IP Library › Granted Patent US 10,497,089
Granted Patent B2
US 10,497,089 · App. 15/234,851 · Granted Dec 3, 2019

Convolutional neural network

Inventors: Mihai Constantine Munteanu (Brasov, RO); Alexandru Caliman (Brasov, RO); Corneliu Zaharia (Brasov, RO); Dragos Dinu (Brasov, RO)
Assignee: FotoNation Limited
G06T1/60G06K9/00986G06K9/4628G06K9/6272G06N3/0454G06N3/08
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Quick Facts
Patent No.
US 10,497,089
App. No.
15/234,851
Granted
Dec 3, 2019
Kind
B2
Abstract

A convolutional neural network (CNN) for an image processing system comprises an image cache responsive to a request to read a block of N×M pixels extending from a specified location within an input map to provide a block of N×M pixels at an output port. A convolution engine reads blocks of pixels from the output port, combines blocks of pixels with a corresponding set of weights to provide a product, and subjects the product to an activation function to provide an output pixel value. The image cache comprises a plurality of interleaved memories capable of simultaneously providing the N×M pixels at the output port in a single clock cycle. A controller provides a set of weights to the convolution engine before processing an input map, causes the convolution engine to scan across the input map by incrementing a specified location for successive blocks of pixels and generates an output map within the image cache by writing output pixel values to successive locations within the image cache.

Claims (7)

1. A convolutional neural network (CNN) for an image processing system comprising:

an image cache comprising an input port and an output port, said image cache being responsive to a request to read a block of N×M pixels extending from a specified location within an input map to provide said block of N×M pixels at said output port;

a convolution engine being arranged to read at least one block of N×M pixels from said image cache output port, to combine said at least one block of N×M pixels with a corresponding set of weights to provide a product, and to subject said product to an activation function to provide an output pixel value;

said image cache being configured to write output pixel values to a specified write address via said image cache input port;

said image cache comprising a plurality of interleaved memories, each memory storing a block of pixel values at a given memory address, the image cache being arranged to determine for a block of N×M pixels to be read from said image cache: a respective one address within each of said interleaved memories in which said pixels of said block of N×M pixels are stored; a respective memory of said plurality of interleaved memories within which each pixel of said block of N×M pixels is stored; and a respective offset for each pixel of said block of N×M pixels within each memory address, so that said image cache can simultaneously provide said N×M pixels at said output port in a single clock cycle; and

a controller arranged to provide a set of weights to said convolution engine before processing at least one input map, to cause said convolution engine to process said at least one input map by specifying locations for successive blocks of N×M pixels and to generate an output map within said image cache by writing said output pixel values to successive locations within said image cache, wherein said weights are stored as 8-bit floating point number with an exponent bias greater that 7D.

2. A CNN according to claim 1 wherein said exponent bias is equal to approximately 12D.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 11, 2024
From: FOTONATION LIMITED
To: FOTONATION LIMITED
Reel/Frame 068871/0580 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 30, 2016
From: MUNTEANU, MIHAI CONSTANTIN; CALIMAN, ALEXANDRU; ZAHARIA, CORNELIU; DINU, DRAGOS
To: FOTONATION LIMITED
Reel/Frame 039589/0942 →
Continuity (2)
Continuation In Part 15010418 · Jan 29, 2016
Related Publication 20170221176A1 · Aug 3, 2017