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  • ESA unveils most detailed 3D star map ever captured

    The European Space Agency (ESA) Gaia mission has released a new star map of the Milky Way, giving us the most detailed view of our galaxy to date.

    Launched in December 2013 from Kourou, French Guiana, the mission of the Gaia space observatory is to create the largest and most detailed 3D space catalog in existence. To do this, it uses what the ESA calls the ‘largest digital camera in the Solar System,’ a one-billion-pixel camera made up of more than 200 CCD sensors.

    Gaia’s sky in colour. Image provided by ESA

    This new set of data, released on April 25th, details the location and movement of more than 1.3 billion stars. For context, the first set of data released by the ESA in May 2016 contained similar information of a mere two million stars. It’s not only the position and movement of the stars either.

    As well as positions, the data include brightness information of all surveyed stars and colour measurements of nearly all, plus information on how the brightness and colour of half a million variable stars change over time. It also contains the velocities along the line of sight of a subset of seven million stars, the surface temperatures of about a hundred million and the effect of interstellar dust on 87 million.

    The new information will be used for many years to come by scientists all over the world. “Gaia will greatly advance our understanding of the Universe on all cosmic scales,” says Timo Prusti, Gaia project scientist at ESA, in the announcement blog post. “Even in the neighbourhood of the Sun, which is the region we thought we understood best, Gaia is revealing new and exciting features.”

    The ESA expects many more datasets to be released in future years, with the full and final catalogue set to be published sometime in the 2020s. Originally, Gaia was only set to operate until mid-2019, but the ESA has already approved an extension to its mission that should see it functioning well into 2020.

    You can access the data from Gaia’s first release on the ESA’s archive site and view a collection of 360-degree videos in a dedicated VR page.

    Articles: Digital Photography Review (dpreview.com)

  • Facebook is using Instagram photos to train its image recognition AI

    At its F8 developers conference Facebook not only revealed a number of new Instagram features, the company also talked about how it is using the billions of images on Instagram to train the world’s most accurate image recognition systems.

    Training deep learning models for image and object recognition is typically a very labor-intensive task, as each training image has to be looked at and labeled by human workers. This is a serious limitation to the size of training image databases; however, Facebook has found a way to reduce human supervision in the training process by using images that are already labeled… with Instagram hashtags.

    Its researchers used 3.5 billion Instagram images with approximately 17,000 hashtags to train deep learning models and the results have been encouraging.

    A computer vision system that had been trained with one billion images and 1,500 hashtags, achieved 85.4 percent accuracy on the ImageNet benchmarking tool, outperforming the previous leading system by 2.3 percent.

    It will be important to manage the disadvantages of less curated labels but the Facebook research shows that less supervised training of image recognition systems could be a step into the right direction, allowing for the use of much larger and databases and therefore improved image and object recognition and classification.

    Translation: finding that photo you never tagged that’s buried miles deep in your archive might soon get a whole lot easier.

    Articles: Digital Photography Review (dpreview.com)

  • Adobe slashes Creative Cloud school pricing to just $5 per user per year

    Credit: Adobe

    Earlier today, Adobe announced new Creative Cloud educational pricing for K-12 schools (meaning primary and secondary schools, for those outside the US), slashing the price for individual schools and school districts to just $ 5 per license per year with a minimum purchase of 500 licenses for a school, or 2,500 licenses for a school district. Additional licenses can be purchased for $ 50 per 250.

    Adobe says the move “underscores Adobe’s commitment to providing students and teachers with the world’s leading digital creative tools and skills,” and is the company’s way of “nurturing creativity and creative problem solving,” both of which, research shows, will be key skills in tomorrow’s job market.

    The plans give students access to all of the Creative Cloud applications and 2GB of cloud storage each. But best of all, students won’t have to be in the classroom to use the apps—named user licensing allows students to log in to and install Creative Cloud applications at home or on their mobile devices as well.

    “Making Creative Cloud available at $ 4.99 per year, per license—with access in schools and at home—is going to be a game changer, providing students and teachers access to apps that will unlock their inherent creativity in new and exciting ways,” says Adobe’s Mala Sharma, VP and GM of Creative Cloud Product, Marketing, and Community. “Making Creative Cloud affordable is just one of many actions we’re taking to reduce the barriers to teaching these skills in today’s classrooms.”

    There is one thing Sharma forgot to mention: providing students with access to the Adobe CC suite starting as early as Kindergarten and Elementary School will also create a whole new generation of Adobe addicts who complain about the subscription costs but are willing to keep paying them anyway… welcome to the club kids.

    For more information on the new pricing and Adobe’s other Creative Cloud offers for educators, students, K-12 schools and beyond, click here.

    Press Release

    Adobe Empowers Educators with New Creative Cloud Offering for K-12

    A new offer on Creative Cloud exclusively for K-12 schools and districts underscores Adobe’s commitment to providing students and teachers with the world’s leading digital creative tools and skills

    SAN JOSE, Calif. — May 2, 2018 Adobe announced today that, beginning May 15, 2018, Adobe Creative Cloud will be available to K-12 schools for $ 4.99 per license, per year, with a minimum purchase quantity of 500 user licenses for a single school, or 2,500 licenses for a school district. This offer includes unprecedented access for educators and students to all Creative Cloud applications at school, at home and on any device. Adobe is committed to delivering the best tools and resources for nurturing creativity and creative problem-solving skills into the hands of educators and students. This new pricing and licensing, as well as new professional development offerings and lesson plans focused on Adobe Spark and Creative Cloud (details below), and recent release of Spark for Education with premium features free of charge for K-12 students are prime examples of that commitment.

