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Objective Reviews & Commentary - An Engineer's Perspective
Showing posts with label Audio Myths. Show all posts
Showing posts with label Audio Myths. Show all posts

April 7, 2012

What We Hear

mcgurk ear bbc twoFIRST SOME UPDATES: This is a promising sign. I’ve managed to publish another article in less than a week and it’s a big one! Since last weekend’s April Fool’s article we’ve managed to finalize the ODAC design and it’s off to production. The best case estimate for availability is mid-May assuming all goes well. I plan to publish an article with the full measurements in the next few weeks. For now, I need a temporary break from the ODAC. (photo: BBC Two)

WHAT WE HEAR: The recent review of the O2 Amplifier at Headfonia has generated questions about why the reviewer heard what they heard. For example, a few have asked if the O2 is genuinely a poor match for the Sennheiser HD650 as the reviewer claims. How we do we determine if that’s true and, if the review is wrong, what happened? Others have asked if “colored” audio gear can sound better. This article tries to explore what’s often wrong with typical listening comparisons, subjective reviews and “colored” amplifiers.

THE SPECIFIC COMMENTS IN QUESTION: I’m not trying to place unique blame on Headfonia, or the authors, it’s just useful to have a concrete example. The Headfonia review is a timely example. The authors (Lieven and Mike) wrote:

I really don’t find the Senns [HD650] to pair well with the O2”. He also said the O2 (presumably with the HD650) was: “ …missing some punch and impact. But the bass isn’t the only thing bothering me actually, there also is something bothering me with the mids . They sound a bit thin to me to be honest, I just feel like I am missing out on something using the O2. It isn’t bad sounding, and I’m sure lot’s of people love it, but I’m not one of them, I’m missing something to enjoy what I’m hearing.”

HUMAN PERCEPTION & SCIENCE COLLIDE: Just because the earth seems flat from where you’re standing doesn’t make it true. Our senses don’t always provide us with the real truth. This article is mainly about how all of us, even audio reviewers, perceive things and why.

wine heatheronhertravelsTWO BUCK CHUCK (part 2): Robin Goldstein conducted over 6000 wine tastings with over 500 people including many wine experts who work in the industry. He discovered when people know the prices of the wines they clearly prefer more expensive wines. But when the the same wines are served “blind” (anonymously), the votes reverse and they express a strong preference for the least expensive wines.

FAKE RESTAURANTS & BUG SPRAY: Goldstein exposed one of the most prestigious sources of wine ratings in the world, Wine Spectator, as arguably having their awards up for sale. He created a fictitious restaurant with a wine list featuring poorly reviewed wines with descriptions like “bug spray” and “barnyard”. Then, after paying the appropriate fee, his fake restaurant managed to score a Wine Spectator Award of Excellence. Goldstein argues organizations like Wine Spectator do not provide the sort of unbiased advice many anticipate. He also concluded their ratings have a heavy commercial and financial component the public is largely unaware of. It’s alarmingly analogous to high-end audio including the questionable awards. For those into podcasts check out the NPR story on Goldstein and wine myths . He’s also written a book on the subject called The Wine Trials. (photo: heatherontravels)

TASTE WRONG: How can the same people, taste the same wines in two different tastings, and rate them completely differently? The is our senses are not nearly as reliable as we think. In this case what’s known as expectation bias caused the wine tasters to perceive the wines differently. They expected the more expensive wines to taste better so their brains filtered their perception of taste to help deliver the expectation. But when they didn’t know anything about the wines, they couldn’t have any expectations, hence the bias was removed. I’ll explain more shortly but this is also critical to what we hear.

SEE WRONG: Studies show our vision is easily fooled. A video linked in the Tech Section contains a classroom experiment where students witness what they believe is a real a crime. They’re shown pictures and asked to identify the suspect and many are so sure they even would testify in court. But, alarmingly, there’s no consensus in the photos they choose. In the end, none of them are correct! Their brains filtered out too many details of the thief. When shown pictures, each of their brains helpfully invented different missing details to match one of the photos. We do the same thing with audio (see the Tech Section).

justinstolle baby with headphonesHEAR WRONG: Just like with taste and vision, our hearing is heavily and involuntarily filtered. Only around 0.001% of what we hear makes it to our conscious awareness. This is hardwired into us for survival. We would go crazy from sensory overload if this filtering didn’t take place 24/7. Studies show you can play the identical track, on identical equipment, two different times, and the odds are good people will hear significant differences if they’re expecting a difference. This is called expectation bias and it’s the brain “helpfully” filtering your hearing to match your expectations—just like wine tasting. I reference the auditory work of James Johnston and more in the Tech Section. (photo: JustinStolle CC)

THINK YOU’RE EXEMPT FROM HEARING BIAS? People who have made a career of studying the human auditory system have yet to encounter anyone who can overcome their sensory bias. If you have any doubt I challenge you to watch this video and try to overcome your listening bias. If you can’t reliably do it here with a single syllable, even when you know the exact problem, it’s safe to say you don’t have a chance with the much greater complexity of music and a wide range of expectations:

  • McGurk Effect Video – A 3 minute BBC non-technical BBC video that allows anyone to experience how our brains involuntarily filter what we hear based on other information. (courtesy BBC TWO).

SKILLED LISTENING: You can learn what to listen for and hear more subtle flaws. Studies have shown show recording engineers are especially good at it—even better than hardcore audiophiles and musicians. Recording engineers make their living listening for that one clipped note. But they’re still not exempt from expectation bias.

studio mixer by rachelledravenRECORDING ENGINEERS FAIL: Ethan Winer, something of a recording studio expert, points out even recording engineers get caught making adjustments to a mix, and hearing the desired result, even when the controls were not even active. Nothing changed with the sound, but their brains deceived them into hearing the expected changes. And in blind listening tests, just like everyone else, they hear differences that don’t exist if they’re expecting differences. (photo by; RachelleDraven CC)

THE TIME FACTOR: Our brains are like leaky sieves when it comes to auditory details. We can’t possibly remember the massive amount of data contained in even one song (roughly equivalent to one million words!). So, here again, our brains out of necessity heavily filter what we remember. The students in the sight example above thought they had accurate memories of the thief but they turned out to be very wrong. The science shows our audio memory starts to degrade after just 0.2 seconds. So if switching from Gear A to Gear B requires more than a fraction of a second you’re losing more information. The longer the gap, the more you forget and the more bias distorts what you do remember.

WHAT WE HEAR: Neurologists, brain experts, hearing experts, and audio experts, all agree the human hearing system, by necessity, discards around 99.99% of what arrives at our ears. Our “reptile brain” is actively involved determining what gets discarded. For example when you’re listening to someone at a noisy restaurant, the brain does its best to deliver just their voice. And, multiple studies demonstrate, when you’re listening to audio gear the brain also does its best to filter your hearing in the way it thinks you most want. If you’re expecting Gear A to sound different from Gear B the brain filters each differently so you indeed hear a difference even when there isn’t one. This auditory issue has many names. I generally call it “Subjective Bias” but it’s what’s behind “Expectation Bias”, “The Placebo Effect”, and “Confirmation Bias”. I highly recommend the book Brain Rules by John Medina and there are more resources in the Tech Section.

hd650 closeupBACK TO HEADFONIA’S REVIEW: Knowing the O2 measures well creates an unavoidable bias that it might be too “sterile” which implies, as Lieven said, it could be “missing something” or sound “thin”. His brain involuntarily, when he knows he’s listening to the O2, would filter his hearing to deliver the expected “sterile” sound. Someone could set up a blind test between the O2 and a measurably transparent amp Lieven really likes, and he would no longer be able to tell the amps apart because his brain wouldn’t know what to expect. Conversely, you could set up a test where Lieven compares the O2 in a sighted test to a more favored amp but in reality he’s always listening to the O2. Because he’s expecting to hear differences he would--even though he’s really listening to the same amp. He would hear what he expects from each amp. This isn’t unique to Lieven or Headfonia. We all suffer from this bias.

MEASUREMENTS PROVIDE REAL ANSWERS: The O2 performs, as demonstrated by measurements, very similarly with just about any headphone load and is audibly transparent with the HD650. There’s nothing about the HD650 that alters the signal delivered by the O2 in an audible way. It would be useful to measure the other amplifiers used for comparison in the review. It’s possible one or more are less accurate than the O2 which might create an audible difference. See the Tech Section for more.

A BETTER METHOD: Instead of pretending we’re somehow exempt from inevitable filtering and expectation bias, a much better approach is to simply remove the expectations. Odds are extremely high if the authors had used level matched blind testing they would have reached very different conclusions. This can even be done solo with an ABX switching setup allowing instant switching to stay within the critical 0.2 second window. The switching can be done frequently, hours apart, or over weeks. You can listen to 10 seconds of a revealing excerpt or 10 entire CDs. In the end, the ABX set up reliably indicates there’s an audible difference. If a difference is detected, an assistant can be used to help blind audition both and determine which is preferred.

