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Learning Complexity-Aware Cascades for Pedestrian Detection

Zhaowei Cai, Mohammad Saberian, Nuno Vasconcelos

2020IEEE Transactions on Pattern Analysis and Machine Intelligence34 citationsDOI

Abstract

The problem of pedestrian detection is considered. The design of complexity-aware cascaded pedestrian detectors, combining features of very different complexities, is investigated. A new cascade design procedure is introduced, by formulating cascade learning as the Lagrangian optimization of a risk that accounts for both accuracy and complexity. A boosting algorithm, denoted as complexity aware cascade training (CompACT), is then derived to solve this optimization. CompACT cascades are shown to seek an optimal trade-off between accuracy and complexity by pushing features of higher complexity to the later cascade stages, where only a few difficult candidate patches remain to be classified. This enables the use of features of vastly different complexities in a single detector. In result, the feature pool can be expanded to features previously impractical for cascade design, such as the responses of a deep convolutional neural network (CNN). This is demonstrated through the design of pedestrian detectors with a pool of features whose complexities span orders of magnitude. The resulting cascade generalizes the combination of a CNN with an object proposal mechanism: rather than a pre-processing stage, CompACT cascades seamlessly integrate CNNs in their stages. This enables accurate detection at fairly fast speeds.

Topics & Concepts

CascadeBoosting (machine learning)Pedestrian detectionComputer scienceObject detectionConvolutional neural networkArtificial intelligenceDetectorComputational complexity theoryFeature (linguistics)Pattern recognition (psychology)Machine learningFeature extractionPedestrianAlgorithmEngineeringTransport engineeringChemical engineeringLinguisticsPhilosophyTelecommunicationsVideo Surveillance and Tracking MethodsAdvanced Neural Network ApplicationsAnomaly Detection Techniques and Applications
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