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US Patent 10013774 Broad area geospatial object detection using autogenerated deep learning models

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Is a
Patent
Patent
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Patent attributes

Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
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Patent Number
100137740
Patent Inventor Names
Adam Estrada0
Benjamin Brock0
Chris Mangold0
Andrew Jenkins0
Date of Patent
July 3, 2018
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Patent Application Number
154520760
Date Filed
March 7, 2017
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Patent Citations Received
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US Patent 11853889 Platform, systems, and methods for identifying characteristics and conditions of property features through imagery analysis
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US Patent 10650285 Platform, systems, and methods for identifying property characteristics and property feature conditions through aerial imagery analysis
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US Patent 11551040 Platform, systems, and methods for identifying characteristics and conditions of property features through imagery analysis
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US Patent 10733759 Broad area geospatial object detection using autogenerated deep learning models
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US Patent 10915809 Neural network image recognition with watermark protection
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US Patent 11030491 Platform, systems, and methods for identifying property characteristics and property feature conditions through imagery analysis
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US Patent 11687768 Platform, systems, and methods for identifying characteristics and conditions of property features through imagery analysis
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US Patent 11347976 Platform, systems, and methods for identifying characteristics and conditions of property features through imagery analysis
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Patent Primary Examiner
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Samir Ahmed
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Patent abstract

A system for automated geospatial image analysis comprising a deep learning model module and a convolutional neural network serving as an automated image analysis software module. The deep learning module receives a plurality of orthorectified geospatial images, pre-labeled to demarcate objects of interest, and optimized for the purpose of training the neural network of the image analysis software module. The module presents marked geospatial images and a second set of unmarked, optimized, training geospatial images to the convolutional neural network. This process may be repeated so that an image analysis software module can detect multiple object types or categories. The image analysis software module receives a plurality of orthorectified geospatial images from one or more geospatial image caches. Using multi-scale sliding window submodule, image analysis modules scan geospatial images, detect objects present and locate them on the geographical latitude-longitude system. The system reports the results in the requestor's preferred format.

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