    “Strengthening the ‘A’ in STEAM, and making art and creativity core to the student learning experience is Adobe’s responsibility. Digital storytelling is a critical skill for all students, and enabling them to start creating videos, editing photos and publishing websites by grade 6 and earlier is key,” said Mala Sharma, VP & GM of Creative Cloud Product, Marketing and Community, Adobe. “Making Creative Cloud available at $ 4.99 per year, per license—with access in schools and at home—is going to be a game changer, providing students and teachers access to apps that will unlock their inherent creativity in new and exciting ways. Making Creative Cloud affordable is just one of many actions we’re taking to reduce the barriers to teaching these skills in today’s classrooms.”

    Creative Cloud for K-12 Lowers Access and Cost Barriers Associated with Teaching Creativity and Creative Problem Solving to Students

    A recent study conducted by Adobe, and several other third-party studies, show that jobs of the future will demand both creativity and creative problem-solving skills – two different capabilities that nearly all educators recognize as being essential for students to learn in school. However, research also shows that the biggest barriers educators currently face to nurturing these skills are the lack of access to necessary tools and technologies, and the costs associated with new technologies.

    As part of Adobe’s commitment to providing educators with access to the tools and support they need to address these barriers, affordable access to Creative Cloud will encourage educators to develop new projects and lesson plans that bring out the creative skills in their students. Students will have access to all Creative Cloud applications, many Creative Cloud services and 2GB of storage. Adobe has also introduced named user licensing, which allows students to log into their accounts and work on Creative Cloud projects from any location on any device, be it their homes, the library or on the go. These licenses can be deployed by K-12 schools in a way that is consistent with data privacy laws under COPPA—the Children’s Online Privacy Protection Act.

    New K-12 Professional Development Offerings Make Adobe Spark a Great Project Tool in Every Class

    Adobe is partnering with educators who use Adobe Spark in their classrooms, and will be sponsoring over 100 Edcamps taking place across the United States over the summer until back-to-school 2018. Edcamp leads educator-driven professional development grouped sessions, where educators drive and determine the topics of conversation. In addition, Adobe will be sending Spark experts to a select number of Edcamps over the summer. For more details on Adobe Spark sponsored Edcamps, please visit https://www.edcamp.org/edcamp-locations .

    Educators can find new free professional development courses, lesson plans and a complete guide to using Creative Cloud in the classroom on the Education Exchange, Adobe’s free platform where educators can access courses taught by their peers and share teaching materials and curriculum.

    Availability and Pricing

    This offering is available for purchase starting on May 15, 2018 and will initially be available in the US, Europe, Japan, New Zealand, and India. In the US, school sites are eligible for the offer starting at $ 2,495 per year, which includes 500 user licenses for students and teachers ($ 4.99 per user license), and school districts are eligible for the offer starting at $ 12,475 per year, which includes 2,500 user licenses. Also in the US, additional purchases can be made in increments of 50 user licenses starting at $ 250. Pricing and minimums vary by region.

    For more information and to purchase Creative Cloud for their K-12 classrooms, K-12 schools and districts can contact their Authorized Adobe Resellers, and for general information, please visit www.adobe.com/education/k12.html.

    Articles: Digital Photography Review (dpreview.com)

  • Video: How to pack for a two-month photo expedition

    Dave Morrow—a well-respected outdoor photographer from outside Seattle, Washington—has shared a behind-the-scenes video detailing the gear he’s taken on his latest photo expedition. The 20-minute video provides an insightful overview of the gear he packs with him in his vehicle and in his backpack during his two-month trip through Oregon, Wyoming, Utah, Idaho and California.

    Per his rules to filming the videos for his ‘The Landscape Photography Journals’ series, the video was shot with a GoPro and doesn’t feature any special editing or filming technique. It’s barebones and straight to the point. And that’s not a bad thing…

    Morrow does a great job explaining the reason he’s taking the gear and the purpose it serves in his particular use-cases. He doesn’t get too caught up in the specifics of everything.

    You might not be as hardcore of an outdoor photographer as Morrow, but it’s a great look at the gear he uses and his reason for using it. Take mental notes along the way and maybe you’ll find something useful for your next trip, whether that’s a hike through your backyard or a two-month backcountry adventure like Morrow’s.

    Something else that stuck out was Morrow’s approach to gear. As shown in the video, Morrow has three basic rules for buying gear. If these three rules can’t be followed, he won’t buy the equipment:

    1. Buy everything in cash; no loans, no debt
    2. Don’t accept ‘free gear’ from sponsors or partners. Nothing is free. Devote all time to exploring & photography
    3. Don’t by anything until it has been 100% required on multiple trips. Less gear, more time for travel and photography

    Let us know what you think of the tips down in the comments, and then head over to Morrow’s YouTube channel for more videos like this.

