32,428 research outputs found
A decades-long fast-rise-exponential-decay flare in low-luminosity AGN NGC 7213
We analysed the four-decades-long X-ray light curve of the low-luminosity
active galactic nucleus (LLAGN) NGC 7213 and discovered a
fast-rise-exponential-decay (FRED) pattern, i.e. the X-ray luminosity increased
by a factor of within 200d, and then decreased exponentially with
an -folding time d ( yr). For the theoretical
understanding of the observations, we examined three variability models
proposed in the literature: the thermal-viscous disc instability model, the
radiation pressure instability model, and the tidal disruption event (TDE)
model. We find that a delayed tidal disruption of a main-sequence star is most
favourable; either the thermal-viscous disk instability model or radiation
pressure instability model fails to explain some key properties observed, thus
we argue them unlikely.Comment: Accepted for publication in MNRAS, updated version after proof
correction
Image Aesthetics Assessment Using Composite Features from off-the-Shelf Deep Models
Deep convolutional neural networks have recently achieved great success on
image aesthetics assessment task. In this paper, we propose an efficient method
which takes the global, local and scene-aware information of images into
consideration and exploits the composite features extracted from corresponding
pretrained deep learning models to classify the derived features with support
vector machine. Contrary to popular methods that require fine-tuning or
training a new model from scratch, our training-free method directly takes the
deep features generated by off-the-shelf models for image classification and
scene recognition. Also, we analyzed the factors that could influence the
performance from two aspects: the architecture of the deep neural network and
the contribution of local and scene-aware information. It turns out that deep
residual network could produce more aesthetics-aware image representation and
composite features lead to the improvement of overall performance. Experiments
on common large-scale aesthetics assessment benchmarks demonstrate that our
method outperforms the state-of-the-art results in photo aesthetics assessment.Comment: Accepted by ICIP 201
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