SUBJECTIVE REALITY: I’ve done the above blind testing using my own HD650 headphones and Benchmark DAC1 Pre. The O2 sounded so similar to the $1600 Benchmark I, and another listener, could not detect any difference. Simple logic tells us if what Lieven wrote about the O2/HD650 is true, it would also likely hold true for the Benchmark DAC1 Pre/HD650 or indeed any sufficiently transparent headphone amp. Considering the DAC1 is a Stereophile Class A (their highest rating) headphone component and rave reviewed by numerous other high-end audiophile reviewers, there seems to be a serious disconnect somewhere. At least one of the reviewers must be wrong and the Headfonia authors are far outnumbered.

ponder by striaticA REVIEWER’S DIFFICULT CHOICE: Subjective reviewers, like Lieven, have three basic choices in how they want to view a piece of gear like the O2 that measures very well: (photo by: striatic CC)

  1. Try to wrongly claim all transparent gear sounds different than other transparent gear and make up weak excuses to avoid blind testing demonstrating what differences they can really hear.
  2. Try to claim non-transparent (i.e. “colored” lower fidelity) gear with added distortion is somehow better than transparent gear. This would condemn all transparent gear, even some really expensive gear, to being equally “inferior” as the O2.
  3. Concede all audibly transparent gear is accurate and generally will sound the same. They don’t have to like the sound of transparent gear, but they would accept giving the O2 a negative review means also giving a Violectric, DAC1, and lots more high quality headphone amps an equally negative review.

seed pods by ticoWHEN THERE REALLY ARE DIFFERENCES: Sometimes gear really does sound different for some good reasons. I provide examples in the Tech Section. The Headfonia review, and related comments, have argued lower fidelity “colored” amps are somehow better than accurate high fidelity amps like the O2. This is often called “synergy” or “euphonic distortion” and it’s a matter of personal taste but it does have some very significant downsides. (photo by: tico cc)

TWO WRONGS DON’T… The synergy theory goes something like: “Because headphones are imperfect it’s OK to pair them with imperfect amps that help compensate for the headphone’s flaws.” Someone might pair bright headphones with an amp having poor high frequency response to help tame the nasty highs. But what happens when you upgrade to say the HD650 with relatively smooth natural highs? Now your headphone amp is going to sound dull and lifeless and there’s no way to fix it. The generally accepted goal, for many solid reasons, is the entire audio reproduction signal chain should be as accurate and transparent as possible right up to the headphones or speakers. That’s what recording engineers who mix our music, and manufacturers of our headphones and speakers, are counting on. If you want different sound see the next paragraph.

foobar eqAMPS & DACS MAKE LOUSY EQUALIZERS: If you want to alter the sound a much better method than using a colored amp or DAC is using EQ. That’s what it’s for. There are even decent EQ apps for iOS and Android. For those purists who somehow think DSP or EQ is wrong, odds are your favorite music has already had significant DSP and/or EQ applied. There’s an example in the Tech Section showing even two passes of digital EQ are entirely transparent. Using a headphone amp to compensate for a flaw with your headphones is like buying a music player that can only play one song.

NOT SO EUPHONIC: Amps or DACs that contribute what’s often called “euphonic distortion” are a lot like using them as equalizers above. An amp with “euphonic distortion” might help mask other problems by adding audible crud to your music but that’s putting a band aid on the problem instead of fixing what’s really wrong. You’re stuck with the added crud from euphonic gear no matter what. Even with the most pristine audiophile recording with low distortion headphones, your gear is still going to dumb down your music with its ever present contributions. If you’re really craving say the sound of a vintage tube amp, it can be done rather convincingly in software via DSP. That way you can at least turn the crud on and off as desired.

IT’S A PACKAGE DEAL: Sadly most “colored” and “euphonic” audiophile gear also has other problems. To get that soft high end you’re after you might end up with a tube amp and also get a very audible 1% THD. Or, like some Schiit Audio products have done, your “esoteric” amp may destroy your expensive headphones. Gear with lower fidelity in one area is much more likely to have problems in other areas.

FIDELITY DEFINED: The “Fi” in “Head-Fi” is supposed to be fidelity, as in “high fidelity”. If you look up the words, you’ll find it means “being faithful”, “accuracy in details” and “the degree to which an electronic device accurately reproduces sound”. Note the words “accuracy” and “electronic”. Accuracy is something that can be measured in most electronic audio gear (DACs, amps, etc.). So if “high fidelity” is really the goal why would anyone be opposed to measurements that support that goal? Ask yourself that question next time you encounter someone dismissing or downplaying audio measurements.

magic by cayusa 275MAGIC: Some compare the supposedly better sound heard from high-end gear to “magic”. Lieven quotes Nelson Pass claiming “It is nevertheless possible to have a product that measures well but doesn’t sound so good. It is still a mystery as to how this could be.” In effect Pass appears to be saying amplifier sound is mystical. But it’s not. Lots of credible published research demonstrates measurements predict sound quality. If Pass is so confident measurements don’t tell the whole story, where’s his published blind listening test demonstrating his view? Such a result would certainly help sell more of his five figure products so he has a strong incentive to publish such a test. Still, magic is an interesting analogy. Magicians know how to exploit weaknesses in our senses to deceive us. Convincing someone a $2000 power cord really sounds better is a similar act of sensory deception. (photo by: Cayusa CC)

BUT IT SOUNDED BETTER EVEN IN THE NEXT ROOM! Anyone who’s read many of the blind vs sighted debates has probably come across someone claiming their wife even commented how it sounded better and she was three rooms away in the kitchen. That phenomena was explained by Stuart Yaniger in his recent article Testing One Two Three. It turns out many audiophiles have a few favorite test tracks they cue up after making changes to their system. The test tracks are an obvious clue to their spouse they probably changed something in their system. And, spouses being spouses, sometimes respond with the audio equivalent of “that’s nice dear”. Sit down and do a blind comparison if you really want to know the truth—preferably in the same room as the speakers.

IF THIS IS ALL TRUE WHY DON’T MORE PEOPLE KNOW OR TALK ABOUT IT? The biggest single reason is there’s an enormous amount of money behind high-end audio. It’s largely built on the belief that spending significantly more money on high-end gear yields better sound. Pick up nearly any magazine, or visit nearly any website, and you’ll read how a $3000 DAC sounds better than a $300 DAC. But is that really true or is it just a self-serving perception that exploits the weaknesses in our auditory abilities? The industry has carefully cultured and crafted a lot of perceptions over the last few decades and some of it has been organic—especially given how audio forums work.

SOME IMPORTANT HISTORY: High-end audio was nearly non-existent in the 1970s short of a few companies like McIntosh and even those marketed their gear around objective criteria. If anyone tried to sell a $2000 power cord in 1980 they would have been laughed out of business but now there are dozens of companies selling them. The wine industry has followed a very similar path. In 1980 people tended to buy wine they thought tasted good. But, courtesy of decades of clever marketing, wine has been made out to be much more complex and important. An entire industry in the USA has grown up around wineries, wine tourism, wine bars, tastings, pairings, flights, expert reviews, etc. Consumers have been taught to doubt their own ability to judge wine and instead trust expert wine ratings with their point scores and elaborate tasting notes. And, not surprisingly, the experts tend to rate more expensive wines much higher. It’s scary how similar it is to high-end audio. Compare “the Warped Vine Cabernet was leathery with hints of green pollen” to “the UberDAC had a congested sense of pace and tarnished rhythms”. Check out the books by Robin Goldstein, Mike Veseth, Jonathan Nossiter, and the documentary Mondovino.

CONDESCENDING LINGO: Like the wine industry, the audio industry has invented their own complex secret language. This is exposed as a clever marketing technique in the books referenced above. The vague complex language makes the average person feel they’re not qualified know what to buy and should defer to the “experts” (who in turn promote more expensive products). So next time you read about slam, pace, congestion, rhythm, blackness, sheen, timing, or other words that could have many meanings, consider it marketing mumbo jumbo and think twice about trusting anything else that person has to say. Misappropriating words to mean something that’s ill-defined and vague isn’t doing anyone any favors except those hawking overpriced gear.

question doubt by mister khaCREATING DOUBT:  Someone might have a favorite inexpensive wine but the wine industry often succeeds in making them wonder if it’s “good enough” to serve to guests. They’re tempted to ignore their own perceptions and instead buy something that’s well rated and more expensive. This is good for the wine industry but bad for consumers. (photo by: Mister Kha CC)

AUDIO DOUBT: The high-end audio industry mirrors the wine industry. Websites like Head-Fi create massive amounts of doubt among those who spend much time there. I’ve received hundreds of messages like:

“I have the $200 UltraCan Five headphones and I thought they sounded really good with my iPod. But then I found Head-Fi and read the new $500 UberCan Golds are a lot better but they apparently need at least the $500 UberAmp Titanium to really perform. Should I spend $1000 to upgrade?”

SAD STORIES: I read messages like the one above and it makes me sad. Here’s this college student, probably eating macaroni and cheese for dinner, contemplating spending $1000 more than they’ve already spent to listen to music on their $200 iPod? And this is from a person who, until they found Head-Fi, thought they already had really good sound! In my opinion it’s just wrong—especially when the doubt is largely based on flawed listening perceptions and often hidden commercial influences.

BEHIND THE SCENES AT HEAD-FI: The above is the marketing genius of sites like Head-Fi and Wine Spectator. This all plays into the Head-Fi recipe:

  • Censorship – Head-Fi bans discussion of blind testing on 98% of the site and they have censored or banned members who speak out against Head-Fi or their sponsors. They take many actions to heavily tilt perceptions in favor of visitors spending money they probably don’t need to spend.
  • Questionable Gear - Some of the most hyped gear on Head-Fi, in my opinion, is snake oil—Audio-GD, NuForce and Schiit Audio are three examples arguably based on hype rather than solid engineering. Some of it is sold through very limited sales channels and Head-Fi is probably responsible for the majority of the sales. 
  • Massive Advertising - Head-Fi is a banner farm of advertising that includes $1000 iPod cables. The advertisers want to capitalize on the doubt created among Head-Fi visitors and having the moderators and admins acting on their behalf.
  • Infomercials – Jude, and others at Head-Fi, produce what many consider “infomercials” promoting products for Head-Fi sponsors. When Wine Spectator granted the Award of Excellence to Robin Goldstein’s fake restaurant they suggested he also buy an ad on their website. Those sorts of cozy behind the scenes relationships are present in the audio industry as well. See Stereophile Exposed below.
  • Biased Evangelists – A disproportionate number of Head-Fi posts are made by what some consider shills who “evangelize” and fiercely defend products sold by Head-Fi sponsors. Some might be just rabid fanboys, but if you look at the products that receive the most positive, and greatest number of, comments they’re usually from Head-Fi sponsors and are often somewhat questionable products that probably wouldn’t do nearly as well left to their own (lack of) merits.
  • Deception – To the casual visitor, Head-Fi just seems to be an open forum where average people can talk about headphone stuff. But it’s really owned by a commercial entity that’s using it as a marketing machine. And it’s not “open”—see Censorship above. It’s a private forum run for profit. From what I understand the moderators and admins receive a steady stream of free gear while Jude receives all that plus serious income. It’s no longer just a hobby to these guys.

