924 research outputs found

    Predictive Entropy Search for Efficient Global Optimization of Black-box Functions

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    We propose a novel information-theoretic approach for Bayesian optimization called Predictive Entropy Search (PES). At each iteration, PES selects the next evaluation point that maximizes the expected information gained with respect to the global maximum. PES codifies this intractable acquisition function in terms of the expected reduction in the differential entropy of the predictive distribution. This reformulation allows PES to obtain approximations that are both more accurate and efficient than other alternatives such as Entropy Search (ES). Furthermore, PES can easily perform a fully Bayesian treatment of the model hyperparameters while ES cannot. We evaluate PES in both synthetic and real-world applications, including optimization problems in machine learning, finance, biotechnology, and robotics. We show that the increased accuracy of PES leads to significant gains in optimization performance

    Susceptibility of Biomphalaria peregrina from Brazil and Ecuador to two strains of Schistasoma mansoni

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    O ciclo exoeritrocitário dos parasitos da malária

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    Egg-laying induced by insemination in Biomphalaria snails

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    Experimental investigation of self coherent optical OFDM systems using fabry-perot filters for carrier extraction

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    We experimentally demonstrate self coherent optical OFDM transmission with IQ demultiplexing employing a Fabry-Perot-tunable filter for the extraction of the optical carrier. The performance is investigated and compared to a conventional CO-OFDM
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