Patents by Inventor Ahti Heinla

Ahti Heinla has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Patent number: 11383388
    Abstract: A storage system (100) is adapted to store a plurality of items and to load a delivery robot (2) with an item. The storage system (100) includes a delivery robot level (110), at least one storage level (112, 114, 116, 118) for storing the items, and a loading robot (130) adapted to grip the items and to load the items from a storage level (112, 114, 116, 118) to a delivery robot (2) located on the delivery robot level (110). The storage system (100) is adapted to move the items within a storage level (112, 114, 116, 118). The storage system may be provided with wheels and thus be mobile. It may be loaded onto a vehicle for transport from a loading area where the storage system is loaded with items for delivery, to a delivery area where the items are to be delivered by one or more delivery robots.
    Type: Grant
    Filed: May 21, 2020
    Date of Patent: July 12, 2022
    Assignee: Starship Technologies OÜ
    Inventors: Lauri Väin, Viljar Valdek, Märt Liivik, Henri Lend, Tiit Liivik, Henrik Herranen, Ahti Heinla, Veigo Evard, Tommy Biene
  • Publication number: 20220139226
    Abstract: A collision avoidance method and system for a mobile robot crossing a road. When a mobile robot approaches a road, it senses road conditions via at least one first sensor, and initiates road crossing if the road conditions are deemed suitable for crossing. As it crosses the road, the mobile robot senses, via at least one second sensor, a change in the road conditions indicating the presence of at least one hazardous moving object. In response to determining that at least one hazardous object in present, the mobile robot initiates a collision avoidance maneuver. A mobile robot configured to avoid collisions while crossing a road includes: at least one first sensor configured to sense road conditions, at least one second sensor configured to sense road conditions, and a processing component configured to carry out one or more collision avoidance maneuvers.
    Type: Application
    Filed: January 17, 2022
    Publication date: May 5, 2022
    Applicant: STARSHIP TECHNOLOGIES OÜ
    Inventors: AHTI HEINLA, RISTO REINPÕLD, KRISTJAN KORJUS
  • Publication number: 20220036310
    Abstract: A method of or for routing delivery items to delivery locations using transport devices includes localizing the plurality of delivery items, determining the delivery locations for the plurality of delivery items and executing a genetic algorithm for outputting a routing plan. The genetic algorithm can be an adapted genetic routing algorithm. The routing system can comprise a computing system that can be configured to execute at least one genetic algorithm for at least one of: assigning the transport devices to the delivery items, assigning the transport devices to times of delivery, and routing the transport devices to the delivery locations. The controlling system can be configured to control the transport devices according to the output of the computing system.
    Type: Application
    Filed: October 9, 2019
    Publication date: February 3, 2022
    Inventor: Ahti HEINLA
  • Publication number: 20220028023
    Abstract: A delivery method includes providing a system with at least one server, at least one robot, and at least one delivery terminal. The method includes communicating a request for at least one delivery from the at least one delivery terminal to the at least one server and/or to the at least one robot; providing instructions from the at least one server to the at least one robot about the at least one delivery, the instructions comprising information about a final delivery location; loading the at least one robot with the at least one delivery to be transported; transporting the at least one delivery in the at least one robot to the final delivery location; and providing access to the at least one delivery in the at least one robot, preferably upon arrival at the delivery location.
    Type: Application
    Filed: October 5, 2021
    Publication date: January 27, 2022
    Applicant: STARSHIP TECHNOLOGIES OÜ
    Inventors: Ahti HEINLA, Allan MARTINSON, Kalle-Rasmus VOLKOV, Andrew MACKS, Lindsay ROBERTS, Indrek MANDRE, Märt LIIVIK, Tiit LIIVIK, Ivo LIIVIK
  • Patent number: 11227497
    Abstract: A collision avoidance method and system for a mobile robot crossing a road. When a mobile robot approaches a road, it senses road conditions via at least one first sensor, and initiates road crossing if the road conditions are deemed suitable for crossing. As it crosses the road, the mobile robot senses, via at least one second sensor, a change in the road conditions indicating the presence of at least one hazardous moving object. In response to determining that at least one hazardous object in present, the mobile robot initiates a collision avoidance maneuver. A mobile robot configured to avoid collisions while crossing a road includes: at least one first sensor configured to sense road conditions, at least one second sensor configured to sense road conditions, and a processing component configured to carry out one or more collision avoidance maneuvers.
    Type: Grant
    Filed: April 18, 2019
    Date of Patent: January 18, 2022
    Assignee: Starship Technologies OÜ
    Inventors: Ahti Heinla, Risto Reinpõld, Kristjan Korjus
  • Publication number: 20220004974
    Abstract: A delivery system and method for delivering packages to multiple recipients uses a mobile robot having a delivery package space suitable for accommodating at least two packages, at least one package sensor configured to output first data reflective of the presence or absence of packages within with package space, at least one processing component configured to receive and process the package sensor's first data and at least one communication component configured to at least send and receive second data. The mobile robot travels to a first delivery location, permits a first recipient to access the package space, and identifies the first recipient's package to the first recipient. The system and method use data from the package sensor to verify that the first recipient removed only his or her package, if other package(s) are also present. The mobile robot then travels to a second delivery location associated with a second recipient.