SAFE MYTH BUSTING: There’s a great show on the Discovery Network called MythBusters. They pick a few myths for each episode and set out to see if they’re true. To my knowledge they nearly always avoid busting myths that might cause serious financial harm to anyone and instead focus on things like toilets exploding when used by cigarette smokers. This same “courtesy” is almost universally extended by the media covering high-end audio. The past has shown crossing the line is dangerous.

the audio criticTHE AUDIO CRITIC: Peter Aczel set out many years ago to expose myths in audio with his magazine and website The Audio Critic. He had a relatively small but significant and loyal following. But, progressively and sadly, he was marginalized in a variety of ways. Today nearly all audio journalists are inexorably in bed with the manufacturers in one way or another. And if you’re openly pro-Obama you don’t get to work on Mitt Romney’s political campaign. (photo: The Audio Critic)

STEREOPHILE QUESTIONED: For those who think I have an axe to grind, it’s nothing compared to Arthur Salvator’s axe. He strongly questions the credibility of John Atkinson and Michael Fremer at Stereophile. Whatever his personal bias, he presents what appears to be factual data implying Stereophile has heavily favored advertisers and selling magazines over being objective audio journalists. Sadly, as with Wine Spectator’s Excellence Awards, I believe this is likely to happen whenever you can follow the money from their paychecks up the chain to the manufactures of the products they’re supposed to be reviewing.

DECEPTION RUNS DEEP: I used to work in high-end audio. I can attest many believe the “party line” as they’re more or less immersed in it. It’s much easier to dismiss the rare blind listening test than consider their own industry is largely based on erroneous myths. Believing the earth is flat allows them to sleep better at night. So keep in mind even those selling $2000 power cords might genuinely believe their product sounds better. They likely listened with the same expectation bias described above and hence are believers. But that doesn’t mean lots of expensive gear really does sound better.

THE GOLD STANDARD: Across many branches of science blind testing is the gold standard for validating if things work in the real world. It’s well accepted for use where human life is at stake in medicine, forensics and physics. So it’s stunning when audiophiles claim it’s an invalid technique with mountains of evidence to the contrary dating back to the 1800’s. The Tech Section addresses all the common complaints about blind testing. But the short version is there are no practical objections when you do it right.

BLIND AVOIDANCE: Perhaps the most interesting disconnect in the industry is the almost universal avoidance of blind testing. If someone really believes their expensive gear sounds better why not try a blind comparison? This is where things get fuzzy about what many in the industry really believe. I would think many would be genuinely confident and/or curious enough to at least try some blind testing. But, almost universally, they refuse to participate in blind tests and often actively attack blind testing in general. Why? Deep down is it because they’re worried the expensive gear, cables, etc. really don’t sound better? Did they secretly try a blind test and failed to hear a difference? Or have others convinced them blind testing is a total sham and the earth is really flat?

BLIND DONE WRONG: When blind testing is used by someone in the industry they arguably misuse it and retain the very expectation bias blind testing is supposed to remove. Some examples of “blind abuse” are in the Tech Section.

dream by xtream_iFANTASIES: Another way to explain the avoidance of factual information is some simply enjoy the fantasy. High-end audio is a serious hobby for many. For some constantly swapping out gear is a big part of the fun. Blind testing could, obviously, jeopardize some of their enjoyment. One person’s hobby is their own. But if I imagine wine tastes better when consumed from vintage Waterford crystal should I really be trying to convince others to get rid of their pedestrian wine glasses and spend a lot more on vintage crystal because the wine tastes better? This is exactly what most audiophiles are doing at sites like Head-Fi, Headfonia, and many others. They’re convincing others to spend more money with the promise of better sound when they’re often not getting better sound.

FANTASIES ARE NOT ALWAYS HARMLESS: Some have told me I’m pulling the beard off Santa Claus and I should leave deluded audiophiles to their harmless fantasies. But the fantasies are not harmless when, collectively, the often repeated myths are costing people tens and probably hundreds of millions of dollars. Not everyone buying high-end gear has money to burn and reads the Robb Report. Many just want better sound. They don’t need $1000 DACs, power conditioners, expensive cables, etc. to get the sound they’re after yet they’re told over and over they do need those things.

crystal by foolfillment 275WATERFORD CRYSTAL: I think most would agree the difference between regular glass and crystal doesn’t change the actual taste of wine but it’s fair to say it might change the overall experience. There’s nothing wrong with buying and using expensive crystal wine glasses. But I believe it’s crossing an important line when you try to convince others the crystal itself makes the wine actually taste better. (photo by: foolfillment CC)

MONEY WELL SPENT: I’m not suggesting there’s no reason to buy expensive audio gear. I own a $1600 DAC. There can be satisfying reasons to spend more including higher build quality, more peace of mind, the heritage and reputation behind certain manufacturers, better aesthetics, and other less tangible benefits. But, for the sake of those interested in getting the best sound for their money, it’s best not to confuse sound quality with those other benefits. Just as drinking from crystal doesn’t improve the actual taste of the wine itself. Buying a pre amp with a massive front panel and $2000 power cord doesn’t improve the sound even if it might improve the experience for some. I’ll be covering this in much more detail soon in my upcoming Timex vs Rolex article.

ONE MAN’S BOOM IS ANOTHER MAN’S BASS: Perhaps the most accurate headphones I own are my Etymotic ER4s but they’re also among the least used. Why? They’re just not very exciting to my ears and are ruthlessly revealing of poor recordings. I want to be clear nobody can dictate what’s best for someone else when it comes to headphones, speakers, phono cartridges, and signal processing (including EQ). All of these things alter the sound to varying degrees so it comes down to individual preferences as to which is best. But, to be clear, I’ve also presented good reasons why it’s worthwhile for everything else in the signal chain to be as accurate and transparent as possible—that is to have the highest fidelity. Just because I like say a bit of bass boost doesn’t mean I should go buy a headphone amp with a high output impedance that makes my HD650’s sound more boomy. That same amp would be a disaster with my Denon D2000s, Etymotics or Ultimate Ears. It’s much better to choose a headphone with more bass, like my DT770, or use some EQ to punch up the bass to my liking. Then I can use my headphone amp with any headphone and I can have my cake and eat it too.

WHERE’S THE LINE? I can understand wanting to own high quality equipment. But where do you draw the line between subjective enjoyment and blatant snake oil and fraud? Is a $3000 “Tranquility Base” with “Enigma Tuning Bullets” from Synergistic Research more like Waterford crystal or a magnet to clamp on the fuel line in your car claiming to double your gas mileage? What about Brilliant Pebbles--a $129 (large size) jar of rocks that are supposed to improve the sound of your audio system? These are example companies presented in the myths video (Tech Section). Should such products be able to stand up to blind testing? Does it matter if the claimed benefits are real? To me it’s a slippery slope once you start agreeing with the “blind tests don’t work” crowd as the possibilities for unverifiable claims are endless.

TRUTH IN ADVERTISING: Many countries have laws against false claims and sometimes it’s enforced via legal action. For example, companies claiming unproven health benefits for products answer to the FDA. And Apple is currently being sued for misrepresenting Siri’s capabilities in their TV ads. Should audio companies be held to similar standards or at least be required to use a disclaimer when claims are unproven? When do claims enticing people to spend lots of money become fraudulent?

THINGS TO CONSIDER: If this article has you wondering just what’s real and what isn’t I would suggest considering some of the following:

  • Focus On What Matters To You – If you only want the best sound for your money don’t let others make you doubt your own enjoyment or convince you to spend more than necessary for things you can’t hear or don’t need. Likewise if you want a headphone amp that you can hand down to your kids in 20 years don’t let someone like me keep you from buying a Violectric V200 instead of an O2 even if they sound the same. The Violectric is better made. Of course your kids may have audio brain implants in 20 years.
  • Your Tastes Are Your Own – Subjective reviews are just that: Subjective. Don’t assume you will hear what a reviewer claims to have heard. We all hear differently, have different preferences, etc.
  • Music is Art but Audio is Science – Don’t confuse the art of being a musician with the science of reproducing recorded music. What an amplifier looks like is art, but what it does with an audio signal is entirely explained by science.
  • Use Common Sense – Be aware the controversy over blind testing is almost like a religious war. But try to step back and use common sense, consider the source, references, credible studies, etc. Follow the links in this article to additional resources. Consider the huge wealth of scientific evidence in favor of blind testing, measurements, what matters, etc. vs the subjective claims with little or no objective evidence of any kind to back their claims. If differences between cables, power cords, preamps, etc. were really so obvious don’t you think someone would have set up a credible blind test demonstrating the benefits by now?
  • Consider The Source – When you’re reading about gear, testing, reviews, etc, always consider the source. What gear does the author own? Who do they work for? Where does their (and/or their employer’s) income mostly come from? Are they selling audio gear? Do they receive free gear? Do they otherwise have a vested interest in promoting the status quo? I’m not saying everyone is hopelessly biased by those things but they often contribute bias to varying degrees (see Stereophile Exposed above and the wine references).
  • Try Free ABX Software – This will allow you to conduct your own solo blind tests comparing say a CD quality 16/44 track with a 24/96 track. See the Tech Section for more details.
  • Enlist A Friend (with a good poker face) – If you’re convinced that new gear sounds better find someone else to randomly connect the new gear or old gear in a way you don’t know which you’re listening to. Keep everything else as consistent as possible including the volume, music used, etc. See if you can identify the near gear. If you do, repeat the experiment several times keeping score of your preferences while your friend keeps score of which one was really connected. Compare notes when you’re done.
  • Eliminate Other Variables & Clues – If you’re trying to compare two pieces of gear do everything you can to eliminate anything that might cause you to suffer expectation bias or provide even subtle clues as to which is which. Let’s say someone is plugging your headphones, behind your back, randomly into source A or source B. You need to make sure the sound the plug makes going into the jack isn’t different enough to be recognizable. Also make sure the music is the same, not time shifted, one player might click when starting or has audible hiss and the other doesn’t, etc. Make sure the person helping either have a poker face or stays out of sight and doesn’t say anything as they may provide clues otherwise. And if you suspect someone else is hearing differences that likely don’t exist look for these kinds of clues that might be tipping them off—even subconsciously.

OTHER RESOURCES AND REFERENCES: In addition to all the links sprinkled around this article, check these out for more information:

  • Subjective vs Objective Debate – My first attempt at tackling some of this last spring
  • Music vs Sine Waves – An article I wrote debunking some myths about audio measurements.
  • Headphone Amp Measurements – An article I wrote for InnerFidelity on amp measurements
  • 24/192 Music Downloads – High resolution 24 bit music has to sound better, right? Or does it?
  • Matrix Blind Audio Test – A relatively simple and revealing blind test that’s easy to understand
  • Audio Myths Workshop Video – This is a somewhat technical presentation but it has lots of simple common sense examples. See the Tech Section for more details and how to obtain the high quality example files used in the second half to listen for yourself.
  • Why We hear What We Hear – A technical article on the human auditory system by James Johnston that goes into more detail about what we hear.
  • Dishonesty of Sighted Listening – An excellent technical paper by Sean Olive on evaluating speakers with blind vs sighted listening.
  • Hydrogenaudio – A geekfest of mostly objective audio folks. Lots of blind tests, analysis, and more.
  • Audio Differencing – Consider trying out the free software from Liberty Instruments and their test files. Do capacitors really change the sound?
  • Science & Subjectivism in Audio – An information packed page by Doug Self covering this topic.
  • Meyer & Moran Study – Over 600+ trials even audiophiles couldn’t hear a difference between CD and SACD high resolution audio.

