Amazon’s Face Recognition Falsely Matched 28 Members of Congress with Mugshots
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Re: Amazon’s Face Recognition Falsely Matched 28 Members of Congress with Mugshots
#12Things I want to know: - Show us the side-by-side images of the false-positives. Are the matches plausible? - What is the demographic distribution of the mugshot database? If the data is disproportionately biased, then that bias would be reflected in the false-positives. A casual skimming of some mughot websites shows a potentially significant racial bias.
Re: Amazon’s Face Recognition Falsely Matched 28 Members of Congress with Mugshots
#13Re: Amazon’s Face Recognition Falsely Matched 28 Members of Congress with Mugshots
#14How many people have been falsely convicted because "DNA"? 1B-1 odds of a match, "and sir, yet you claim you were not even in the area?".
There should be a way of recognising the parts of the science that are basically correct and the parts that are either less reliable, open to bias or could simply be broken due to incorrect process/mistake in the lab.
Re: Amazon’s Face Recognition Falsely Matched 28 Members of Congress with Mugshots
#15>Reached by The Verge, an Amazon spokesperson attributed the results to poor calibration. The ACLU’s tests were performed using Rekognition’s default confidence threshold of 80 percent — but Amazon says it recommends at least a 95 percent threshold for law enforcement applications where a false ID might have more significant consequences.
Presented without real comment on my part.
Re: Amazon’s Face Recognition Falsely Matched 28 Members of Congress with Mugshots
#16Things I want to know: - Show us the side-by-side images of the false-positives. Are the matches plausible? - What is the demographic distribution of the mugshot database? If the data is disproportionately biased, then that bias would be reflected in the false-positives. A casual skimming of some mughot websites shows a potentially significant racial bias.
At the same time, they do still have the correct final conclusion. Dragnet facial recognition is a bad idea that will produce too many false positives to be of use. Or at the very least, dragnet facial recognition used by people who put too much faith in it is a bad idea. It's at most useful to produce flags for slightly more attention; on its own, I would not consider it anywhere close to enough to arrest someone on.
And it can serve as a demonstration of how a clumsily-put-together system can be used to produce bad results, so, if we correctly assume that there may be people bodging together a system in much the same way the ACLU did, well, hey, it's a valid result then!
Re: Amazon’s Face Recognition Falsely Matched 28 Members of Congress with Mugshots
#17I don't see any mention of them verifying those members of congress are not in fact the same people as the mugshots (/s)
Re: Amazon’s Face Recognition Falsely Matched 28 Members of Congress with Mugshots
#18Bone marrow transplants for cancer treatment used to have a 20% failure rate. I didn't think for a second that we should cease using bone marrow transplants.
And yet why does the ACLU think we should cease using a technology to deliver potential location hits on wanted criminals because its not 100% perfect?
Re: Amazon’s Face Recognition Falsely Matched 28 Members of Congress with Mugshots
#19Things I want to know: - Show us the side-by-side images of the false-positives. Are the matches plausible? - What is the demographic distribution of the mugshot database? If the data is disproportionately biased, then that bias would be reflected in the false-positives. A casual skimming of some mughot websites shows a potentially significant racial bias.
Perhaps lawmakers should consider implementing rules to ban facial recognition software until the developers can prove some like 99.999% accuracy. Otherwise we end up harassing a large number of people, and the credibility of the technology will stuff. As it stand any lawyer will be able to argue that facial recognition isn't admisible as evidence, do to the high margin of error.
Re: Amazon’s Face Recognition Falsely Matched 28 Members of Congress with Mugshots
#20Falsely arrest 28 members of Congress due to poor face recognition, and the problem of facial recognition in law enforcement is resolved the next day.