    Articles: Digital Photography Review (dpreview.com)

  • SLC-1L-03: Need Light With More Edge? Aim It Away From Your Subject.

    The two photos above have the same light source, same light location and same white background. The only difference in the second photo is that the light has been aimed differently. Pointing your light away from your subject—and using the edge of the beam—is a quick way to sculpt much more interesting light on a head shot or portrait.

    But how far away do you need to aim it? Further than you'd think. And finding the nice edge to your light is definitely a game of inches.

    Here's how to do it.Read more »
    Strobist

  • How to Control Your Background Tones by Manipulating Light Fall-Off

    In this article, I’ll show you how to control your background by manipulating light fall-off.

    When using studio lighting, one of the most frustrating things to deal with can be backgrounds. Sure, if you have space, time and the money, you can just stock up on seamless backgrounds covering white, black and everything in between. But if you are on a budget, or are already taxing the limits of your storage space, that’s often not a viable option.

    The good news is that it’s entirely possible to take a white or grey background, whether it’s a wall or a seamless backdrop, and manipulate your light so that the background appears black or any shade of grey you can imagine.

    The method discussed in this article is quite easy.

    How to Control Your Background by Manipulating Light Fall-Off - portrait with black background

    Understanding how the rate of fall-off effects your lighting will grant you great control over how your background appears in your photos.

    Move the light

    To control your background, all that you have to do is move your light. It’s counterintuitive though. To get a darker background, you will move the light closer to your subject. For a lighter background, you would move the light further away.

    This approach has the effect of changing the background; however, it also completely alters the quality of light falling on your subject.

    For this demonstration, I used a small softbox (around 3×4′) placed directly in front of and above the subject. In the sequence of images below, you can clearly see that the light source is simply moved backward in increments of two feet. Also, you’ll see that the softbox was angled upwards slightly as it moves back so that it points toward the subject and not the floor.

    How to Control Your Background by Manipulating Light Fall-Off

    The light source is two feet away from the subject and angled down at forty-five degrees.

    How to Control Your Background by Manipulating Light Fall-Off

    At four feet, the light had to be angled upwards slightly so that it remained pointed at the subject.

    How to Control Your Background by Manipulating Light Fall-Off

    At six feet, the light on the subject gets noticeably harder, but the background appears as it is in life (its actual shade).

    How to Control Your Background by Manipulating Light Fall-Off

    The light source as seen 10 feet from the subject.

    In terms of the background, the way this works is through light fall-off. As the light source gets closer to your subject, the rate of light fall-off increases.

    In the simplest terms possible, this means that as you move your light closer to your correctly exposed subject (remember to recalculate your exposure everytime you move your light), the light reaching your background loses intensity at a higher rate, making the background appear darker.

    In this progression (starting left to right) the light begins two feet away from the subject and is moved back in two-foot increments until it is 10 feet away in the right-hand frame.

    For these examples, I used a middle grey background to better illustrate the dramatic changes in tonality as the light is moved.

    In the first image on the left, the light is two feet away from the subject, rendering the grey backdrop nearly black. At four feet away, in the second image, the background gets noticeably lighter. By the fifth image, at 10 feet away, the grey tone of the background almost matches the subject’s light grey shirt.

    Because the light was moving away from the subject in each frame, the exposure had to be metered for each change. The image on the left was shot at f/11, while the one on the right was shot at f/2.8, which is a total of four stops of difference in exposure.

    Left: soft light with the light source two feet away. Right: hard light then it’s 10 feet away. Here you can clearly see the difference in the quality of light. Pay close attention to the tonal transition between the shadow and highlight areas of both images.

    It’s important to note that moving the light closer, or further away, will also have a dramatic effect on how the light appears on your subject. As the quality of light is altered on the background, it also changes on your subject. Bringing it in close will change both the softness and intensity of the light on your subject, making it both brighter in terms of exposure and softer (quality of light is directly related to the size of the light source and distance from the subject).

    Moving the light away from your subject will result in a lighter backdrop. Aside from that, this will also result in harder light on your subject. Just be aware that a lot of subjects won’t suit being lit with hard light and be careful with how far you go, and you should be fine.

    Move the light too far back, however, and you may as well be using a small flash from a closer distance. For example, the softbox used here from 10 feet away is only barely distinguishable from a bare speedlight at a closer distance.

    The end

    That’s it. This technique is easy to put into practice even if you don’t yet understand the technicalities of the Inverse Square Law that makes it work. It isn’t foolproof, however, and you may want to have other tricks up your sleeve if you’re in a position where you don’t have enough space to work with.

    Background lights and flags can both go a long way to helping you solve exposing your background the way you want as well. This method is just one other option to add to your skillset, hopefully bringing you one step closer to getting things right in camera.

    The post How to Control Your Background Tones by Manipulating Light Fall-Off appeared first on Digital Photography School.


    Digital Photography School

  • Samsung’s PRO Endurance microSD cards can handle 43,800 hours of continuous recording

    Samsung Electronics has unveiled a new line of microSDHC/SDXC cards called PRO Endurance. The lineup features 32GB ($ 30), 64GB ($ 50), and 128GB ($ 100) options, each with up to 100MB/s read speeds and 30MB/s write speeds. The South Korean company says the new lineup features “industry-leading endurance” capable of handling up to 43,800 hours of continuous video recording.