THE FUTURE: Look for my “Timex vs Rolex” article where I’ll cover what you get as you spend more, what to look for based your priorities, etc. I’ll also be comparing some typical gear at widely different price points and exposing some high-end gear with low-end performance.

BOTTOM LINE: We can’t “trust our ears” the way we’re usually led to believe we can. And we can’t trust the ears of reviewers for the same unavoidable reasons. I’m not pretending I can write a few articles and change the minds of thousands of audiophiles—others before me have tried. But even if I only help a few save some serious money by focusing on what’s real, I’ve succeeded. Next time you encounter someone you think might be wrongly arguing for spending more money in the interest of better sound, consider providing a link to this article. If they read it and decide the earth is really still flat, or they want to spend more anyway, it’s their choice. But at least the information helps anyone who’s interested make a more informed decision.

 


TECH SECTION


INTRO: Below are further details on some of the references I used for this article and some added information for the more technically inclined.

BLIND OBJECTIONS: There are several typical objections to blind testing. But nearly every one has been well addressed. They include:

  • Switchgear Masking – Some try to argue the relays or switch contacts, extra cabling/connectors, etc. associated with some blind testing somehow masks the differences between gear. But there have been many blind tests without any extra cables or gear. See the Matrix Audio Test as one example where humans simply swapped cables. What’s more, the music we listen to has already been “masked” by all the unseen cabling and switchgear used in producing music. A lot of high end and well respected gear is full of switches and relays. Objection removed.
  • Listening Stress – Some blind tests are conducted by others administrating the test and listeners may feel some pressure to “perform”. But an ABX box can be used solo, in their own home, under exactly the same conditions they normally listen. Objection removed.
  • Listening Duration – It’s often said you can’t appreciate the differences between gear by listening to just one track or for just a short period of time before switching. An ABX box can be used at home for whatever duration desired. You can listen to Gear A for a week, then Gear B for a week, and finally Gear X for a week before casting your vote. That could go on for as long as you want. Objection removed.
  • Unfamiliar Environment – Blind tests are often criticized for being conducted in an unfamiliar environment. Never mind audiophiles can pop into a booth or room at a noisy trade show and claim to write valid reviews of how the gear sounded. But it’s entirely possible to do blind testing in your own home, with your own gear, your own music, at your own leisure, etc. See above. The Wired Wisdom blind test, for example, was done in the audiophile’s homes. Objection removed.
  • The Test System Wasn’t High Enough Resolution – See above. Blind tests have been done with audiophile’s personal $50,000 systems and the results are consistently the same. Objection removed.
  • Statistically Invalid – There have been some tests with marginal results that leave room for the glass half empty or glass half full approach as to their statistical significance. But there have been many more that have had a valid statistical outcome over many trials. The math is clear and well proven. Objection removed (for well run tests with clear outcomes).
  • Listening Skill – Some claim blind tests fail because the listeners involved were not sufficiently skilled. But it’s well established the filtering and expectation bias of our hearing is involuntary—no amount of skill can overcome it. It even trips up recording engineers. Ultimately, if say a dozen people cannot detect a difference, what are the odds you can? Objection largely removed.
  • Flawed Method – It’s always possible for someone to find flaws with the method. It’s like a candidate losing a political election, demanding a ballet recount, and finding a dead person cast one vote—never mind they need another 7032 votes to win. They want to try and invalidate the election on an insignificant technicality for entirely biased reasons. The same audiophile claiming to listen to a piece of gear for 5 minutes at a trade show and have a valid opinion about how it sounds somehow claims noise on the AC power line masked all differences in a blind test. Really?
  • It’s Not Real Proof – This is the ultimate weapon for the blind critics. Anyone can always claim something like “it’s possible when rolling dice to get double sixes many times in a row so your test doesn’t prove anything.” And, technically, they’re correct. But, in practice, the world doesn’t work that way. If they really believe in beating impossible statistical odds, they should be spending their time in a Las Vegas casino not writing about blind testing. Drug manufactures are not allowed to tell the FDA it’s possible their drug is really better than the placebo even if the statistical outcome of their carefully run trials indicates otherwise. There are well established standards that are accurate enough to use where human life is at stake but some audiophiles still, amazingly, try to claim these methods are somehow invalid.

WHEN BLIND IS FLAWED: Some in the industry, and the odd individual, have arguably misappropriated blind listening. For example, the UK magazine Hi-Fi Choice conducts what they call “blind listening group tests”. But instead of following proven and established guidelines for blind testing to determine if the listeners can even tell two pieces of gear apart, they seem to let their judges listen to gear as they choose over multiple listening sessions and take notes on their impressions without presumably knowing which gear is playing. This method suffers from much of the same filtering and expectation bias as sighted listening as they’re expecting differences so they hear differences. As far as I can tell (the published details are vague), they’re not directly comparing two pieces of gear looking for statistically significant differences over several controlled trials. There doesn’t seem to be any voting or scoring to determining what differences are real versus simply a result of expectation bias. Studies show one might blow their entire method out of the water by simply running their usual test with say 5 different amplifiers but, instead of playing all 5, repeat one of them twice and leave one out. I’ll bet you serious money they would hear all sorts of differences between the two sessions with the same amplifier playing. This has been done in blind wine tasting and some of the greatest perceived differences were between identical wines poured from the same bottle (check out the wine tasting podcast interview).

UNLISTENABLE: This guy claims to have done a blind test with 5 people and 10 trials each between two pieces of gear. He further claims “Every listener described the Halcro as being 'unlistenable'”. I’m sorry but if something is so bad as to be “unlistenable” do you really think you need a blind test to figure that out? That’s like comparing a good Cabernet to drinking vinegar. Also, for what it’s worth, he doesn’t seem to understand the difference between THD and THD+N where the “N” stands for noise. What he’s really measuring isn’t distortion, as he implies, but the noise floor. I encourage everyone to apply common sense to what they read and consider the source.

Sennheiser HD650 Impedance New Green=Open Gold=Simulated HeadOUTPUT IMPEDANCE: I’ve talked a lot about the importance of output impedance. Since I wrote my Output Impedance article in February 2011, Benchmark Media published a paper of their own that explores it from some other angles. Both are well worth a read. The graph to the right shows the impedance of the HD650 both in free air and clamped on head. there’s a big broad impedance peak centered at about 90 hz. If someone uses an amp with a sufficiently high output impedance the frequency response will also have a broad audible peak centered around 90 hz. The higher impedance can also reduce the damping and increase distortion. Combined, this could cause what many might might describe as more “boomy” or “bloated” bass. Someone else, however, might think it sounds more “warm” or “full”. Regardless, the change would generally be considered the opposite of “thin” as used by Lieven. It’s possible his typical amp for the HD650 has relatively high output impedance so that’s what he’s used to and considers “normal” for the HD650.

LEVELS MATTER: If the level were just a few dB lower when Lieven listened to the O2 that would, relatively, make it sound more “thin” because of the Fletcher-Munson curves and psychoacoustics. Studies show even a 1 dB difference creates a preference for the louder source. But most publishing gear reviewers don’t even have an accurate way to match levels. That’s a serious problem.

TESTING ONE TWO THREE: As mentioned in the previous section, Stuart Yaniger, an engineer who designs tube audio gear, recently wrote an excellent print article titled Testing One Two Three (it’s not on the web that I know of). The article has excellent advice for how to properly conduct blind testing and he outlines some of his blind listening experiments:

  • The Bastard Box – The author made an audiophile grade box comparing a $300 audiophile capacitor with a $1 capacitor from Radio Shack with the flip of a switch. He correctly identified the audiophile capacitor in blind listening only 7 of 12 times. Pure random guessing would be 6 of 12. By the statistical guidelines for blind testing, he needed to be correct 10 of 12 times for a meaningful (95% confidence) result. He failed so Radio Shack wins. 
  • Audibility Of Op Amp Buffers – He strung together 10 cheap op amp buffers in series to effectively multiply their flaws and did a blind ABX comparison of no buffers vs ten buffers. He found he could reliably hear the difference, so a buffer was removed (down to 9) and the test repeated. In the end he found with 6 or fewer buffers strung together he could not reliably detect any difference. This is an excellent example of blind testing both demonstrating a clear difference and then demonstrating the opposite-no audible difference. Blind testing let the author easily find the threshold of audible transparency (6 buffers). It’s also further proof that op amps are not the evil devices many audiophiles think they are when even six cheap ones strung in series can be transparent enough to sound just like a piece of wire. See: Op Amp Myths.
  • Listener Fatigue – The author devised a method to compare two pre amps for detectable “listening fatigue” by devising a means to blindly and randomly listen to one or the other with two hour meters recording the total listening time of each. If one was less fatiguing, in theory, it should accumulate more total listening hours. After two months of listening to both there wasn’t what he considered a significant difference in the total times implying both had similar levels of fatigue or no fatigue.

