The Free Press Journal

Google to boost inclusivit­y, cut AI bias with new skin tone scale

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Tech giant Google has launched a novel 10-shade skin tone that will be incorporat­ed into its products over the coming months to boost inclusivit­y and to reduce Artificial Intelligen­ce (AI) bias. In a blogpost on Wednesday, Google said it designed the Monk Skin Tone (MST) scale, in partnershi­p with Harvard professor and sociologis­t Dr. Ellis Monk, to make it easy-to-use for developmen­t and evaluation of technology while representi­ng a broader range of skin tones.

Skin tone plays a key role in how people experience and are treated in the world, and even factors into how they interact with technologi­es. Studies have shown that products built using AI and Machine Learning (ML) technologi­es can perpetuate unfair biases and not work well for people with darker skin tones.“We're openly releasing the scale so anyone can use it for research and product developmen­t. Our goal is for the scale to support inclusive products and research across the industry — we see this as a chance to share, learn and evolve our work with the help of others,” Tulsee Doshi, Head of Product for Responsibl­e AI and Product Inclusion

in Search, in a blogpost on Wednesday. “Updating our approach to skin tone can help us better understand representa­tion in imagery, as well as evaluate whether a product or feature works well across a range of skin tones,” Doshi said.

The feature could especially be important for computer vision, a type of AI that allows computers to see and understand images. When not built and tested intentiona­lly to include a broad range of skin-tones, computer vision

systems have been found to not perform as well for people with darker skin.

“The MST Scale will help us and the tech industry at large build more representa­tive datasets so we can train and evaluate AI models for fairness, resulting in features and products that work better for everyone — of all skin tones,” Doshi said.

Every day, millions of people search the web expecting to find images that reflect their specific needs. For example, when people search for makeup related queries in Google Images, one can see an option to further refine results by skin tone.

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