    Samsung created the PRO Endurance line for video-centric applications, such as security, dash, and body cameras, though they can also be used with drones and other video camera products. In addition to its recording endurance, the PRO Endurance cards are water, temperature, x-ray, and magnetic-proof. Overall, Samsung explains this lineup has 25 times the endurance of its past speed-focused cards.

    The PRO Endurance microSDHC/SDXC cards are available from Samsung now.

    Press Release

    Samsung Electronics Redefines High Endurance Memory Card Market with New PRO Endurance Card

    Built for intensive video monitoring applications, PRO Endurance delivers industry-best 43,800 hours of continuous video recording in 128GB capacity

    Samsung Electronics introduced today the Samsung PRO Endurance microSDHC™/microSDXC™ card, which offers industry-leading endurance and up to 43,8001 hours of continuous video recording2. Designed for consumers and B2B channel customers who use intensive video monitoring applications such as surveillance and security cameras, body cameras and dash cams, the PRO Endurance makes continuous video monitoring fast and stable. It delivers read speeds of up to 100 MB/s and provides FHD recording and 4K support via write speeds of up to 30 MB/s3.

    “Consumers want to feel assured with their video surveillance solutions, and the need for longer-lasting, higher performing memory cards that can withstand extreme conditions and capture critical moments is at an all-time high,” said Un-Soo Kim, senior vice president of Brand Product Marketing, Memory Business at Samsung Electronics. “Samsung is proud to again advance what is possible in memory card technology with the introduction of the PRO Endurance, which offers security-minded consumers the industry’s highest levels of endurance and optimized read/write speeds for immediate access to critical surveillance content.”

    The Samsung PRO Endurance offers 25 times higher endurance4 than previous speed-focused cards5. It also comes with an industry-leading limited warranty up to five years6, and sets a new standard for capacity with its 128GB7 of storage.

    The Samsung PRO Endurance is built to withstand harsh environments and features Samsung’s 4-Proof8 protection, making it water, temperature, magnetic and x-ray-proof. In times of emergencies, accidents or crisis, the PRO Endurance is the reliable solution to capture the crucial moments without the risk of compromised or lost data.

    The PRO Endurance memory cards are now available for purchase with manufacturer’s suggested retail prices starting at $ 89.99 for 128GB, $ 44.99 for 64GB and $ 24.99 for 32GB. For more information, please visit www.samsung.com/memorycard.

    Key Specifications for PRO Endurance

    Category Samsung PRO Endurance
    Capacity 128GB 64GB 32GB
    FHD Recording 43,800 hours 26,280 hours 17,520 hours
    Form Factor microSDHC™ and microSDXC™
    Read/Write Speeds Sequential read speeds up to 100MB/s,
    Sequential write speeds up to 30MB/s
    Bus Speed Mode UHS-I
    4-Proof Features Waterproof (IEC 60529, IPX7), Temperature proof, X-ray proof, Magnetic proof
    Warranty Five (5) Year Limited Warranty Three (3) Year Limited Warranty Two (2) Year Limited Warranty
    Operating Temperatures From -25ºC to 85ºC9
    1 Varies by capacity; 64GB model up to 26,280 hours, 32GB model up to 17,520 hours.
    2 Based on Full HD (1920×1080) video content recorded at 26 Mbps video support.
    3 Performance results are based on internal testing conditions. Read/write speeds may vary by host device.
    4 Based on continuous recording capability.
    5 Based on internal tests comparing different Samsung cards.
    6 Varies by capacity; 64GB model up to 3-years, 32GB model up to 2-years. Warranty for SD adapter is limited to one year. For specific details, please visit www.samsung.com/support.
    7 Actual usable storage capacity is measured with SD Formatter 3.1 tool with FAT file system and may be less than labeled capacity.
    8 Waterproof: IEC 60529, IPX7; Temperature: from -25ºC to 85ºC (-13°F to 185°F) operating; magnetic: up to 15,000 gauss (equal to MRI); X-rays: up to 50 Roentgen (equal to airport X-ray machines).
    9 Withstands -25°C to 85°C (-13°F to 185°F) operating, -40°C to 85°C (-40°F to 185°F) non-operating.

    Articles: Digital Photography Review (dpreview.com)

  • LG unveils G7 ThinQ smartphone with super-wide-angle lens

    After a few months’ delay (the reasons of which are not entirely clear) LG is the last of the big mobile manufacturers to finally unveil its new 2018 top-end smartphone. The new model is called the G7 ThinQ, and comes with most of the photography features and characteristics you would expect from a current flagship device.

    An almost bezel-less 6.1-inch LCD display with a resolution of 1440 x 3120 pixels is combined with Qualcomm’s latest top-end Snapdragon 845 chipset, and embedded into an IP68 dust- and water-resistant body. There is also a 3.5mm headphone jack with a quad DAC and a microSD slot for memory expansion. The device is available with 6GB RAM and 128GB of storage or 4GB RAM and 64GB storage.

