🐱 Stop calling it bias. AI is racist

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Robert Williams was wrongfully arrested earlier this year in Detroit, Michigan on suspicion of stealing five watches from a store. Police responding to the scene of the crime were given grainy surveillance footage of what appeared to be a black male absconding with the items.

Rather than perform an investigation, the police ran the footage through a facial recognition system that determined Williams was the suspect. The police then printed the image from Williams’ driver’s license and placed it in a “photo lineup” with other Black men’s faces.


The police showed the lineup to a security guard at the store where the crime occurred. Despite having not witnessed the crime, the guard decided the individual in the surveillance footage was Williams.

That was enough evidence for the police: Williams was arrested on his front lawn while his wife and two daughters watched.

But Robert Williams was innocent. Facial recognition systems can’t properly distinguish between different Black faces.

According to the ACLU:

It wasn’t until after spending a night in a cramped and filthy cell that Robert saw the surveillance image for himself. While interrogating Robert, an officer pointed to the image and asked if the man in the photo was him. Robert said it wasn’t, put the image next to his face, and said “I hope you all don’t think all Black men look alike.”
One officer responded, “The computer must have gotten it wrong.” Robert was still held for several more hours, before finally being released later that night into a cold and rainy January night, where he had to wait about an hour on a street curb for his wife to come pick him up. The charges have since been dismissed.
If Williams hadn’t seen the image for himself, he wouldn’t have been able to dispute it as the only piece of “evidence” of the crime he was wrongfully accused of. At a minimum, Williams would have been forced to either post bail or stay in jail awaiting trial — a trial where he would have been forced to prove his innocence. At worst he risked being seriously injured or murdered during his arrest.

Sure, the algorithm’s gotten it wrong before. But this time was special. Williams got lucky. The justice system rarely admits it lets computers make decisions.

Police and their attorneys usually bypass the implication that AI tells the cops who to arrest by claiming these systems, facial recognition in this case, are just investigative tools. A human, we’re told, makes the ultimate decision.

Like I said, Williams was lucky. Most people discriminated against by AI never get to see the evidence against them, especially when it can’t be represented in a simple-to-understand format like an image.

The problem isn’t that this particular AI is racist. The one that cops used in lieu of conducting an actual investigation wasn’t anomalous, it’s the norm. All AI is racist. Most people just don’t notice it unless it’s blatant and obvious.

Recall Tay, the innocent chatbot Microsoft built to learn from the people it interacted with online. It took no time at all for Tay to become the chatbot version of an online racist. People could easily see that Tay was racist. Microsoft apologized and took it down immediately.

But Tay wasn’t designed to produce outcomes for people. Tay’s output wasn’t weighed in decision making processes that affect humans. All of Tay’s racism is right up-front where you can see it. Tay was merely an experiment in data bias

The truth is that when robots aren’t being explicitly racist by outputting plain-language racial epithets, the general public assumes they’re unbiased and trustworthy. But racism, as a concept, isn’t calling a Black person the “n” word or drawing a swastika on a Jewish person’s home. Those are acts of racism conducted by racists.

Racism isn’t a collection of individual actions that we can point to. Racists are hell-bent on measuring racist acts because it helps create the illusion that racism only exists if we can prove it.

But AI isn’t a racist being like a person. It doesn’t deserve the benefit of the doubt, it deserves rigorous and constant investigation. When it recommends higher prison sentences for Black males than whites, or when it can’t tell the difference between two completely different Black men it demonstrates that AI systems are racist. And, yet, we still use these systems.

Put another way: AI isn’t racist because of its biased output, it’s biased because of its racist input and that bias makes it inherently racist to use in any capacity that affects human outcomes. Even if none of the humans working on an AI system are racist, it will become a racist system if given the chance.

An AI that, for example, only determines the air temperature will become a demonstrably racist system if it is adapted in any capacity to produce output impacting outcomes for people of different races where at least one group is white and at least one group is not.

Wherever racial bias is measurable in AI, we find it.

A system trained exclusively on Black faces will typically not be as robust as the same system trained on white faces. And if you train a system on both white and Black faces simultaneously, it will produce better outcomes for white faces.

The reason for this is very simple: AI doesn’t do many different things. It sorts and labels. Sometimes it makes guesses. That’s about it.

When AI makes inferences, and those inferences involve the potential for racism, it makes racist inferences. This is because white is the default in technology and in many of the societies that have the greatest influence on the field of technology.

We just usually don’t notice the racism until it’s as easy to see as Tay’s foul language.

It’s only considered acceptable to profit off of and use products that serve white men above all others because racism is the default.

The fact that we still use these racist AI systems indicates that society generally views the concept of better outcomes for whites as acceptable. That’s the very definition of systemic racism.
 
The police then printed the image from Williams’ driver’s license and placed it in a “photo lineup” with other Black men’s faces.


The police showed the lineup to a security guard at the store where the crime occurred. Despite having not witnessed the crime, the guard decided the individual in the surveillance footage was Williams.

The 2 most important lines in the story glossed over and spun. Dude was arrested based on eye witness testimony of security not racist AI. If they'd went straight from the AI to arrest it'd be fucked up.

"Despite having not witnessed the crime" Yeah but they did see the person enter and leave the store, or did the nigga use teleportation to get to and from the scene of the crime? Journalists are fucking awful.
 
An AI that, for example, only determines the air temperature will become a demonstrably racist system if it is adapted in any capacity to produce output impacting outcomes for people of different races where at least one group is white and at least one group is not.

Every day I check the temperature by googling the local weather report. I had no idea by doing this I was part of the problem. #BlackLivesMatter #DefundThePolice
 
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You know I'm right!
 
All this anti science BS really makes my blood boil. The author is an active detriment to humanity and he should neck himself.
 
  • Predictive policing systems are demonstrably racist. You ask it where crime will happen and it directs you to where police have the densest historical presence. It doesn’t predict crime, it demonstrates that cops spend more time policing Black neighborhoods than white ones.
Ok, correlation doesn’t equal causation. But at the same time, the alternative is that police only patrol black neighborhoods more to waste resources.

  • Sentencing algorithms don’t predict recidivism. They show that judges have historically handed down harsher sentences for Black people.
Gee, I wonder why? Spoiler alert: repeat offenders tend to get harsher sentences.
so they don’t choose the best candidate. They just choose the candidate that is most likely to be successful based on employees who have already proven to be successful. Again, correlation vs causation, but at the same time, there’s a reason betting factors in odds of success.

ok, this one is admittedly pretty embarassing, but is it the tech or the lack of sample size?
 
ok, this one is admittedly pretty embarassing, but is it the tech or the lack of sample size?
It's absolutely the sample size. I remember hearing a few years ago that something like 70% of all photographs had been taken (at the time) in the last ten years. I bet it's at 95%+ by now. There are so many photos of white people online, of course ai is going to be better at distinguishing between them.
 
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