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SmartData Collective > Analytics > Predictive Analytics > Why Can’t We Just Use Prediction Markets?
Predictive Analytics

Why Can’t We Just Use Prediction Markets?

Daniel Tunkelang
Daniel Tunkelang
6 Min Read
Why Can’t We Just Use Prediction Markets?
Illustration generated with FLUX.2 [klein 4B] via Cloudflare Workers AI.
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Prediction markets were all the rage a few years ago, two of the most notable being the Iowa Electronic Market forecasting electoral results and the now defunct Tradesports offering a similar platform for betting on sports events. There was even a proposal to have the US government run a prediction market for terrorist attacks.

In a prediction market, any event with a quantifiable (e.g., binary) outcome can be converted into an asset. At any given time, the asset value corresponds to the market prediction of the probability of the outcome. Just as in any security market, participants determine the value through their buying and selling actions. In principle, this framework allows any event with a quantifiable outcome to be predicted by a marketplace.

But, at least from my vantage point, prediction markets have not had a broad impact on decision making, despite all of the “anys” in the previous paragraph. Outside of political forecasting and sports gambling (and of course finance itself), I’m not aware of any groups outside of academia that invest significantly in the use of  prediction markets. Sure, there’s the Hollywood Stock Exchange that applies the fantasy sports concept to the movie industry and even startup Empire Avenue that aspires to generalize this idea even further into an “online influence stock exchange”. Still, I think it’s safe to say that prediction markets have had limited traction to date.

Many people do, however, believe that we can harness the wisdom of crowds. In particular, we as consumers rely on reviews and recommendations to inform our decisions about what to buy, read, etc. Because those decisions have financial implications for sellers, the world of online reviews has an adversarial element, where review systems face manipulation by those who would shill their own products or services. As a result, it is never clear how much we as consumers should trust the reviews we read to be sincere, let alone useful.

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Which brings me back to prediction markets. Unlike most venues for soliciting collective opinion, prediction markets offer a strong incentive for accuracy. Betting on whether readers will like a book is quite different than simply offering a review that asserts an opinion without any risk to the person making the assertion. It is possible to manipulate a prediction market (e.g., by flooding it with high bets), but research suggests that such manipulations are short-lived and in fact expose the manipulator to significant financial risk when the price re-stabilizes.

So why don’t we use prediction markets instead of relying on reviews and recommendations? Perhaps we should, and it’s just a matter of time until entrepreneurs build successful businesses around this idea. But I suspect that much of the value of user-generated content today comes from contributors not thinking in market terms. While using prediction markets could solve the problem of shill reviews, it might also scare off the altruists.

Still, it seems to me that we should look for more opportunities to incent accuracy. Even altruistic reviewers have an interest in establishing their credibility, at least if that credibility determines the propagation of they opinions they share (perhaps I’m conflating altruism with egotism). The challenge may be to implement a marketplace that deals in the social currency of reputation than the hard currency of cash–while avoiding the sort of virtual currency that many people see as meaningless.

Can we obtain the benefits of market dynamics and still take advantage of the less rational motivations that drive some of the best online reviews today? I hope there are people who feel incented to work on this problem!

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