IP Library Patent Application 14398829
Patent Application
App. No. 14/398,829

IMAGE SEARCH SYSTEM AND IMAGE SEARCH METHOD

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Quick Facts
Patent No.
US None
App. No.
14/398,829
Abstract

Provided is an image search system with which, while preserving search precision, it is possible to alleviate transmission volume. A search server acquires from a recorder only low-dimension data which normally has a low data volume. When the density of low-dimension image data within a feature space is greater than or equal to a prescribed threshold value, that is to say, when the number of dimensions for carrying out an inter-image identification with only the low-dimension data is insufficient, the search server acquires from the recorder high-dimension image data for the low-dimension data. Thus, while preserving search precision, it is possible to alleviate data transmission volume of a communication path.

Claims (26)

1 - 4 . (canceled)

5 . An image search system, comprising:

an image storage apparatus that stores image data; and

a search apparatus that is connected to the image storage apparatus via a communication path, and that searches images stored in the image storage apparatus for an image corresponding to a search query image queried from a search terminal, wherein

the search apparatus includes:

a low-dimensional data acquiring section that acquires a low-dimensional image data set from the image storage apparatus via the communication path, the low-dimensional image data set including a low-dimensional image data set on a first object and a low-dimensional image data set on a second object;

a determining section that determines whether or not the low-dimensional image data set on the first object and the low-dimensional image data set on the second object are similar to each other; and

a high-dimensional data acquiring section that acquires a high-dimensional image data set on the first object and a high-dimensional image data set on the second object from the image storage apparatus via the communication path when the determining section determines that the low-dimensional image data set on the first object and the low-dimensional image data set on the second object are similar to each other.

6 . The image search system according to claim 5 , wherein the determining section performs clustering of the low-dimensional image data sets, calculates a density of the low-dimensional image data sets within a same cluster, and determines that the low-dimensional image data sets within the same cluster are similar to each other when the density is equal to or greater than a predetermined threshold.

7 . The image search system according to claim 5 , wherein:

similarities of the low-dimensional image data sets to the search query image are sorted based on distances between the low-dimensional image data sets and the search query image in a feature space; and

the low-dimensional image data sets for which the high-dimensional image data sets are present are sorted again based on distances between the high-dimensional image data sets and the search query image in the feature space.

8 . An image search method in which a search apparatus searches images stored in an image storage apparatus for an image corresponding to a search query image queried from a search terminal, the image storage apparatus being connected to the search apparatus via a communication path, the method comprising:

transmitting a low-dimensional image data set from the image storage apparatus to the search apparatus via the communication path, the low-dimensional image data set including a low-dimensional image data set on a first object and a low-dimensional image data set on a second object;

determining whether or not the low-dimensional image data set on the first object and the low-dimensional image data set on the second object are similar to each other; and

transmitting a high-dimensional image data set on the first object and a high-dimensional image data set on the second object from the image storage apparatus to the search apparatus via the communication path when the low-dimensional image data set on the first object and the low-dimensional image data set on the second object are determined to be similar to each other.

9 . The image search method according to claim 8 , wherein: in the determining of whether or not the data sets are similar to each other, clustering of the low-dimensional image data sets is performed; a density of the low-dimensional image data sets within a same cluster is calculated; and the low-dimensional image data sets within the same cluster are determined to be similar to each other when the density is equal to or greater than a predetermined threshold.

10 . The image search method according to claim 8 , further comprising:

sorting similarities of the low-dimensional image data sets to the search query image based on distances between the low-dimensional image data sets and the search query image in a feature space; and

sorting again the low-dimensional image data sets for which the high-dimensional image data sets are present, based on distances between the high-dimensional image data sets and the search query image in the feature space.

11 . A search apparatus that searches images stored in an image storage apparatus for an image corresponding to a search query image queried from a search terminal, the search apparatus comprising:

a low-dimensional data acquiring section that acquires a low-dimensional image data set from the image storage apparatus, the low-dimensional image data set including a low-dimensional image data set on a first object and a low-dimensional image data set on a second object;

a determining section that determines whether or not the low-dimensional image data set on the first object and the low-dimensional image data set on the second object are similar to each other; and

a high-dimensional data acquiring section that acquires a high-dimensional image data set on the first object and a high-dimensional image data set on the second object from the image storage apparatus via a communication path when the determining section determines that the low-dimensional image data set on the first object and the low-dimensional image data set on the second object are similar to each other.

12 . The search apparatus according to claim 11 , wherein the determining section performs clustering of the low-dimensional image data sets, calculates a density of the low-dimensional image data sets within a same cluster, and determines that the low-dimensional image data sets within the same cluster are similar to each other when the density is equal to or greater than a predetermined threshold.

13 . The search apparatus according to claim 11 , further comprising a feature data extraction section that sorts similarities of the low-dimensional image data sets to the search query image based on distances between the low-dimensional image data sets and the search query image in a feature space, and that sorts again the low-dimensional image data sets for which the high-dimensional image data sets are present based on distances between the high-dimensional image data sets and the search query image in the feature space.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 23, 2015
From: PANASONIC CORPORATION
To: PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO., LTD.
Reel/Frame 034794/0940 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 4, 2014
From: MATSUKAWA, TAKAYUKI; YOSHIO, HIROAKI; YAMADA, SHIN; NISHIMURA, JUN
To: PANASONIC CORPORATION
Reel/Frame 034381/0807 →