WHY WE HEAR WHAT WE HEAR: James “JJ” Johnston has lots of experience in audio ranging from Bell Labs to DTS. He’s made many presentations on audio and has spoken at Audio Engineering Society events. He’s recently re-formatted one of his presentations into an online article entitled Why We hear What We Hear. It’s an interested read with some valuable technical information on how our auditory system works. His article is a primary reference for my earlier comments about how we filter sound. His information correlates well with information from neurologists and brain experts as well as multiple AES papers on listening bias. Here are some highlights:

  • Expecting Differences - Perhaps the most important thing to take away from Johnston’s work is on the last (fourth) page.  He explains how when we listen for different things we will always hear different things depending on what we expect to hear. In other words I can play the same track for a person twice, with everything exactly the same, but if they’re expecting a difference they will in fact hear a difference. It’s not an illusion, or anything they can control, it’s just how our auditory system and brain work. This was also demonstrated in the AES paper Can You Trust Your Ears where the listeners consistently heard differences when presented with identical audio.
  • Auditory Filtering – Johnston talks about our hearing system involuntarily filtering what we hear. There are two layers of “reduction” resulting in somewhere around 1/100,000 of the data picked up by our ears ultimately reaching our conscious awareness. This was discussed in the first section with examples provided.
  • Auditory Memory – Johnston points out our ability to compare two sound sources starts to degrade after only 0.2 seconds. The longer we go between hearing Gear A and Gear B the less accurately we can draw conclusions about any differences. And the longer the gap the more expectation bias creeps into what we remember. Our memory, like our real-time hearing, is by necessity highly selective. Our brains are constantly discarding large amounts of “data”. Other studies back this up including the AES paper Ten Years of ABX Testing which found near immediate comparisons were far more likely to detect differences than extended listening with at least a few minutes between changes. This is the opposite of the common erroneous belief that long term listening is more sensitive.

AUDIO MYTHS WORKSHOP: The Audio Engineering Society (AES) is made up of mostly audio professionals especially those involved with production work including CDs, movie scores, etc. Their conventions are heavily attended by recording engineers, professionals who make their living hearing subtle audio details, and the people behind the gear they use. At the 2009 Audio Myths Workshop a panel of four experts presented a lot of good information on what we think we hear and why. If you don’t have an hour to watch the video, or just want to know what to keep an eye out for, here are some highlights I found especially worthwhile:

  • The Need For Blind Testing –  JJ points out it doesn’t matter how skilled of listener you are, if you know something about the two things you’re trying compare, your brain is unavoidably going to incorporate that information into what what you hear and what you remember later. 
  • A Dirty Trick – JJ recounts a story about a fake switch being set up to supposedly switch between an expensive tube McIntosh amplifier and, in his words, a “crappy little solid state amplifier”. In reality the switch did nothing and, in either position, everyone was listening to the solid state amp. But the audiophiles listening unanimously preferred the supposed “sound” of the tube amp. They heard what they were expecting to hear. His engineer friends tended to prefer the solid state amp with only one claiming they sounded the same. This is further confirmation of expectation bias.
  • Stairway To Heaven – Poppy Crum demonstrated how it’s easy to hear most anything when you’re told what you should be hearing. She played an excerpt from Stairway to Heaven backwards and there’s not much in the way of discernable lyrics. Then she put a slide up with suggested lyrics and most can easily hear exactly what’s on the slide with a fairly high degree of certainty. This is somewhat analogous to reading someone’s gear review, buying the same gear yourself, and hearing what you’ve been told you should hear.
  • State Legilature – No that’s not a typo. Poppy Crum plays a news announcer clip multiple times with everyone listening carefully. The “S” in the middle of the word legiSlature was edited out and it goes largely unnoticed by the entire audience. The brain helpfully fills in the missing letter for you automatically. Despite listening carefully, the audience of audio professionals mostly fails to hear the obvious problem because their brains automatically “invent” the missing audio information.
  • Crime Suspect – They play a TV clip of a theft occurring in a classroom. The students are asked to identify the thief. Many are so certain they can pick the right guy from a photo line up they would testify in court. But, in the end, they not only pick different photos, but they’re all wrong despite their certainty. It’s further proof of how the brain filters and how unreliable our senses can be even when we think we’re certain.
  • Argue To The Death – They talk about experiences on various audio forums where people argue subjective claims to the extreme using the argument “you can’t prove it doesn’t sound better”. No, but we can prove if typical people under realistic conditions can detect any difference with blind listening. Here’s a humorous parody of a typically “passionate” forum discussion (about hammers) that’s, sadly, analogous to some audio threads I’ve seen.
  • Identical Results – Measurements can produce consistent, reliable, and repeatable results. I can test Gear A on Monday and re-test it a month later and get very close to the same result. That’s far from true with sighted listening tests where you can get very different results 10 minutes later if someone is expecting a difference. Further John Atkinson and I can measure a DAC and we should both get very similar measurements as long as we use accepted techniques and publish enough details about the test conditions. He can verify my measurements, and I can verify his, with a high degree of certainty. Without carefully controlled blind testing, that’s impossible to do by ear.
  • ethan winer audio myths audibilityTransparency – Ethan Winer, an acoustics expert, discusses how audio electronics can be defined as audibly transparent by four broad categories of measurements and he provides   criteria for complete transparency. He states that gear passing all these criteria will not contribute any audible sound of its own and in fact sound the same as any other gear passing the same criteria:
    • Frequency Response: 20 hz to 20 Khz +/- 0.1 dB
    • Distortion: At least 100 dB (0.001%) below the music while others consider 80 dB (0.01%) to be sufficient and Ethan’s own tests confirm that (see below).
    • Noise: At least 100 dB below the music
    • Time Based Errors – In the digital world this is jitter and the 100 dB rule applies for jitter components.  (photo: Ethan Winer)
  • Comb Filtering – This is a problem with speakers and it’s likely the source of some audiophile myths. Ethan demonstrates how even changing your listening position (where your ears are in the 3D space of the room) by a few inches can create very audible changes in the high frequency response. Let’s say you sit down to listen, then get up and swap out a cable and sit down again, but this time you’re leaning further back. You may well hear differences but it’s not the cable. It’s the nature of the room acoustics and comb filtering. This is in addition to all the other reasons you might hear differences unrelated to the cable.
  • Noise & Distortion Thresholds – Ethan sets up a noise track and mixes it with music at various levels to simulate similar levels of noise and distortion. I can still plainly hear the noise (on the WAV files) at –60 dB (0.1%) and barely hear it at –70 dB (0.03%) on the cello excerpt. It’s gone, to my ears, at –75 dB (0.018%). So my usual rule of thumb of –80 dB (0.01%) is further validated with some conservative margin for error.  When, for example, I point out dissonant inter-channel IMD in the AMB Mini3 amplifier reached –55 dB, DAC alias components in the range of –50 dB to –25 dB, or 1% THD (-40 dB) in a singled-ended or tube amp, Ethan has helped confirm it’s entirely plausible such distortion could be audible. Here’s a link to the audio files Ethan uses in the video. The cello example, (Example2 in the WAV files), starts at about 33:30 into the video. The noise starts out for two cycles at –30 dBFS, then two cycles at –40 dBFS, and so on. Listen for yourself! When you see a spec like 1% THD you can think about the plainly audible noise at –40 dB in Ethan’s examples. This is somewhat oversimplifying the entire audibility threshold issue but it’s a reasonable worst case approximation. In this case it’s best to error on the side of being too conservative (likely the reason for Ethan’s own –100 dB transparency criteria).
  • Phase Shift – Ethan demonstrates how even large amounts of phase shift applied at various frequencies is inaudible as long as it’s applied equally to both channels. What can matter is interchannel phase shift—any significant shift between the right and left channels. Relative phase is also critical in multi-driver or multi-speaker set ups (i.e. between a woofer and tweeter or front and rear speakers in a surround set up).
  • Null (Differencing) Test – Towards the end Ethan talks about how null testing (which includes audio differencing) not only reveals every kind of known distortion (THD, IMD, phase, noise, frequency response errors, etc.) but also even unknown kinds of distortion. You’re literally subtracting two signals from each other and analyzing/listening to whatever is left over. With test signals this is something the dScope audio analyzer can do in real time with analog, digital, or mixed domains—analog and digital. The dScope, in effect, subtracts the test signal from the output of the device and adds the required amount of gain to boost what’s left over up to a usable level. It’s a test that can bust a lot of myths about various things that are claimed to degrade an audio signal. It can be done, using music, driving real headphones or speakers, in the analog domain (i.e. Hafler and Baxandall method scroll down) or in the digital domain (i.e. Bill Waslo’s software from Liberty Instruments). Ethan presents a few examples including the next item.
  • Reverse EQ – Many people seem to think even high quality digital (DSP) EQ does irreparable harm to music. Ethan has an example where he applies EQ, then applies the exact opposite of the EQ, and then nulls (see above) the result with the original version (no EQ). He gets a near perfect null indicating even with two passes through the EQ DSP no audible damage was done.
  • Other Examples – Ethan has further demonstrations aimed more at recording work rather than playback. He does an interesting “bit truncation” demo but it’s done in such a way as to make comparing the bit depths difficult.

BLIND LISTENING GUIDELINES: There’s a lot of info on how to conduct reasonably valid blind testing and some of it gets very elaborate. But don’t let that scare you from trying it. If you’ve never tried blind listening before you might be surprised how quickly it opens your eyes—even a very simple test. As many wine critics have found out comparisons immediately become much more difficult when you don’t know which is which. You can get more meaningful results from just following some simple guidelines:

  • Compare only two things at a time until you reach a conclusion 
  • Always use identical source material with no detectable time shift between A and B 
  • Match levels to ideally 0.1 dB using a suitable meter and test signal
  • Watch out for unintentional clues that might hint at which source is which
  • Ideally perform enough trials to get a statistically valid result (typically 10 or more but even 5 can be informative)

TRYING ABX YOURSELF: Foobar 2000 has an ABX component and there are other free ABX options.  This is an excellent way to say compare 16/44 FLAC files with a high resolution FLAC file. There are files available at Hydrogen audio or you can make your own if you have any good 24/96 or 24/88 demo tracks. But always do a high quality sample conversion of the high resolution track to produce the 16/44 track. Or compare a 256K AAC file with a 256K MP3 file ripped from the same CD track. Etc. What’s important is you eliminate all other differences. The levels have to be the same, etc. Audacity is free and can be used for editing the files. If the tracks are not in time sync you can configure the ABX options to restart the track each time you switch.

FOOBAR ABX: There’s a YouTube Video on ABX testing with Foobar. The software and ABX component can be downloaded here. The listener can, at any time, choose to listen to amp A, amp B, or “amp X” which will randomly be either A or B and they won’t know which. The software keeps track of “X” and lets the listener vote when they feel they know if “X” is really A or B. A normally hidden running score is kept of the votes. After ten or more votes, the final results can be revealed and checked for a statistically valid result.  If a difference is detected the system can be set up by someone else so the listener doesn’t know which is A and which is B. They can then pick a favorite, again taking as much time as they like, without the unavoidable expectation bias that occurs when they know which is which.

