IP Library Patent Application 18723485
Patent Application
App. No. 18/723,485

PROPAGATION ENVIRONMENT ESTIMATION METHOD, PROPAGATION ENVIRONMENT ESTIMATION SYSTEM AND PROPAGATION ENVIRONMENT ESTIMATION DEVICE

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Patent No.
US None
App. No.
18/723,485
Abstract

Estimating a propagation environment of a radio wave using a scale model. The method includes the following steps. The scale model is created. In the scale model, a light source capable of emitting directional light and scanning an irradiation direction is installed, regarding the light source as a transmission station of a radio wave. The light source scans an inside of the scale model, and a center light generation state in which center light directed to a measurement point set in the scale model is generated is detected in a process of scanning. A light receiving sphere is installed such that a center coincides with the measurement point. A direction connecting a position of an irradiated point appearing on the light receiving sphere and a position of the center under the center light generation state is estimated as an arrival direction of the light reaching the measurement point.

Claims (69)

1 . A propagation environment estimation method for estimating a propagation environment of a radio wave using a scale model, the propagation environment estimation method comprising:

creating a scale model;

installing a light source in the scale model, regarding the light source as a transmission station of a radio wave, the light source being capable of emitting light having directivity and scanning an irradiation direction;

scanning an inside of the scale model with the light source;

detecting a center light generation state in which center light directed to a measurement point set in the scale model is generated in said scanning;

detecting a position of an irradiated point appearing under the center light generation state on a light receiving sphere installed so as to have a center coincide with the measurement point; and

estimating a direction connecting a position of the center and the position of the irradiated point as an arrival direction of the light reaching the measurement point.

2 . The propagation environment estimation method according to claim 1 , wherein

the detection of said center light generation state includes:

installing a light receiving target at the measurement point, and

detecting a state in which the light receiving target is illuminated with the light as the center light generation state, and

the detection of said position of the irradiated point includes

installing the light receiving sphere in the scale model such that the measurement point and the center coincide with each other after the detection of the center light generation state, and

detecting the position of the irradiated point appearing under the center light generation state on the installed light receiving sphere.

3 . The propagation environment estimation method according to claim 1 , wherein

the creation of said scale model includes creating two identical scale models,

the installation of said light source includes installing the light source in each of the two scale models,

the scanning includes similarly scanning the two scale models with the respective light sources,

the detection of said center light generation state includes

installing a light receiving target at the measurement point of one of the scale models, and

detecting a state in which the light receiving target is illuminated with the light as the center light generation state, and

the detection of said position of the irradiated point includes

installing the light receiving sphere such that a center coincides with the measurement point of the other scale model, and

detecting a position of an irradiated point appearing on the light receiving sphere installed in the other scale model in a state where the center light generation state is detected in the one scale model.

4 . The propagation environment estimation method according to claim 1 , further comprising: setting a scale of the scale model prior to the creation of the scale model,

the setting of said scale including

acquiring information regarding an installation space of the transmission station in a target area,

acquiring dimensions of the light source, and

setting the scale such that the light source is accommodated in a corresponding portion of the installation space in the scale model.

5 . The propagation environment estimation method according to claim 1 , further comprising: applying reflection treatment to at least a part of the scale model such that a light reflectance in the scale model matches a radio wave reflectance in a target area.

6 . The propagation environment estimation method according to claim 1 , further comprising: setting a wavelength of light emitted from the light source on a basis of a frequency of the radio wave assumed to be used in a target area such that a behavior of light in the scale model matches a behavior of the radio wave in the target area.

7 . A propagation environment estimation system that estimates a propagation environment of a radio wave using a scale model, the propagation environment estimation system comprising:

a 3D printer that creates a scale model;

an element mounter that installs a light source in the scale model, regarding the light source as a transmission station of a radio wave, the light source being capable of emitting light having directivity and scanning an irradiation direction; and

a controller that controls the 3D printer and the element mounter,

the controller being configured to further execute

scanning an inside of the scale model with the light source,

detecting a center light generation state in which center light directed to a measurement point set in the scale model is generated said scanning,

detecting a position of an irradiated point appearing under the center light generation state on a light receiving sphere installed so as to have a center coincide with the measurement point, and

estimating a direction connecting a position of the center and the position of the irradiated point as an arrival direction of the light reaching the measurement point.