    Type: Application
    Filed: September 16, 2021
    Publication date: January 6, 2022
    Applicant: STARSHIP TECHNOLOGIES OÜ
    Inventor: AHTI HEINLA
  • Patent number: 11164273
    Abstract: A delivery method operates in a system with at least one server, at least one robot, and at least one delivery terminal. The method includes communicating a request for at least one delivery from the at least one delivery terminal to the at least one server and/or to the at least one robot; providing instructions from the at least one server to the at least one robot about the at least one delivery, the instructions comprising information about a final delivery location; loading the at least one robot with the at least one delivery to be transported; transporting the at least one delivery in the at least one robot to the final delivery location; and providing access to the at least one delivery in the at least one robot, preferably upon arrival at the delivery location.
    Type: Grant
    Filed: April 9, 2018
    Date of Patent: November 2, 2021
    Assignee: STARSHIP TECHNOLOGIES OÜ
    Inventors: Ahti Heinla, Allan Martinson, Kalle-Rasmus Volkov, Andrew Macks, Lindsay Roberts, Indrek Mandre, Märt Liivik, Tiit Liivik, Ivo Liivik
  • Patent number: 11138545
    Abstract: A delivery system and method for delivering packages to multiple recipients uses a mobile robot having a delivery package space suitable for accommodating at least two packages, at least one package sensor configured to output first data reflective of the presence or absence of packages within with package space, at least one processing component configured to receive and process the package sensor's first data and at least one communication component configured to at least send and receive second data. The mobile robot travels to a first delivery location, permits a first recipient to access the package space, and identifies the first recipient's package to the first recipient. The system and method use data from the package sensor to verify that the first recipient removed only his or her package, if other package(s) are also present. The mobile robot then travels to a second delivery location associated with a second recipient.
    Type: Grant
    Filed: June 3, 2019
    Date of Patent: October 5, 2021
    Assignee: Starship Technologies OÜ
    Inventor: Ahti Heinla
  • Publication number: 20210302989
    Abstract: A mobile robot is configured to navigate on a sidewalk and deliver a delivery to a predetermined location. The robot has a body and an enclosed space within the body for storing the delivery during transit. At least two cameras are mounted on the robot body and are adapted to take visual images of an operating area. A processing component is adapted to extract straight lines from the visual images taken by the cameras and generate map data based at least partially on the images. A communication component is adapted to send and receive image and/or map data. A mapping system includes at least two such mobile robots, with the communication component of each robot adapted to send and receive image data and/or map data to the other robot. A method involves operating such a mobile robot in an area of interest in which deliveries are to be made.
    Type: Application
    Filed: June 10, 2021
    Publication date: September 30, 2021
    Applicant: STARSHIP TECHNOLOGIES OÜ
    Inventors: AHTI HEINLA, KALLE-RASMUS VOLKOV, LINDSAY ROBERTS, INDREK MANDRE
  • Publication number: 20210302990
    Abstract: A mobile delivery robot has at least one memory component containing at least map data; at least two cameras adapted to take visual images; and at least one processing component. The at least one processing component is adapted to at least extract straight lines from the visual images taken by the at least two cameras and compare them to the map data to at least localize the robot. The mobile robot employs a localization method which involves taking visual images with at least two cameras; extracting straight lines from the individual visual images with at least one processing component; comparing the extracted features with existing map data; and outputting a location hypothesis based on said comparison.
    Type: Application
    Filed: June 10, 2021
    Publication date: September 30, 2021
    Applicant: STARSHIP TECHNOLOGIES OÜ
    Inventors: AHTI HEINLA, KALLE-RASMUS VOLKOV, LINDSAY ROBERTS, INDREK MANDRE
  • Publication number: 20210209367
    Abstract: Disclosed are a system and methods for operating a mobile robot. One method comprises travelling in an outdoor setting, capturing data related to the outdoor setting, processing captured data and identifying occlusion present in the preprocessed data. The system comprises a mobile robot configured to travel in outdoor settings and comprising at least one first sensor and at least one processing component. The processing component is configured to process data captured by the first sensor and identify occlusion present in the preprocessed data.
    Type: Application
    Filed: May 20, 2019
    Publication date: July 8, 2021
    Applicant: Starship Technologies OÜ
    Inventors: Kristjan KORJUS, Sergii KHARAGORGIIEV, Ahti HEINLA, Tanel PÄRNAMAA
  • Publication number: 20210197712
    Abstract: A mobile robot has a body having at least one item space; a lid constructed and adapted to assume at least an open position and a closed position, wherein the lid is to fit on top of the body in the closed position, so as to cover the item space, and the lid is to be lifted to the open position, so as to allow access to the item space; at least four wheels; and a plurality of light sources arranged as at least one row of lights.