A BLIND ANECDOTE: I received some cranky emails from someone who had read my Op Amp Myths article and basically said I must be crazy or deaf for not hearing the obvious differences between op amps. He was a serious DIYer who claimed to have designed and built a lot of his own gear. I suggested he rig up two identical pieces of gear so he could level match them and switch between them with both having socketed op amps allowing any two op amps to be directly compared. I figured he’d never bother. Much to my surprise the next email a few days later was an apology and he explained it was really eye opening and thanked me. I’m fairly sure he’s going to be approaching his future designs somewhat differently.

REAL ENGINEERING OR SNAKE OIL? I’m curious what others think of the $3995.00 BSG Technologies qøl™ Signal Completion Stage? It’s an all analog device (line-in/line-out) that, according to BSGT, “Reveals information that, until now, has remained hidden and buried in all audio signals”. How, I wonder, does it do that? The Nyquist Sampling Theorem dictates how much information can be reconstructed from a 16 bit CD. And a decent DAC, as far as I know, reconstructs all of it. In fact, a good 24 bit DAC can reconstruct data well below the 16 bit noise floor of a CD—i.e. the DAC is better than the CD itself. So, from what I know, every sample on the CD can be reliably and completely converted into an analog signal. Hence there should not be any “hidden information” on the CD. One can argue information got lost further upstream in the recording chain—i.e. at the microphones, due to the 22 Khz Nyquist bandwidth limit, etc. But that information isn’t even on the CD hence it would be quite a miracle if it could be reconstructed out of nothing. Anyone else have any theories on this nearly $4K device and their main marketing premise?

HAVE FUN! The above is just one example. I know several audio fans who have had fun discovering just what they can really hear and what they can’t using blind testing. It opens up an entirely new perspective and provides a new way to experiment with audio. It’s especially useful, and accessible, for DIYers.

March 1, 2012

ODAC Update

nwavguy-dscope-benchmarkODAC PROGRESS: As my articles have slowed to a trickle lately, hopefully these 5000+ words will be welcome news. After lots of professional and other distractions, I’m once again devoting serious time to the Objective DAC (aka ODAC). There’s been some good progress and I’m feeling better then ever about the ODAC’s performance. I’ve been comparing it with my Benchmark DAC1 Pre and it’s been eye opening in some areas. Keep reading for more details and further background on the ODAC design.

QUESTIONS (FAQ): Before you post questions or suggestions in the comments please have a look at the FAQ section below to see if your issue has already been addressed. I’ve tried to cover the popular questions and issues.

NOT FOR PROFIT: Please note I’m not selling the ODAC, just helping design it. Just as with my other projects, like the O2 portable amp, any profit from sales will be to whatever companies decide to have them made and sell them.

ODAC + ODA: The ODA, for those not following the history, is the Objective Desktop Amp. It’s essentially a future desktop version of the popular O2 portable amp with a few added features and upgrades. ODAC development is taking priority for now because the ODA will be partially designed around it. The ODAC can also be used with the O2 and as a standalone device.

FILLING A VOID: There are simply not many reasonably priced DACs supporting 24 bit operation over USB under Windows without needing proprietary drivers. While there are some low cost options on the market, at least some of them, such as the FiiO E10 and NuForce uDAC-2, offer barely more than 16 bit performance. There are even fewer options if you want a high quality 24 bit DAC with a low impedance output that can drive most popular headphones well (this leaves virtually all pro audio DACs out in the cold). The least expensive option I know of that’s been properly measured and performs well is the Centrance DacPort with the 1 ohm output upgrade. But it’s close to $500. Most DIY DACs, such as those from Twisted Pear and AMB, only support 16 bit operation over USB or they require proprietary drivers under Windows.

odac in o2 protoODAC + O2 RETROFIT: The ODAC fits neatly inside the O2 portable amp using the standard B2-080 enclosure by simply removing the batteries as shown to the right. One side sits in an enclosure slot while a mounting hole lines up with the central mounting hole on the O2 PCB anchoring the opposite side of the board. The battery terminals act as a “back stop” to absorb the force of plugging in a USB cable and the rear panel does the same when removing the plug. It worked out surprisingly well and I can’t take credit for this feat—my commercial counterpart came up with the idea and we mutually optimized the PCB layout to work with the O2. The retrofit requires a new back panel with an opening for the USB jack. At least one person has volunteered to design and hopefully sell a laser cut plastic panel for those wanting the O2/ODAC combo. Stay tuned for more but it’s a pretty simple retrofit that only requires soldering 3 wires at each end.

o2 off board input jack modificationO2 INPUT SWITCHING: Those who only want a USB headphone DAC (like the FiiO E10 or NuForce uDAC-2) can simply wire from the output header of the ODAC to the P1 input header on the O2 board. But for those who still want to use other sources (like an iPod, etc.) with their O2, you can have your cake and eat it too. Once you cut the traces shown to the right you can wire the ODAC to terminals 3 and 4 of the input jack. These lead to internal switches in the jack and will connect the ODAC only when nothing is plugged into the O2.

ODAC STANDS ALONE: If you just want a DAC with no preamp or headphone amp, the ODAC can be used by itself as a USB powered 24/96 DAC. Because it supports 24 bit operation over USB there’s little or no penalty using only a software volume control or you can control the volume downstream of the ODAC. The board measures about 49mm x 58mm (1.9 x 2.2 inches) and will fit in many small enclosures such as the Box Enclosures B1-080. There are also several inexpensive eBay DIY enclosures that would work. Ignoring the output jack, it’s only about 4mm in total thickness as it’s entirely a surface mount design This allows it to easily “piggy back” on top of other boards, etc. In the O2 tradition, it has three mounting holes (geeks know 3 points determine a plane and 4 just mess things up ;). The components are also held back from two opposing edges for slot mounting. There’s a provision on the board for a 3.5mm stereo output jack that’s on the same edge as the USB connector requiring only one machined (or laser cut) panel. DIYers can also panel mount 3.5mm or RCA output jacks or simply build the ODAC into other gear. The ODAC can be connected to any input that accepts standard Redbook 2 Vrms line level audio and has at least a 10K input impedance.

O2 DESIGN PRINCIPALS APPLIED – The O2 was implemented using well proven design techniques and countless rounds of measurements and refinements. The result is performance well beyond what most would expect from the O2’s modest and inexpensive components. The O2’s popularity has shown this design methodology is valid. Put simply, the O2 has proven far greater than the sum of its parts. I applied the same approach to the ODAC design. While it uses relatively modest components, it delivers performance well beyond what most would expect given the cost and components used. The ODAC closely follows the chip manufacturer’s reference design information and has been carefully optimized through several iterations. Using a professional mixed domain audio analyzer, like the Prism dScope, enables a level of performance refinement that would otherwise be all but impossible. This gives the ODAC a huge advantage over most DIY DACs and products from small manufacturers lacking proper test equipment.

THE AUDIO ANALYZER ADVANTAGE: To make meaningful measurements of a DAC you need an ADC with a noise floor significantly (at least several dB) lower than the DAC’s noise floor. Otherwise you’re measuring the ADC as much (or even more so) than the DAC. Such an ADC is increasingly hard to find once you get up to Benchmark DAC1 levels of performance. The Prism Sound dScope, however, has a noise floor of just over 1 microvolt or around 126 dB below the Redbook standard of 2 volts. Even my $1800 Benchmark ADC1 can only manage a best case 119 dB and less expensive audio interfaces are typically significantly worse. It’s also extremely useful to have an audio analyzer capable of real time mixed (analog and digital) domain generation and analysis. A product like the dScope, or a high-end Audio Precision analyzer, is about the only way you can properly measure and develop a high performance 24 bit DAC. Otherwise the true performance is masked by the ADC you’re using and the limitations of using PC software that cannot do anything in true real time because of the PC’s operating system. Input isolation is also a significant issue. Using RMAA typically requires sharing the DAC’s USB ground with the ADC’s ground which, in itself, can create all kinds of erroneous results and ground loops. Properly testing a high performance DAC requires more than just another PC audio interface. You need specialized hardware designed for the purpose.

THE OTHER WAY: Lots of DIY, and even some commercial DACs, seem to be little more than a few trendy popular chips slapped onto a nice looking PC board. If their designers conducted the proper measurements along the way, where are their published results? You generally have to look at expensive products like those from Centrance, Benchmark Media, and Anedio to find meaningful DAC measurements. Some designers and companies simply quote highly misleading specs from the DAC IC datasheet but, as I’ve shown in my reviews, the results often fall far short. A good example is the FiiO E10 that only delivers roughly 16 bit performance even running at 24 bits. Some companies, like NuForce, Audio-GD, and Twisted Pear, argue they “design by ear” but the unavoidable human bias associated with such sighted listening is well documented.

IT’S ABOUT WAY MORE THAN THE RIGHT PARTS: Using high-end parts is meaningless if the implementation is (often unknowingly) flawed. It’s like putting a Ferrari engine in a Yugo or using ultra fast RAM in a PC with a slow processor and chipset. It’s pointless. Just as cars are defined by far more than just their engine, and PC performance depends on several subsystems all working well together, the same is true of audio gear. The best products are from manufacturers that conduct proper testing and have the resources and desire to sweat all the little details rather than just using the latest FOTM parts and making it look nice.

FOLLOW THE PROFITS: Sadly a lot of “specialty” audio designers and companies seem to depend mainly on subjective hype and sighted listening bias, rather than proper design and objective performance, to sell their products. One can argue some are mainly trying to cash in on the latest FOTM craze rather than investing the time and money to design genuinely solid gear. It’s one of the goals of this blog to help not only expose half baked designs for what they are, but also demonstrate better alternatives don’t have to be be expensive or made with dual phase aligned unobtanium.