    In the camera department, LG is sticking to its strategy of differentiating itself from most competitors by offering a super-wide-angle lens in the dual-camera setup. Both sensors now offer a higher 16MP pixel count, compared to the G6’s 13MP, with the main camera boasting a 71-degree field of view, fast F1.6 lens, optical image stabilization, and an autofocus system that uses both phase detection and laser.

    The super-wide-angle has to make do with a slower F1.9 aperture and without OIS. It also only comes with a fixed focus. Like on the V30S, camera operation is enhanced by LG’s artificial intelligence technology that can detect objects and scenes and auto-adjust camera settings accordingly. Additionally, there is a “smart pixel-binning” mode for lower noise and better exposure in low-light shots.

    Finally, we also get a “fake-bokeh” portrait mode on an LG flagship, which can artificially blur the background in portrait shots taken with both main camera and super-wide-angle.

    LG is late to the game for 2018, and we’ll have to see if consumers are interested in the brand’s super-wide-angle camera concept when most other manufacturers bet on telephoto lenses in their dual-cam setups. In any case, it’s good to have one more option in the high-end bracket of the Android smartphone market.

    Articles: Digital Photography Review (dpreview.com)

  • Are You Making These Five Food Photography Mistakes?

    There are some common mistakes photographers make when starting to shoot food. Are you guilty of these five food photography mistakes?

    There is a saying that if you can shoot food, you can shoot anything. Some would disagree with this, as every genre of photography has its own challenges. However, food can be very difficult to shoot purely for the reason that it dies in front of the camera so quickly.

    One minute your towering stack of pancakes causes your salivary glands to go into overdrive, the next minute you wouldn’t feed the pancakes to the dog. Despite what many an Instagram account would have us believe, a lot of food is not really that good-looking. It’s up to the photographer and usually a food stylist and a whole team of people to create the drool-worthy images you see in cookbooks and magazines.

    peach tarts - Are You Making These Five Food Photography Mistakes?

    Great food photography is about planning and considering all the details up front. It is also a process of constant problem-solving. Thinking through the key aspects that make up a great food photograph before picking up your camera will go a long way towards helping you get the best results.

    #1 – Bad Light

    As with any form of photography, the most important principle is light. Without light, you’d have nothing. This is why photography is often referred to as “painting with light”. Whether you are using natural or artificial light, the approach you take with your lighting will make or break your photographs.

    Often what separates the professional food photographers from hobbyists is their keen understanding of the physics of light and how to manipulate it to get the effect they want. If a client wants you to shoot their orange juice product to look like it was taken early in the morning on a sunny day and you live in rainy London, you will have to know how to recreate that light.

    Are You Making These Five Food Photography Mistakes? - breakfast sandwich

    Lighting is not just about getting enough light onto your subject. As long as you have some light, you can get a decent shot with a longer exposure. Good lighting is also a matter of correct light.

    For example, a common issue is restaurant photography where the indoor lighting contaminates the scene, creating unwanted color casts, particularly in the highlights. This can be difficult to fix in post-processing but can be avoided by overpowering the ambient light with a flash system, such as a speedlite, or flagging (blocking) the top to keep the unwanted light from hitting your set.

    Are You Making These Five Food Photography Mistakes? - types of lighting

    #2 – Poor Composition

    Image composition is an art form in itself. Apart from light, it’s one of the most difficult aspects of food photography to master. It can take years for composition to become second nature to you. Going in-depth on this is beyond the scope of this article, but there are some things to be aware of that can help you improve your compositions right away.

    To start with, keep it minimal. Your main subject with a couple of supporting elements, like a prop and a square of linen is all you need. Use three to five elements in your composition. Using odd numbers while composing your scene will add more symmetry and balance than even numbers, which can create competition between the elements and divide the viewer’s attention.

    Are You Making These Five Food Photography Mistakes? - cinnamon buns

    Think about the textures in your scene. Adding texture in terms of your props or surfaces and backgrounds, or even supporting ingredients such as seasonings or garnishes can really elevate the simplest food image.

    Another tip is to keep your surfaces and background neutral. Bright colors will detract from the food and even cast unwanted tones onto the food.

    #3 – Incorrect Angle of View

    Before beginning to shoot, it’s crucial to decide on the best angle to shoot your food scene. The right choice will depend on your subject.

    Foods with several layers, like burgers or stacks of pancakes, look best when shot at eye level, so every element can be seen. On the other hand, flat foods like pizza and cookies look best shot from overhead or at 90 degrees, as this angle puts everything on an even plane and brings a graphic element to the subject.

    This is a great angle for tablescapes or other scenes where there are numerous elements that might not otherwise fit into the frame.

    Are You Making These Five Food Photography Mistakes? - pizza shot

    Another popular angle is forty-five degrees or three-quarters view. This angle works in many situations with many types of food. It works with most focal lengths and the main subject’s shape, height and texture are displayed.

    fettuccine with peas - Are You Making These Five Food Photography Mistakes?

    One angle I would rarely recommend is a low camera viewpoint, where the camera is aimed slightly upwards. You sometimes see this in burger advertisements, but it rarely works for most types of food subjects.

    #4 – Incorrect Focus

    When approaching a shoot, you also need to be aware of where the sharpest focus should land. Typically this will be more toward the front of the food. In addition, think about how much of that area should be in focus. This will influence the f-stop (aperture) you choose.

