Communicative self-guiding automation (droid navigation, Honeck).
A self-guiding automaton includes sensors, a hardware processor, and a memory storing a self-guidance software code. The hardware processor executes the self-guidance software code to detect a location and/or travel path of one or more human being(s) in a pedestrian environment using the sensors, and identify a self -guided path forward in the pedestrian environment based on the location and/or travel path of each human being(s). The self-guidance software code also determines a social cue for communicating the self-guided path forward to the human being(s), detects any change in the location and/or travel path of each human being(s) using the sensors, determines a pedestrian safety score of the self-guided path forward based on the location and/or travel path and any change in the location and/or travel path of each human being(s), and moves the automaton along the self-guided path forward if the pedestrian safety score satisfies a safety threshold.
BACKGROUND
Autonomous vehicles, such as robots and self-driving cars for example, may analyze their environment to determine safe paths for future motion. Moreover, advanced systems may try to anticipate or predict the movements of other objects in their environment. Minor errors or miscalculations in route selection in environments shared by other vehicles may result in injury to an occupant of a vehicle involved in a collision, but are more likely to result in property damage. However, in pedestrian environments in which an autonomous vehicle navigates a space shared by human beings on foot, the consequences of even a minor miscalculation could result in serious injury or death. Consequently, there is a need in the art for a self-guidance solution for autonomous vehicles that enables such autonomous vehicles to navigate pedestrian environments safely.SUMMARY
There are provided communicative self-guiding automatons and methods for use by such automatons, substantially as shown in and/or described in connection with at least one of the figures, and as set forth more completely in the claims.
1. A self-guiding automaton comprising: a plurality of sensors; a hardware processor and a memory having a self-guidance software code stored therein, the hardware processor configured to execute the self-guidance software code to: detect at least one of a location and a travel path of at least one human being in a pedestrian environment using the plurality of sensors; identify a self-guided path forward in the pedestrian environment based on the at least one of the location and the travel path of the at least one human being; determine a social cue for communicating the self-guided path forward to the at least one human being; detect any change in the at least one of the location and the travel path of the at least one human being using the plurality of sensors; determine a pedestrian safety score of the self-guided path forward based on the at least one of the location and the travel path and the any change in the at least one of the location and the travel path of the at least one human being; and move the self-guiding automaton along the self-guided path forward if the pedestrian safety score at least satisfies a safety threshold. |
10. A method for use by a self-guiding automaton including a plurality of sensors, a hardware processor, and a system memory having self-guidance software code software code stored therein, the method comprising: detecting, using the hardware processor and the plurality of sensors, at least one of a location and a travel path of at least one human being in a pedestrian environment; identifying, using the hardware processor, a self-guided path forward in the pedestrian environment based on the at least one of the location and the travel path of the at least one human being; determining, using the hardware processor, a social cue for communicating the self-guided path forward to the at least one human being; detecting, using the hardware processor and the plurality of sensors, any change in the at least one of the location and the travel path of the at least one human being; determining, using the hardware processor, a pedestrian safety score of the self-guided path forward based on the at least one of the location and the travel path and the any change in the at least one of the location and the travel path of the at least one human being; and moving, using the hardware processor, the self-guiding automaton along the self-guided path forward if the pedestrian safety score at least satisfies a safety threshold. |
19. A computer-readable non-transitory medium having stored thereon instructions, which when executed by a hardware processor of a self-guiding automaton, instantiate a method comprising: detecting at least one of a location and a travel path of at least one human being in a pedestrian environment; identifying a self-guided path forward in the pedestrian environment based on the at least one of the location and the travel path of the at least one human being; determining a social cue for communicating the self-guided path forward to the at least one human being; detecting any change in .the at least one of the location and the travel path of the at least one human being; determining a pedestrian safety score of the self-guided path forward based on the at least one of the location and the travel path and the any change in the at least one of the location and the travel path of the at least one human being; and moving the self-guiding automaton along the self-guided path forward if the pedestrian safety score at least satisfies a safety threshold.