8 . A propagation environment estimation device that estimates a propagation environment of a radio wave using a scale model, the propagation environment estimation device comprising:

a 3D printer that creates a scale model;

an element mounter that installs a light source in the scale model, regarding the light source as a transmission station of a radio wave, the light source being capable of emitting light having directivity and scanning an irradiation direction; and

a controller that controls the 3D printer and the element mounter,

the controller being configured to further execute

scanning an inside of the scale model with the light source,

detecting a center light generation state in which center light directed to a measurement point set in the scale model is generated in a process of the scanning,

detecting a position of an irradiated point appearing under the center light generation state on a light receiving sphere installed so as to have a center coincide with the measurement point, and

estimating a direction connecting a position of the center and the position of the irradiated point as an arrival direction of the light reaching the measurement point.

9 . The propagation environment estimation method according to claim 2 , further comprising: setting a scale of the scale model prior to the creation of the scale model,

the setting of said scale including

acquiring information regarding an installation space of the transmission station in a target area,

acquiring dimensions of the light source, and

setting the scale such that the light source is accommodated in a corresponding portion of the installation space in the scale model.

10 . The propagation environment estimation method according to claim 3 , further comprising: setting a scale of the scale model prior to the creation of the scale model,

the setting of said scale including

acquiring information regarding an installation space of the transmission station in a target area,

acquiring dimensions of the light source, and

setting the scale such that the light source is accommodated in a corresponding portion of the installation space in the scale model.

11 . The propagation environment estimation method according to claim 2 , further comprising: applying reflection treatment to at least a part of the scale model such that a light reflectance in the scale model matches a radio wave reflectance in a target area.

12 . The propagation environment estimation method according to claim 3 , further comprising: applying reflection treatment to at least a part of the scale model such that a light reflectance in the scale model matches a radio wave reflectance in a target area.

13 . The propagation environment estimation method according to claim 4 , further comprising: applying reflection treatment to at least a part of the scale model such that a light reflectance in the scale model matches a radio wave reflectance in a target area.

14 . The propagation environment estimation method according to claim 9 , further comprising: applying reflection treatment to at least a part of the scale model such that a light reflectance in the scale model matches a radio wave reflectance in a target area.

15 . The propagation environment estimation method according to claim 10 , further comprising: applying reflection treatment to at least a part of the scale model such that a light reflectance in the scale model matches a radio wave reflectance in a target area.

16 . The propagation environment estimation method according to claim 2 , further comprising: setting a wavelength of light emitted from the light source on a basis of a frequency of the radio wave assumed to be used in a target area such that a behavior of light in the scale model matches a behavior of the radio wave in the target area.

17 . The propagation environment estimation method according to claim 3 , further comprising: setting a wavelength of light emitted from the light source on a basis of a frequency of the radio wave assumed to be used in a target area such that a behavior of light in the scale model matches a behavior of the radio wave in the target area.

18 . The propagation environment estimation method according to claim 4 , further comprising: setting a wavelength of light emitted from the light source on a basis of a frequency of the radio wave assumed to be used in a target area such that a behavior of light in the scale model matches a behavior of the radio wave in the target area.

19 . The propagation environment estimation method according to claim 5 , further comprising: setting a wavelength of light emitted from the light source on a basis of a frequency of the radio wave assumed to be used in a target area such that a behavior of light in the scale model matches a behavior of the radio wave in the target area.

20 . The propagation environment estimation method according to claim 14 , further comprising: setting a wavelength of light emitted from the light source on a basis of a frequency of the radio wave assumed to be used in a target area such that a behavior of light in the scale model matches a behavior of the radio wave in the target area.

Assignments (2)
CHANGE OF NAME Recorded Aug 21, 2025
From: NIPPON TELEGRAPH AND TELEPHONE CORPORATION
To: NTT, INC.
Reel/Frame 072499/0774 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 24, 2024
From: TANIGUCHI, RYOTARO; MURAKAMI, TOMOKI; OGAWA, TOMOAKI; TAKATORI, YASUSHI; INOMATA, MINORU
To: NIPPON TELEGRAPH AND TELEPHONE CORPORATION
Reel/Frame 067813/0552 →