    I rarely shoot any lower (wider) than f/5.6 for my food compositions, as I find not enough of my subject will be in focus otherwise. When shooting food, the objective is to show off the food and make it look its best, which won’t happen if most of it is blurry.

    Once you have taken your shot (preferably with your camera tethered to your laptop) check your focus at 100% magnification. Make sure focus is where you want it and the depth-of-field is not too shallow.

    chia pudding_darina kopcok_DPS

    Also, calibrating your lens to your camera will ensure that you are not missing focus due to technical issues.

    #5 – Cropping Incorrectly

    The beauty of digital photography is that you can sometimes address issues that you have encountered during your shoot in post-processing. One example of this is using the crop overlay tools in Lightroom or Photoshop to finesse your compositions. However, image crop is a point that needs to be addressed when shooting.

    Common mistakes new food photographers make is shooting the main subject too close, to the point the viewer doesn’t understand what is being portrayed. Or the cropping is too tight to show the food in its best way.

    In the image below, the Indian-spiced prawns look much better when the scene is shot wider and includes a couple of elements that they’d be eaten with, like naan bread and chutney. The closer shot lacks movement and flow and is overall less appealing.

    indian prawns - Are You Making These Five Food Photography Mistakes?

    When shooting, try a couple of different crops and see which looks best. Also, a good tip is to shoot your scene wider than you want it to look in the final image so you can use the crop guides in your post-processing program of choice to improve your composition.

    croissants - Are You Making These Five Food Photography Mistakes?

    Hopefully, these tips will help you plan for your next food shoot. Let me know in the comments some of the challenges you’ve faced with your own food photography and how you’ve overcome them. What food photography mistakes have you made?

    The post Are You Making These Five Food Photography Mistakes? appeared first on Digital Photography School.


    Digital Photography School

  • Crystal clear: Inside Nikon’s Hikari Glass factory

    Inside Nikon’s Hikari Glass factory

    Located about 375 miles north of Tokyo in the Akita Prefecture, the Hikari Glass factory is a special place. Opened back in the 1970s, Hikari Glass has been a wholly owned subsidiary of Nikon since 2004. If you shoot with Nikon lenses, the chances are good that they started life right here – as raw powdered glass.

    The Akita Prefecture, home of Hikari Glass, lies around 375 miles north of Tokyo.

    Nikon invited us to visit Hikari Glass following the CP+ 2018 show in Yokohama, and along with our friends Dave Etchells and William Brawley of Imaging Resource, we were among the first journalists ever allowed inside the facility. During our visit we saw virtually the entire process of glass-making, from raw powder to finished glass ‘blanks’, ready for shaping and polishing in Nikon’s other facilities.

    Click through this slideshow for a detailed look – please note that some areas of certain images are blurred at Nikon’s request.

    Inside Nikon’s Hikari Glass factory

    Akita and the surrounding area is blanketed with snow for several months a year. We visited on a relatively mild day, but as you can probably tell from the ice buildup on this building, ‘mild’ is a relative term.

    Our tour guide, Akio Arai is the Corporate Vice President and Production General Manager of the Akita factory and has been with the company for 11 years. At present, almost all of the Hikari factory’s output goes to satisfying Nikon’s requirements for high-quality glass, but Mr Arai hopes that in future his facility will be in a position to supply even more glass to companies other than Nikon.

    Inside Nikon’s Hikari Glass factory

    This powder contains several different ingredients (the biggest portion being quartz, but the exact mix is secret) which are mixed, melted, and eventually turned into finished glass.

    The combining of the raw material happens in batches of around 500kg (~1100 lb) in a pair of very large mixers. The precision achieved in the mixing process is somewhere in the region of 1 part to 50,000. It’s vitally important that the mixture is exactly right, because Hikari is aiming for glass with a very specific refractive index.

    Inside Nikon’s Hikari Glass factory

    This tub of powder (roughly the size of a small hotel bathtub) is the raw material for Nikon’s famed ED glass, used in a great many of the company’s high-performance lenses. Hikari makes 125 different kinds of optical glass, including 20 types of ‘specialty glass’ for molded lens elements.

    Once the powder has been mixed, it is melted. There are two types of melting process, depending on the types of glass. The simpler of the two is called ‘direct melting’, and the more complex is called ‘pre-melting’ and ‘fine melting’. We watched the latter.

    Inside Nikon’s Hikari Glass factory

    The pre-melting process begins with the raw powder being heated inside a quartz or platinum crucible (depending on the exact type of glass), in a furnace at a temperature of more than 1000 degrees Celsius. The furnaces are on platforms raised several feet above the factory floor. The mixture is added to the crucibles by machines very gradually. If all the powder were dumped in at once, only the surface of the mixture would melt.

    With quartz crucibles, some of the quartz inevitably melts into the mixture. This is accounted for in the formula, but since they become thinner over time as the quartz melts, the crucibles have a limited lifespan – in some cases, this can be as short as two days. We weren’t allowed to show the crucibles in this article, but the ones we were shown were roughly the size of a small domestic water boiler.

    Once the glass is fully melted, a hole is opened into the bottom of the crucible to allow the molten glass to escape into a large tank of water, positioned underneath the furnace at floor level. That’s what you can see in the image above.

