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Fashion Forward: Forecasting Visual Style in Fashion

机译:时尚向前:以时尚的方式预测视觉风格

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What is the future of fashion? Tackling this question from a data-driven vision perspective, we propose to forecast visual style trends before they occur. We introduce the first approach to predict the future popularity of styles discovered from fashion images in an unsupervised manner. Using these styles as a basis, we train a forecasting model to represent their trends over time. The resulting model can hypothesize new mixtures of styles that will become popular in the future, discover style dynamics (trendy vs. classic), and name the key visual attributes that will dominate tomorrow's fashion. We demonstrate our idea applied to three datasets encapsulating 80,000 fashion products sold across six years on Amazon. Results indicate that fashion forecasting benefits greatly from visual analysis, much more than textual or meta-data cues surrounding products.
机译:什么是时尚的未来?从数据驱动的愿景角度解决这个问题,我们建议在发生之前预测视觉风格趋势。我们介绍了预测以无人监督的方式从时尚图像中发现的变量的失利普及的方法。使用这些样式作为基础,我们培训预测模型以代表其趋势随着时间的推移。由此产生的模型可以假设未来将变得流行的新风格混合物,发现样式动态(时尚与经典),并命名将占据明天的时尚的关键视觉属性。我们展示了我们的想法应用于三个数据集,封装了亚马逊六年销售的80,000个时尚产品。结果表明,时尚预测从视觉分析中大大大大大幅度,不仅仅是文本或元数据线索围绕产品。

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