrophotography features (depending on where you live)


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Yesterday, Ricoh quietly released firmware 2.50 for its Pentax K-1 and K-1 II DSLRs. However, the features you can expect to gain from this update may depend on your geography.

Ricoh’s English-language firmware pages for the K-1 and K-1 II state that firmware 2.50 delivers “Improved stability for general performance.”

However, astute Pentax users noted that Ricoh’s Japanese-language firmware pages (translation) indicate that the update also includes a limited feature called “Astronomical Photo Assist,” a collection of three new features designed for astrophotography: Star AF, remote control focus fine adjustment, and astronomical image processing.

Star AF is intended to automate focusing on stars when using autofocus lenses. Rather than manually focusing on a bright star and changing your composition, it promises to let you compose your shot and let the camera focus.

Remote control fine adjustment allows users to adjust focus without touching the lens and requires Pentax’s optional O-RC1 remote. Astronomical image processing will enable users to make in-camera adjustments to astrophotography images, including shading correction, fogging correction, background darkness, star brightness, celestial clarity, and fringe correction.

Astronomical image processing on the K-1 and K-1 II will enable users to make in-camera adjustments to astrophotography images, including shading correction, fogging correction, background darkness, star brightness, celestial clarity, and fringe correction.

According to Ricoh, Astronomical Photo Assist is a premium feature that must be purchased and costs ¥11,000 for an activation key (about $70 at current exchange rates).

Although these astrophotography features appear to be Japan-only for now, a Ricoh representative tells us, “Ricoh Imaging Americas confirmed that the premium firmware features for the PENTAX K-1 and PENTAX K-1 Mark II will eventually be available to US customers.”

Firmware update 2.50 for both the K-1 and K-1 II is available for download from Ricoh’s website.



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On this day 2017: Nikon launches D850

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On this day 2017: Nikon launches D850


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As part of our twenty fifth anniversary, we’re looking back at some of the most significant cameras launched and reviewed during that period. Today’s pick was launched seven years ago today* and yet we’re only quite recently stepping out of its shadow.

The Nikon D850 is likely to be remembered as the high watermark of DSLR technology. We may yet still see impressive developments from Ricoh in the future (we’d love to see a significantly upgraded Pentax K-1 III), but the D850 was perhaps the green flash as the sun set on the DSLR as the dominant technology in the market.

Click here to read our Nikon D850 review

Why do we think it was such a big deal? Because it got just about everything right. Its 45MP sensor brought dual conversion gain to high pixel count sensors, meaning excellent dynamic range at base ISO and lower noise at high ISOs. Its autofocus system was one of the best we’ve ever seen on a DSLR: easy to use and highly dependable, with a good level of coverage. And then there was a body and user interface honed by years of iterative refinement, that made it easy to get the most out of the camera.

None of this is meant as a slight towards the other late-period DSLRs but the likes of Canon’s EOS 5DS and 5DSR didn’t present quite such a complete package of AF tracking, daylight DR and low-light quality as the Nikon did. With its ability to shoot at up to 9fps (if you used the optional battery grip), the D850 started to chip away at the idea that high megapixel cameras were specialized landscape and studio tools that would struggle with movement or less-than-perfect lighting. And that’s without even considering its 4K video capabilities.

In the seven years since the D850 was launched, mirrorless cameras have eclipsed most areas in which DSLRs once held the advantage. For example, the Z8 can shoot faster, autofocus more with more accuracy and precision, across a wider area of the frame and do so while shooting at much faster rates.

But, even though it outshines the D850 in most regards, the Z8 is still based around what we believe is a (significant) evolution of the same sensor, and its reputation still looms large enough for Nikon to explicitly market the Z8 as its “true successor.”

Nikon D850 sample gallery

Sample gallery
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*Actually seven years ago yesterday: we had to delay this article for a day to focus on the publishing the Z6III studio scene: the latest cameras taking precedence over our anniversary content.



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Nikon Z6III added to studio scene, making image quality clear

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Nikon Z6III added to studio scene, making image quality clear


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Photo: Richard Butler

We’ve just received a production Nikon Z6III and took it into our studio immediately to get a sense for how the sensor really performs.

Dynamic range tests have already been conducted, but these only give a limited insight into the image quality as a whole. As expected, our Exposure Latitude test – which mimics the effect of reducing exposure to capture a bright sunrise or sunset, then making use of the deep shadows – shows a difference if you use the very deepest shadows, just as the numerical DR tests imply.

Likewise, our ISO Invariance test shows there’s more of a benefit to be had from applying more amplification by raising the ISO setting to overcome the read noise, than there was in the Z6 II. This means there’s a bigger improvement when you move up to the higher gain step of the dual conversion gain sensor but, as with the Z6 II, little more to be gained beyond that.

These are pushing at the extreme of the sensor’s performance though. For most everyday photography, you don’t use the deepest shadows of the Raw files, so differences in read noise between sensors don’t play much of a role. In most of the tones of an image, sensor size plays a huge role, along with any (pretty rare) differences in light capturing efficiency.

Image Comparison
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As expected, the standard exposures look identical to those of the Z6 II. There are similar (or better) levels of detail at low ISO, in both JPEG and Raw. At higher ISO, the Z6III still looks essentially the same as the Z6II. Its fractionally higher level of read noise finally comes back to have an impact at very, very high ISO settings.

Overall, then, there is a read noise price to be paid for the camera’s faster sensor, in a way that slightly blunts the ultimate flexibility of the Raw files at low ISO and that results in fractionally more noise at ultra-high ISOs. But we suspect most people will more than happily pay this small price in return for a big boost in performance.



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