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Chinese scientists develop ‘brain-reading’ AI model to help predict depression risk, may inspire future emotional-perception humanoids_我的网站

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Chinese scientists develop ‘brain-reading’ AI model to help predict depression risk, may inspire future emotional-perception humanoids_我的网站

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Brain-reading AI model reveals how different brain regions are linked to cognitive functions. Photo: Courtesy of Lu Han
Brain-reading AI model reveals how different brain regions are linked to cognitive functions. Photo: Courtesy of Lu Han
Chinese scientists have developed a “brain-reading” AI model that could help predict the risk of depression among adolescents up to four years in advance by analyzing how humans respond to facial expressions, a technology expected to inspire future development of embodied intelligent humanoids capable of perceiving human emotion and thoughts through nuanced facial cues. 
WHO data show that around 332 million people worldwide have depression, about one-third of whom have treatment-resistant forms of the condition. In China, an estimated 95 million people suffer from depression, National Business Daily reported, citing statistics from the China Mental Health Survey. 
Using data from a population-based longitudinal adolescent cohort recruited across several European countries, the research team led by Lu Han, assistant professor at the School of Artificial Intelligence, Shenzhen University, has built an AI model that predicted which 19-year-olds were more likely to develop depression at the age of 23. The predictions were backed up by an independent clinical cohort of individuals with depression. The team’s paper was published in the journal Science Advances this month.
According to Lu, the study used brain scans taken at age 19 to predict depression-related symptoms at age 23. The study focuses on adolescence because the transition from adolescence to early adulthood is a key developmental period when depressive symptoms can increase rapidly. The earlier risks are identified, the greater the opportunity for prevention, Lu told the Global Times on Monday, adding that the findings need to be further validated in middle-aged and older adults and across different ethnic groups in future research. 
In this study, the researchers analyzed data from adolescents in the IMAGEN, a population-based longitudinal cohort recruited across several European countries. At age 19, participants underwent an fMRI emotional-face task, and their emotional symptoms were assessed using standardized questionnaires. Genetic data obtained from blood samples were also analyzed, and participants were followed up at age 23. The researchers examined whether neural representations of angry faces at age 19 were associated with emotional symptoms and could predict elevated emotional symptoms four years later.
According to Lu, people without depression can more easily distinguish emotional changes based on others’ facial expressions and respond accordingly – for example, responding with friendliness to a smiling expression. But people with depression cannot do this, and are more likely to assume people are angry with them. 
A brain-aligned deep-learning model developed by Lu’s team suggested that those participants whose brains were less able to distinguish between different facial emotions and tended to perceive others as angry were more likely to develop symptoms of depression and anxiety in adulthood. 
The hypothesis that adolescents at risk of depression may respond differently to other people’s facial expressions than those without such risk based on the negative information processing bias long observed in depression research: people at risk of depression are more likely to notice, interpret, or remember negative social information, Lu said. 
The researchers focused on angry facial expressions because they signal social threat and rejection, which are closely linked to interpersonal difficulties and negativity bias associated with depression. They hope to further understand how this bias develops within the visual system. 
Building on this, they created a deep learning model, which mimics how the brain processes visual information, to predict how the brain encodes abstract emotional concepts such as anger.
They found that 19-year-olds whose response to facial expressions was skewed in favour of negative emotions or memories were the most likely to develop some form of depression.
Based on these findings, Lu’s team then developed a marker that can identify possible warning signs. 
According to Lu, the study found that the computational biomarker was linked to the depression-related variant rs11123030 and polygenic risk for depression, suggesting that genetic susceptibility may affect emotional perception. It also provided predictive information beyond family stress and socioeconomic factors, complementing rather than replacing environmental risk factors. Therefore, depression is neither purely genetic nor purely psychological, but a complex mental disorder arising from the interplay of genetic susceptibility, brain development, emotional and cognitive processes, and life experiences. 
According to Lu, the study is also expected to advance AI by aligning deep neural networks with human brain activity and using parameter perturbations to probe neural mechanisms, allowing models to both predict and explain how biases may arise. 
The findings suggest that future affective computing and embodied AI should go beyond simply labeling facial expressions, incorporating visual details while preventing prior assumptions from overriding real-time sensory input, Lu said, adding that the findings could provide valuable insights for developing more interpretable robotic perception systems that more closely emulate the way humans process emotions.
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IT之家 8 月 22 日消息,抖音黑板报 8 月 21 日发文称,近期,冒充抖音邮寄虚假“兑奖快递”的骗局仍有发生,诈骗分子将各类印有“抖音官方活动”的卡片、宣传册寄给用户,伪装成平台福利、节日回馈或品牌联名活动,诱导用户扫描卡片上的二维码联系“客服”兑奖。针对此类情况,抖音“验证助手”再次升级,在图片识别的基础上,支持二维码识别,帮用户甄别是否为抖音官方活动。抖音提醒,抖音官方不会以邮寄卡片、附赠小礼品等方式,引导用户扫码进入第三方页面领取福利。

二 | IT之家从文中获悉,抖音整理了近期出现的十种仿冒抖音诈骗的“快递资料”,虽然卡片的包装主题不断翻新,但实际上只是把同一套“邮寄引流、扫码转化”的诈骗链路反复包装。

三 | 有的打着“抖音十周年礼品卡”名义、有的借“端午献礼”“七夕献礼”等节日场景制造官方回馈的假象,还有的围绕季节主题推出“抖音盛夏来信”“抖音清凉一夏”等虚假活动,甚至还有假冒“抖音 618 电商狂欢节”“抖音好物体验季”等营销节点的内容,统一突出“50 元现金卡”“专属礼遇”“扫码即领”等字样,试图通过盗用平台标识和视觉设计降低用户警惕一旦用户扫码添加所谓的“客服”,对方就会以核实身份、登记礼品、确认收货、激活卡密等为由,要求用户提供手机号、快递号等个人信息,诱导受害人下载诈骗 App 或点击诈骗网站,进行后续诈骗。抖音反诈中心工作人员提醒,抖音不会通过快递邮寄所谓“现金卡”“专属礼品卡”诱导用户扫码领奖,也不会要求用户通过站外链接、陌生二维码或非官方客服渠道完成福利兑换。

四 | 如遇可疑情况,用户可打开抖音 App 搜索“验证助手”,输入可疑来电号码、短信或网址,上传图片或二维码照片,核验是否为抖音官方信息,同时牢记,不轻信、不下载、不共享屏幕,避免落入仿冒平台的诈骗陷阱。

五 |

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