Enabling the 'imagination' of artificial intelligence
In other words, as humans, it's easy to envision an object with different attributes. But, despite advances in deep neural networks that match or surpass human performance in certain tasks, computers still struggle with the very human skill of "imagination." Now, a USC research team has developed an AI that uses human-like capabilities to imagine a never-before-seen object with different attributes. The paper, titled Zero-Shot Synthesis with Group-Supervised Learning, was published in the 2021 International Conference on Learning Representations on May 7. "We were inspired by human visual generalization capabilities to try to simulate human imagination in machines," said the study's lead author Yunhao Ge, a computer science PhD student working under the supervision of Laurent Itti, a computer science professor. "Humans can separate their learned knowledge by attributes -- for instance, shape, pose, position, color -- and then recombine them to imagine a new object. Our paper attempts to simulate this process using neural networks."
Jul-22-2021, 07:42:43 GMT
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- North America > United States > New York (0.05)
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- Research Report > New Finding (0.58)
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