SMALL CHANGES CAN EQUAL BIG IMPROVEMENTS: I’ve sometimes been amazed how even small changes have made fairly large differences in the ODAC’s performance. Several of the ODAC’s optimizations run counter to typical DIY audiophile beliefs. Here are a few examples of typical design myths:

  • Larger Value Capacitors Are Better – “Upgrading” certain power supply capacitors to larger values made the ODAC perform significantly worse compared to using the values specified in the chip manufacturer’s reference design. Bigger value caps often have higher ESR, more inductance, and much higher impedance at very high frequencies. They can also create other problems.
  • Top & Bottom Ground Planes Should Be “Stitched” Together – Stitching is the practice of applying a board-wide grid of small vias (plated through holes) that connect the top and bottom ground planes. Some argue this lowers the ground impedance and keeps ground paths shorter. But they’re not true ground planes on a 2 layer board. Instead you have a bunch of ground fill areas isolated by signal and power traces. When you have these “ground islands” rather than a true continuous ground plane, the stitching can easily create undesirable ground loops and send ground currents where you don’t want them. I’ve seen several DIY and commercial designs ignore this issue and other proper grounding practices.
  • Expensive Audiophile Dielectric Capacitors Work Best – I experimented with various types of poly film caps, including audiophile preferred SMT Polyphenylene Sulphide (PPS) types, and found they sometimes made things worse. I also discovered not all ceramic caps perform equally. There’s no simple rule of thumb that always works. You have to make the right measurements and sweat the details. It’s time consuming but proved worth it. Every capacitor associated with the DAC chip and analog circuitry of the ODAC has been carefully optimized using the dScope. Overall, my capacitor tweaking resulted in lowering the noise and distortion by more than 6 db. And, trust me, the final result is not what your average DIYer would intuitively think is best.
  • Fully independent Analog & Digital Power Supplies Improve Performance – While there are probably a few high-end DACs that measure slightly better with fully independent digital and analog power supplies, the reality is the DAC chip itself and related digital noise is more likely the dominant limiting factor. I’ve shown, with multiple measurements and tests, the power supply is not holding the ODAC back in terms of performance. And while there’s some carefully designed filtering and ground routing between the analog and digital sections, they’re both derived from the same source. A DAC will only perform as well as its weakest link allows. In an optimized design that weak link is usually the DAC chip and/or a certain amount of unavoidable noise from the USB and I2S digital buses. When that’s true, adding more esoteric power supplies won’t help much if at all.

PCB LAYOUT IS EVERYTHING: I can’t stress this enough. Just as the O2 board was designed for “function over form” so was the ODAC. Many DIYers and audiophile manufacturers want to show off their PC boards. So they often lay them out at least partly to look nice. That almost always means the performance suffers. In the case of a 24 bit DAC I’ve learned it might suffer quite a bit. Keeping the noisy digital signals out of the analog side of a DAC becomes challenging once you get past about 17 bit performance. And for those trying to judge if they got it right by using RMAA and a sound card, or an 8 bit oscilloscope with only 40 dB of dynamic range, good luck with that (see The Audio Analyzer Advantage above and my RMAA article for why). And good luck using typical sighted listening tests to verify a PCB layout.

BENCHMARK DAC1 REFERENCE TARGET: The Benchmark DAC1 models have been widely reviewed and praised—especially for their excellent measurements, sound quality, and hassle free 24 bit high resolution USB support. Hopefully many agree the DAC1 Pre is a worthy reference target to judge the ODAC against. While it’s a bit like putting a Mazda MX5 Miata up against a Porsche 911 it’s still a worthy goal. When I present the ODAC’s final measurements I’ll show many of the same results for the Benchmark and everyone can judge the end result for themselves. I’ll also be comparing the ODAC to the FiiO E10 as it’s probably the ODAC’s closest current 24 bit USB competitor in terms of cost and might even include a few pro audio interface results as well.

PRELIMINARY BLIND TESTING: In preliminary blind comparisons between the ODAC prototype and my DAC1 Pre, they sound the same. I’ll be doing more involved blind tests, but the initial results are very promising. If this trend continues I’ll be adding an “ODAC Public Blind Challenge” to my existing O2 and op amp blind challenges. If someone thinks they have a DAC that measures well and sounds better, let’s find out!

DESIGNED AND (for now) ASSEMBLED IN THE USA: This may not matter to everyone, but living in the USA myself, it’s something I take at least some pride in. Steve Jobs famously told President Obama “those jobs are not coming back” referring to Apple making nearly everything in China. And while Apple products are generally made to a high standard in China they’re still designed in the USA. The same cannot be said for a lot of reasonably priced “boutique” audiophile gear. NuForce, Audio-GD and FiiO are a few examples with well documented, and sometimes embarrassing, problems. And, based on what I’ve seen, a lot of the gear being sold mainly on eBay and direct out of Asia can be even worse.

USB POWER ADVANTAGES: A self powered DAC that operates entirely from USB power has a number of practical advantages:

  • One Size Fits More – Because the ODAC needs to be commercially assembled in volume using automated equipment it’s much more cost effective to have a single version that works in the O2, ODA, standalone, and can be added to other DIY or commercial designs. USB power is virtually required to make this possible. Higher volume manufacturing of a single board brings the price down for everyone.
  • O2 Compatibility - The O2 has a dual +/- 12 volt power supply delivering around 200 mA peak to each channel of the amplifier. The ODAC requires around 125 mA at a far lower voltage. The O2 cannot power a high quality DAC without adding a switching regulator or DC-DC converter which would add noise and still tax the O2’s power supply. There’s also no physical room for the added hardware. So USB power is the only viable option for the ODAC in an O2.
  • Stand Alone Operation – For those wanting to use the ODAC by itself, USB power has a clear advantage. It eliminates the need for another power supply and is especially desirable for portable use.
  • No Enumeration Problems – Some USB interface ICs are designed to be USB powered. They will not enumerate correctly with the host device if they’re already powered when the USB connection is made. This can necessitate using USB power for the interface chip while using a different power source for the DAC chip. This creates various other challenges including the next point.
  • No Unpowered Inputs - USB power also simplifies problems associated with having unpowered IC’s connected to powered ICs. Digital ICs that are not powered don’t generally like being connected to ICs that are. It can result in a potentially destructive condition where the normally high impedance inputs of a powered IC represent a low impedance when the IC has no power. The powered IC pumps abnormal levels of current into the unpowered inputs. When power is applied with the IC in this invalid state it can “latchup” and draw large amounts of power supply current destroying itself. Some of the solutions to this problem can degrade jitter performance because the I2S bus is subject to this issue on a USB DAC with a split power scheme. Powering the entire DAC from USB power neatly solves these problems.

USB POWER CHALLENGES:  USB power also presents some challenges:

  • Potentially Greater Noise -  USB power is more of an unknown compared to a dedicated power source. So it requires extra filtering and careful design to avoid degrading the performance of the DAC. This is especially true when you’re aiming for much better than 16 bit performance. The USB powered FiiO E10, Creative X-Fi Go, and NuForce uDAC-2 all promise 24 bit performance but only deliver around 16 bit performance. Likewise, when running from AC power, the latest MacBook Air also fails to deliver better than 16 bit performance from its 24 bit DAC due to extraneous power-related noise.
  • Audio Output Voltage - USB power can be as low as 4.5 volts, and when you add in losses from power filtering and the DAC/op amp circuitry, you’re lucky to get 4 volts peak-to-peak of output swing without clipping. That works out to 1.4 Vrms which is a significant 3 dB shy of the 2.0 volt Redbook standard for digital devices. That’s 3 dB of potential dynamic range lost and a 3 db drop in level compared to normal home sources (like a CD player, network media player, etc). Indeed most of the USB DACs I’ve tested, and even popular DIY DACs like the AMB gamma, have this shortcoming.
  • Capacitor Coupled Outputs - A single-ended DAC power supply usually requires an output coupling capacitor to block the 1/2 Vcc voltage at the DAC output. Such a capacitor, to drive a 10K load, needs to be a fairly large value to avoid low frequency roll off and excessive phase shift. It also should be a high quality film, rather than electrolytic, type. But many USB powered DACs, in the interest of saving money and space, use electrolytic or otherwise compromised output capacitors. This is even true of some audiophile DIY designs like the AMB gamma.
  • Power Related Jitter - Power and ground “pollution” at various frequencies can have a significant impact on jitter performance. Noise from the power supply can, in effect, modulate the digital bit stream creating jitter.
  • USB Maximum Current Limit - While the USB ports on any PC or laptop made in the last 6+ years can nearly always supply 500 mA of current there are some exceptions. There are a few ultra low power netbooks that have 100 mA USB ports and unpowered USB hubs are also, at least in theory, limited to 100 mA per port. I’m not sure about iPads and Android tablets but I suspect they may be rated for only 100 mA as well.

ODAC POWER DESIGN – The above challenges can be largely or entirely overcome with careful design and by using the right components. Here’s how the ODAC addresses them:

  • Power Noise Below the DAC’s Noise Floor – It turns out ground and conducted (electromagnetic) noise are typically as significant as noise on the USB power line. Because a connection to the PC’s ground is required regardless, simply using an external power supply doesn’t automatically mean freedom from USB bus noise. With the ODAC the solution involved careful routing of ground currents, different power supply conditioning for the digital and analog sides, careful capacitor selection, and inductive filtering. The result is the latest prototype’s noise floor is mainly determined by the DAC IC itself not the USB power bus. Put another way, an independent power supply wouldn’t make much difference.
  • Redbook Standard Audio Output Voltage – The ODAC delivers delivers the Redbook standard output of 2 Vrms without clipping by using a bipolar power supply. This alone adds roughly 3 dB of dynamic range to the ODAC’s performance compared to many USB powered DACs.
  • Direct Coupled Output – The ODAC uses a ground referenced split supply so no virtual ground or output capacitors are required. This assures accurate low frequency amplitude and phase response with no bass roll off and avoids potential capacitor-induced distortion.
  • Power Related Jitter – The ODAC’s power filtering was optimized not just for the best noise and distortion performance but also for the lowest jitter. Interestingly some of my attempts at filtering did help lower the power supply noise but increased the jitter. The dScope’s J-test proved invaluable in optimizing the PC board layout and power supply design for simultaneously low jitter and low noise.
  • USB Current Limit – I’m not aware of any 24 bit USB interface and high performance DAC ICs that, combined, come in safely under 100 mA total. The bipolar power supply that allows a 2 volt output does require a bit more power. And the choices in 24 bit interface chips are very limited. The only way to keep the total budget under 100 mA would involve a much lower performance DAC and that’s not an acceptable trade off. The good news is I’ve tried the ODAC on many PCs, including two netbooks, and it works fine. It even worked on an unpowered USB hub despite being slightly over the 100 mA limit.
  • Worst Case – If someone does encounter a USB port that is either extremely noisy or can’t provide 125 mA of current, the solution is simply to use a powered USB hub. They can be purchased for as little as $20 or so.