    Inside Nikon’s Hikari Glass factory

    As the glass continues to drain, eventually the water that it’s draining into becomes so hot that it starts to boil.

    The remainder of the heated glass is drained into the tank, and once everything is cooled down, workers will assess whether or not the crucible in the furnace can be used again, or needs to be retired. In the old days, glass used to be melted in clay crucibles, and for every 2,500 kilos of glass, only about 500 kilos was usable. The modern method is far less wasteful.

    A small water jet to the right of the stream of molten glass helps break the stream up into small droplets which cool to form what are called ‘frit’.

    Inside Nikon’s Hikari Glass factory

    And here is the frit – they look like little flakes of snow, but that’s where the similarity ends. In the pre-melting process, the frit aren’t meant to have exactly the exact refractive qualities of the finished glass – it’s still basically a raw material. And there’s some variation in the flakes of frit, too. Depending on where the glass was positioned inside the crucible, the makeup of each frit might be slightly different (i.e., it might contain more or less quartz, thanks to the melting of the crucibles during the process).

    Inside Nikon’s Hikari Glass factory

    The frit is mixed in these giant machines (it’s hard to get a sense of scale, but the fan on the far right is basically just a domestic room fan if that helps). If these look like modified and repurposed cement mixers, that’s because they are.

    One of the major modifications over a standard cement mixer is inside the drums, which are lined with natural rubber to prevent any metal particles from the mixer contaminating the glass.

    Inside Nikon’s Hikari Glass factory

    Here’s a closer view of the rubberized interior of the mixing drum. Any rubber particles that make it into the mix will burn off harmlessly in the next major process – ‘fine melting’.

    In order to hit exactly the right target refractive index for a particular kind of glass, Hikari prepares two batches of frit, one batch with a refractive index deliberately on one side of the target value, and one with a refractive index on the other. The two batches are then remixed and fine-melted together in just the right way to produce glass with the exact target refractive index value.

    The direct melting process skips this pre-melting step, making it less time-consuming. The difficult part is that the glass must have exactly the right refractive index from the get-go, which requires absolute purity of the raw materials, and gives much less margin for fine-tuning.

    Inside Nikon’s Hikari Glass factory

    The fine melting process is one of the two most critical stages in the entire glass-making process, and takes place in platinum crucibles inside very high-tech furnaces. The exact details of the fine melting furnaces (even their external appearance) are highly protected by Hikari Glass, and we weren’t allowed to take photographs of them.

    That’s OK, because to the untrained eye they don’t look like much anyway. More interesting is what they produce – long, long bars of glass, called ingots, which roll out from the machines very, very slowly on a very, very long conveyor belt in a process called ‘casting’.

    Inside Nikon’s Hikari Glass factory

    A skilled worker marks and precisely breaks the cast ingot at specific intervals. This particular ingot is destined for use in Nikon lenses, while glass for prisms and other purposes are processed in a different building.

    Inside Nikon’s Hikari Glass factory

    Once the ingot has been broken up into bars, each bar undergoes a quick inspection for any obvious major flaws or defects. If there is an apparent defect, these extruded glass bars are either recycled, if possible, or rejected.

    Inside Nikon’s Hikari Glass factory

    The glass bars are further checked for any bubbles or unevenness in an adjoining room. This is most often done visually, using a lightbox. Bubbles show up as bright specs, and ‘distortions’ (areas of substantially different refractive index) show up as wrinkles in the image projected onto the screen (left).

    Inside Nikon’s Hikari Glass factory

    Here, a worker points out a defect in a demonstration bar of glass.

    During the decades that Hikari Glass has been operating, optical technology has changed a lot, and so has the legislation governing substances like lead and arsenic, which used to be commonly used in glass manufacturing. Over the years, Hikari Glass has refined its processes accordingly.

    Inside Nikon’s Hikari Glass factory

    To ascertain the exact refractive qualities of a piece of glass, Hikari Glass technicians turn to machines. To measure refractive index, a small test block of glass is cut, and a special liquid with the expected refractive index is then painted onto the glass. Technicians then load the painted cube of glass into this machine and look for variations in light transmission as light is shone through.

    As well as the ‘final’ glass cast from the fine-melting furnaces, these machines are used to establish the refractive index of test batches of glass made from the frit we saw earlier.

    Inside Nikon’s Hikari Glass factory

    Once they’ve passed this quality control step, the bars of glass are split into slim rods, using heat. A heating coil warms the bar, and after a predetermined period of time, a small drop of cold water applied to the end of the bar causes it to split neatly in two with a very satisfying “pink” sound.

    This bar has just been split into two rods – the bars to the right, in the background are awaiting their turn.

    Inside Nikon’s Hikari Glass factory

    The glass rods are then cut into smaller…

    Inside Nikon’s Hikari Glass factory

    …and smaller cubes, called ‘dice’ using a circular saw. You’ll notice there’s no glass dust anywhere to be seen in these images and that’s because the ‘saw’ doesn’t have a cutting surface (you could put your hand right on it, without any fear of injury). It works by friction – the spinning disc heats the glass at the point of contact, creating a clean break.

    Each cube is slightly bigger than it ultimately needs to be, so that there’s scope for its weight to be precisely adjusted in the next stage of the process – grinding.

