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Ask, Attend and Answer: Exploring Question-Guided Spatial Attention for Visual Question Answering

机译:询问,出席和答案:探索视觉问题应答的问候空间关注

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We address the problem of Visual Question Answering (VQA), which requires joint image and language understanding to answer a question about a given photograph. Recent approaches have applied deep image captioning methods based on convolutional-recurrent networks to this problem, but have failed to model spatial inference. To remedy this, we propose a model we call the Spatial Memory Network and apply it to the VQA task. Memory networks are recurrent neural networks with an explicit attention mechanism that selects certain parts of the information stored in memory. Our Spatial Memory Network stores neuron activations from different spatial regions of the image in its memory, and uses attention to choose regions relevant for computing the answer. We propose a novel question-guided spatial attention architecture that looks for regions relevant to either individual words or the entire question, repeating the process over multiple recurrent steps, or "hops". To better understand the inference process learned by the network, we design synthetic questions that specifically require spatial inference and visualize the network's attention. We evaluate our model on two available visual question answering datasets and obtain improved results.
机译:我们解决了视觉问题应答(VQA)的问题,这需要联合图像和语言理解来回答关于给定照片的问题。最近的方法已经基于卷积复制网络应用了深度图像标题方法对此问题,但是已经失败了模型空间推断。要解决此问题,我们提出了一种模型,我们调用空间内存网络并将其应用于VQA任务。内存网络是经常性的神经网络,具有明确的注意机制,可选择存储在存储器中的某些部分。我们的空间内存网络将来自图像的不同空间区域的神经元激活存储在其内存中,并使用注意选择与计算答案相关的区域。我们提出了一种新的问候空间关注架构,用于寻找与个人单词或整个问题相关的区域,重复多个反复步骤或“跳”的过程。为了更好地了解网络了解的推理过程,我们设计了综合性问题,专门需要空间推论并可视化网络的注意力。我们在两个可用的视觉问题上评估我们的模型,并获得改进的结果。

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