SO HOW QUIET IS IT? Using the industry standard A-weighted dynamic range test with a –60 dBFS signal, the current ODAC prototype has an impressive 112 dB of dynamic range. How good is that? My $1600 Benchmark DAC1 Pre, on the exact same test referenced to the same 2 volts, is slightly worse at 111 dB. CD quality audio, in comparison, has only 96 dB of dynamic range. I should note if you have an application where you can use the DAC1’s full 7+ volts of output, it can manage 116 dB of dynamic range referenced to it’s maximum output. So you do get something for your extra $1500.

ENOB: ENOB stands for Effective Number of Bits and is another measure of a DAC’s performance. No 24 (or 32) bit audio DAC can achieve true 24 bit performance, In fact, 20 ENOB is generally considered the “Holy Grail” of real world DAC performance. The ODAC is just under 19 ENOB and the Benchmark, even referenced to its full 7+ volt maximum output, is 19.3 ENOB. The FiiO E10, even in 24 bit mode, is only 16.2 ENOB.

DISTORTION: The ODAC prototype on a standard –1 dBFS 1 Khz signal has about 0.003% THD+N while the Benchmark DAC1 is only slightly lower at 0.0025%. The ODAC, on every distortion test I’ve run, is well below my ideal 0.01% maximum THD+N. That’s true even at 0 dBFS which wrecks havoc with some DACs (like the NuForce uDAC-2). The ODAC’s performance does not noticeably degrade in any way at 0 dBFS so I can officially certify it Lady Gaga compatible (scroll down to Lady Gaga In Audacity here).

JITTER: You can’t put a single number on jitter performance but I’m quite happy with the ODAC’s results so far. It can’t match the expensive ASRC jitter reduction used in the Benchmark DAC1 but it’s significantly better than most DACs, including the FiiO E10, and several of my pro sound audio interfaces. The ultimate proof will be in the blind listening tests.

IT MAY GET EVEN BETTER: It’s a bit like peeling an onion. As you improve one area of the design, the lowered noise and distortion reveals other areas that can benefit from refinement.While there was some hope the version on my bench now would be close to the final production ODAC, we’ve decided to go one more prototype iteration and incorporate several more incremental improvements. Some of those changes may improve the performance still further but it’s hard to know by how much. When it’s all said and done there will be at least 4 generations of ODAC PC boards. Despite the more than acceptable performance of the current prototype we’re not done chasing the Benchmark DAC1 yet.


FAQ (please have a look here before posting questions!)


WHAT WILL THE ODAC COST?: The ODAC is still on track to hopefully come in under $100 for a completely assembled, programmed and operational board ready to slip into an O2 or the upcoming ODA. If you want a standalone DAC you have to add at least a few bucks for an enclosure, panel and output jack. We won’t know the final pricing until the production design is bid out for assembly.

WHEN WILL THE ODAC BE AVAILABLE? Given we have another prototype cycle ahead of us the best case is likely late April if all goes reasonably smoothly. But that could slip into May or even later if there are unforeseen problems.

IS THERE AN OFFICIAL ODAC FORUM THREAD? Not yet but I’ll post an update as soon as there is.

CAN I BUILD MY OWN ODAC? Unfortunately no. The ODAC will be offered only as an assembled board. Please see the next question. (PS – You probably wouldn’t want to anyway. It has a lot of 0603 components which are really tiny and a fine pitch quad IC package which are no fun to work with).

WHERE IS THE SCHEMATIC & PARTS LIST? As explained in the first ODAC article, there are no DIY-friendly 24 bit USB audio chips that meet the design criteria. So we’re forced to use components licensed for OEM use that are not available through normal distribution. Even the datasheets are marked confidential and access to the interface chip requires signing an agreement. Given the ICs have to be purchased direct from the manufacturer in substantial minimum quantities it’s not reasonable to expect someone to make a substantial initial investment only to undermine them by giving the same design to other commercial interests. It would be a bit like designing a new car for Ford and then saying “oh by the way we’re also giving this to the Volkswagen Group, General Motors, and anyone else who might want it. You better hope there’s enough sales volume to divide between all of you.”  Having the ODAC be an open source design would only increase the financial risk and the end result could easily be a “chicken and egg” situation. Everyone might choose to wait and see who else might choose to produce the DAC. And, regardless, individual DIYers can’t get the required parts anyway. Hopefully everyone can understand it’s only fair the person taking all the initial risk, and spending the money up front, should not have the rug potentially pulled out from underneath them by sharing the same design to anyone with the commercial means to produce it.

WHAT DAC AND INTERFACE CHIPS DOES THE ODAC USE? For the same reasons we’re not releasing the schematic, we’re not yet releasing certain other details yet either. Please see the question above.

IS THE ODAC BASED ON THE XMOS USB INTERFACE? No. The XMOS solution requires a proprietary Windows driver that must be licensed for a fee. We also don’t believe the XMOS chip offers any real world benefits in this application. See the next two questions.

IS THE ODAC USB AUDIO CLASS 1 OR CLASS 2 COMPLIANT? The ODAC is USB Audio Class 1 (UAC1) compliant because it’s the only standard that allows native 24/96 support in Windows, OS X and Linux without any special drivers. USB Audio Class 2 (UAC2), while newer, offers no meaningful advantages for 2 channel audio playback and is not yet natively supported in Windows. Its main benefits are for multi-channel audio and recording at 24/192. Some of the best performing DACs available at any price are UAC1 devices (including the Benchmark DAC1 series).

IS THE ODAC ASYNCHRONOUS There’s a lot of marketing and other hype lately surrounding asynchronous DACs. Much of it is myth. Just like op amps got a bad name from the old 741 released many decades ago, so did USB audio based on early synchronous designs. But most modern USB audio devices use an adaptive interface where a local clock controls the DAC and is only loosely coupled to the PC’s timing. Contrary to popular belief, with an adaptive interface the data is not directly clocked by the USB port. This method has been refined over the years and can work very well. It’s also natively supported by all major operating systems. Most methods of true asynchronous USB audio require proprietary drivers under Windows and proprietary drivers are rarely a good thing. Judging a USB DAC by whether it’s asynch or adaptive is a bit like judging a car by the engine configuration—i.e. an inline six in a BMW vs a V6 in a Nissan GT-R. Other aspects of the design are more likely to limit the performance and there are plenty of examples of outstanding USB DACs using adaptive interfaces.

WHAT DIGITAL FILTERING DOES THE ODAC USE? Another trendy DAC topic is the type of output filter. It’s mostly about chip and DAC marketing types dreaming up added ways to differentiate their products. But, ultimately, what matters most is the measured performance at audible frequencies and listening tests using proper blind techniques. Judged by those criteria, I’m not sure either filter has an overall advantage. I have not seen any credible blind listening tests that support one filter type sounding better than the other. The ODAC, like many great DACs, uses a linear phase filter. Just like with asynch vs adaptive, there are many other variables that determine the overall performance. You have to consider the entire product as a whole. It’s foolish to dismiss a BMW or Porsche because the engine cylinders are not arranged in a “V” because, ultimately, that’s only a small part of a much bigger picture.

WHAT AUDIO FORMATS DOES THE ODAC NATIVELY SUPPORT? The ODAC supports 44, 48, and 96 Khz each at 16 or 24 bits. 24/192 is not natively supported by Windows over USB, nor does it offer any audible advantages for audio playback (in fact most DACs that support 24/192 perform worse at 192 Khz than at 96 Khz).

ARE YOU PLANNING TO MAKE MONEY OFF THE ODAC? No. I will not get any money from ODAC sales. Someone else is taking all the financial risk and coordinating all the manufacturing and sales logistics. If the ODAC proves popular, any profit is rightfully all theirs. Frankly, given the 4+ design iterations, steep minimum order quantities, and all that’s gone into it so far, they might be lucky to break even. But it’s ultimately no different than JDS Labs and Epiphany making a profit selling the O2. For me this remains an entirely not-for-profit blog and endeavor.

WHERE ARE THE MEASUREMENTS? Given the performance may change (hopefully for the better) with the next iteration it would be a lot of wasted work to publish detailed measurements and graphs only to do it all over again once we have the final design done. I made that mistake with the O2.

WILL THE ODA BE OPEN SOURCE? Yes it will. The ODA will be just like the O2, and anyone who wants to sell the ODA + ODAC can likely negotiate buying assembled ODAC boards with some sort of quantity discount. They might even want to weigh in before the initial production quantity is determined.

WHY NO S/PDIF INPUT? I know there have been several requests for S/PDIF, but as was explained previously, it’s not a trivial or even logical addition. To summarize, here’s why:

  • O2 Compatibility – Having the ODAC fit inside the standard O2 is a pretty cool thing. O2 compatibility seems to have more interest than S/PDIF support. It would be very difficult to add an option for S/PDIF and still have the ODAC fit in the O2. If it’s even possible with a 2 layer board it would require components on both sides which would substantially raise the price for everyone. And it would likely have inferior performance due to a less than optimal PCB layout. Likewise splitting the ODAC into two different boards would also raise the cost in multiple ways.
  • S/PDIF Doesn’t Fill a Niche – There are lots of 24 bit capable S/PDIF DACs as it’s much easier and cheaper to implement compared to 24 bit over USB. Even the $25 FiiO D3 does 24 bit over S/PDIF. But there is a shortage of reasonably priced 24 bit USB DACs. See Filling A Void near the beginning of this article.
  • No Native Support - There are very few suitable 24 bit USB audio compliant (i.e. driverless) interface ICs available. Likewise there are not many relatively high performance DAC chips that work well in a simple 24 bit USB DAC design without a microcontroller. The chips used in the ODAC lack native support for an alternate S/PDIF or second I2S input and the lack of a microcontroller complicates things further.
  • More Jitter – Adding an S/PDIF input option would mean “breaking” the I2S bus between the USB interface and the DAC to allow the insertion of an S/PDIF interface and/or switch. Ideally, for lowest jitter, you want to keep the I2S routing as short, clean, and direct as possible. With the current PCB size adding S/PDIF could easily compromise the jitter performance.
  • Possible Future Version – There is more room in the ODA and it’s possible there may be a more expensive version of the ODAC someday as a “plug and play” replacement for the current ODAC. Such a DAC would likely use more expensive components and possibly a 4 layer PCB raising the performance bar even higher and could also more easily include an S/PDIF input. That way the cost is kept as low as possible for the mainstream version and those who want more can pay more. I also expect some better 24 bit USB audio interface ICs to come on the market compared to what’s available now. Some might even more DIY-friendly and suitable for an open source design.