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図6。lensless蛍光RAW画像のデジタル処理が例示されている。圧縮サンプリングベースのアルゴリズムは、最密充填を2μm径ビーズのペアを解決することで、<4μmの空間分解能を達成するために使用されます。インセットはまた、デコードされた蛍光像と非常によく一致40X顕微鏡対物比較を示す。 D CSが CSデコードされたlensless蛍光画像の中心間の距離を指し、ここでdは、顕微鏡画像の中心間の距離を指します。
A. Ozcanは感謝ディレクター、NIHのオフィスからNSFのキャリア賞のサポート、ONR若手研究者賞、2009年NIHのディレクターの新イノベーター賞DP2OD006427を認めている。著者はまた、ビル&メリンダゲイツ財団、ボーダフォンアメリカ基金、およびNSFビッシュプログラム(受賞#0754880と0930501の下)のサポートを認める。
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