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Wavelet Tree Parsing with Freeform Lensing

机译:用自由形式镜头解析小波树

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We propose an architecture for adaptive sensing of images by progressively measuring its wavelet coefficients. Our approach, commonly referred to as wavelet tree parsing, adaptively selects the specific wavelet coefficients to be sensed by modeling the children of dominant coefficients to be dominant themselves. A key challenge for practical implementation of this technique is that the wavelet patterns, especially at finer scales, occupy a tiny portion of the field of view and, hence, the resulting measurements have very poor light levels and signal-to-noise ratios (SNR). To address this, we propose a novel imaging architecture that uses a phase-only spatial light modulator as a freeform lens to concentrate a light source and create the wavelet patterns. This ensures that the SNR of measurements remain constant across different spatial scales. Using a lab prototype, we demonstrate successful reconstruction on a wide range of real scenes and show that concentrating illumination enables us to outperform non-adaptive techniques as well as adaptive techniques based on traditional projectors.
机译:我们通过逐步测量其小波系数来提出一种用于自适应感测图像的架构。我们的方法通常被称为小波树解析,自适应地选择要通过对主导系数的子女进行建模来感测的特定小波系数。这种技术的实际实施的关键挑战是小波模式,特别是在更精细的尺度上,占据了视野的微小部分,因此,所得到的测量具有非常差的光水平和信噪比(SNR )。为了解决这个问题,我们提出了一种新的成像架构,其使用仅相位空间光调制器作为自由形态镜头来集中光源并产生小波图案。这确保了测量的SNR在不同的空间尺度上保持恒定。使用实验室原型,我们展示了在广泛的真实场景上成功的重建,并表明集中照明使我们能够优于非自适应技术以及基于传统投影仪的自适应技术。

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