    Inside Nikon’s Hikari Glass factory

    The cubes of glass are weighed and placed into four categories, according to their approximate target weight. Their weight is then adjusted by grinding stones, in a very noisy machine called a tumbler (pictured above, and there’s a video of it in operation, below).

    The cubes of glass that are heaviest are added to the tumbler first, followed by the second-heaviest cubes, then the third and finally the fourth. In this way, the cubes of glass that need most weight shaved from them are processed for longer, and they all come out weighing roughly the same.

    Inside Nikon’s Hikari Glass factory

    After hanging out in the tumbler for a while, the cubes look like pieces of beach glass.

    A skilled employee then inspects each one by hand and performs any necessary additional grinding to make sure that any small chips are smoothed out, and the weight falls within the desired parameters.

    This particular piece has a chip (marked in red), which is big enough that unfortunately it’s reached the end of the line and will be rejected.

    Inside Nikon’s Hikari Glass factory

    Several areas of the Hikari factory are dusted with white powder, but it isn’t glass dust, it’s boron nitride – a heat-resistant compound of boron and nitrogen which is used in several industries, including cosmetics. At the Hikari factory, it’s used to stop the cakes of glass from sticking to their casts when they’re pressed into shape.

    A welcome effect of the roughening of the glass surface in the tumblers is that it makes the boron nitride adhere more effectively.

    Inside Nikon’s Hikari Glass factory

    And now the pressing begins!

    The blocks of glass, covered in boron nitride, are placed into their ceramic trays and sent on a conveyer belt through a furnace – which not coincidentally, makes this area one of the warmer sections of the Hikari facility. The aim is to soften the glass, but not quite to melting point.

    Inside Nikon’s Hikari Glass factory

    The very, very hot piece of glass is moved by hand (well, by tongs) and tipped into a heated mold. The molds for lens elements like these are pretty simple, but we’re told that it takes much longer to prepare the molds for glass destined for DSLR and binocular prisms.

    Inside Nikon’s Hikari Glass factory

    Once the glass is in the mold, a worker then activates a foot pedal to press the cake of glass into shape. A clock serves as a rough point of reference for the length of time each cake of glass is pressed, but an experienced press operator can also make this call by assessing the hardness of the glass based on how the mold feels in his hands.

    Inside Nikon’s Hikari Glass factory

    After pressing, and cooling, the cakes of glass (which are now in their puck-shaped final form) are collected for inspection.

    Inside Nikon’s Hikari Glass factory

    Each cake of glass is inspected by hands for any obvious defects resulting from pressing.

    This large piece of glass is destined for one of Nikon’s high-end telephoto lenses, and pieces like this go through extra inspection steps because they’re produced in a lower volume.

    Inside Nikon’s Hikari Glass factory

    Last but not least is the annealing process – the second most critical phase in the glass-making process, after fine melting. Like fine melting, the exact details of the annealing process are highly confidential. Essentially, annealing is a precisely-regulated heating and cooling process, which takes place over a long period of time – often several days. The goal is to make the internal density of the glass blanks completely consistent, and to eliminate any remaining bubbles and to adjust the refractive index. Generally speaking, lengthier cooling cycles result in denser glass with a higher refractive index, and shorter cycles produce less dense, higher RI glass.

    The specific temperature brackets – and the period of time over which those temperatures are sustained – is critical (and secret) and depends on the exact type of glass. The huge plates of glass used in industrial steppers might spend up to two months in the annealing furnace.

    The green chalkboard on the front of this furnace is used by workers to record the ‘recipe’ for the particular trays of glass blanks that have been loaded in. This furnace isn’t being used, which is why there’s nothing written on the board (and why we were allowed to take pictures of it).

    Inside Nikon’s Hikari Glass factory

    After all that, at long last, we have a finished ‘blank.’ These blanks are packaged and sent off to other Nikon facilities in Japan, China and Thailand for polishing and coating, before finally making their way into NIKKOR lenses.

    Inside Nikon’s Hikari Glass factory

    And that’s it! Here, finished blanks of glass are placed into plastic pallets ready for dispatch.

    To recap, here are the major stages in the entire process from beginning to end, with links:

    1. Initial mixing of the raw materials to make glass powder LINK
    2. Pre-melting of the glass to make ‘frits’, which are intentionally created to have either a positive or negative R.I. (direct melting is a simpler process, that we did not observe) LINK
    3. Mixing the frits LINK
    4. Fine melting of the frits (not pictured) to achieve the target refractive index, and extrusion and cutting of the glass ingots into bars LINK
    5. Inspection of the glass for defects LINK
    6. Cutting into blocks into rods and dice LINK
    7. Adjusting the weight of the glass dice in the grinding machine LINK
    8. Heating and pressing the glass dice into molds LINK
    9. Annealing of the resulting blanks, to eliminate distortions in the glass and fine-tune the refractive index LINK
    10. Inspection and measurement of the finished glass blanks

    We hope you enjoyed this look inside Nikon’s Hikari glass factory. If you’re eager to learn even more, our friend Dave Etchells over at Imaging Resource has published an even more detailed account of our visit here.

    Articles: Digital Photography Review (dpreview.com)