    Type: Application
    Filed: May 20, 2019
    Publication date: July 1, 2021
    Inventors: Kristjan KORJUS, Markus ZIMMERMANN, Ahti HEINLA, Rao PÄRNPUU
  • Patent number: 11048267
    Abstract: A mobile robot is configured to navigate on a sidewalk and deliver a delivery to a predetermined location. The robot has a body and an enclosed space within the body for storing the delivery during transit. At least two cameras are mounted on the robot body and are adapted to take visual images of an operating area. A processing component is adapted to extract straight lines from the visual images taken by the cameras and generate map data based at least partially on the images. A communication component is adapted to send and receive image and/or map data. A mapping system includes at least two such mobile robots, with the communication component of each robot adapted to send and receive image data and/or map data to the other robot. A method involves operating such a mobile robot in an area of interest in which deliveries are to be made.
    Type: Grant
    Filed: June 22, 2020
    Date of Patent: June 29, 2021
    Assignee: Starship Technologies OÜ
    Inventors: Ahti Heinla, Kalle-Rasmus Volkov, Lindsay Roberts, Indrek Mandre
  • Patent number: 11042165
    Abstract: A mobile delivery robot has at least one memory component containing at least map data; at least two cameras adapted to take visual images; and at least one processing component. The at least one processing component is adapted to at least extract straight lines from the visual images taken by the at least two cameras and compare them to the map data to at least localize the robot. The mobile robot employs a localization method which involves taking visual images with at least two cameras; extracting straight lines from the individual visual images with at least one processing component; comparing the extracted features with existing map data; and outputting a location hypothesis based on said comparison.
    Type: Grant
    Filed: July 30, 2019
    Date of Patent: June 22, 2021
    Assignee: Starship Technologies OÜ
    Inventors: Ahti Heinla, Kalle-Rasmus Volkov, Lindsay Roberts, Indrek Mandre
  • Publication number: 20200353625
    Abstract: A storage system (100) is adapted to store a plurality of items and to load a delivery robot (2) with an item. The storage system (100) includes a delivery robot level (110), at least one storage level (112, 114, 116, 118) for storing the items, and a loading robot (130) adapted to grip the items and to load the items from a storage level (112, 114, 116, 118) to a delivery robot (2) located on the delivery robot level (110). The storage system (100) is adapted to move the items within a storage level (112, 114, 116, 118). The storage system may be provided with wheels and thus be mobile. It may be loaded onto a vehicle for transport from a loading area where the storage system is loaded with items for delivery, to a delivery area where the items are to be delivered by one or more delivery robots.
    Type: Application
    Filed: May 21, 2020
    Publication date: November 12, 2020
    Applicant: Starship Technologies OÜ
    Inventors: Lauri Vain, Viljar VALDEK, Märt LIIVIK, Henri LEND, Tiit LIIVIK, Henrik HERRANEN, Ahti HEINLA, Veigo EVARD, Tommy BIENE
  • Publication number: 20200319654
    Abstract: A mobile robot is configured to navigate on a sidewalk and deliver a delivery to a predetermined location. The robot has a body and an enclosed space within the body for storing the delivery during transit. At least two cameras are mounted on the robot body and are adapted to take visual images of an operating area. A processing component is adapted to extract straight lines from the visual images taken by the cameras and generate map data based at least partially on the images. A communication component is adapted to send and receive image and/or map data. A mapping system includes at least two such mobile robots, with the communication component of each robot adapted to send and receive image data and/or map data to the other robot. A method involves operating such a mobile robot in an area of interest in which deliveries are to be made.
    Type: Application
    Filed: June 22, 2020
    Publication date: October 8, 2020
    Inventors: Ahti HEINLA, Kalle-Rasmus VOLKOV, Lindsay ROBERTS, Indrek MANDRE
  • Patent number: 10732641
    Abstract: A mobile robot is configured to navigate on a sidewalk and deliver a delivery to a predetermined location. The robot has a body and an enclosed space within the body for storing the delivery during transit. At least two cameras are mounted on the robot body and are adapted to take visual images of an operating area. A processing component is adapted to extract straight lines from the visual images taken by the cameras and generate map data based at least partially on the images. A communication component is adapted to send and receive image and/or map data. A mapping system includes at least two such mobile robots, with the communication component of each robot adapted to send and receive image data and/or map data to the other robot. A method involves operating such a mobile robot in an area of interest in which deliveries are to be made.
    Type: Grant
    Filed: May 2, 2018
    Date of Patent: August 4, 2020
    Assignee: STARSHIP TECHNOLOGIES OÜ
    Inventors: Ahti Heinla, Kalle-Rasmus Volkov, Lindsay Roberts, Indrek Mandre
  • Publication number: 20200209821
    Abstract: A mobile robot configured for vending consumable items. A system configured for vending consumable items comprising a mobile robot, a vending terminal, and a server communicating with each of the other two. A method for vending consumable items using a mobile robot. A method for on-demand consumable item delivery by a mobile robot.
    Type: Application
    Filed: March 11, 2020
    Publication date: July 2, 2020
    Applicant: STARSHIP TECHNOLOGIES OÜ
    Inventors: Ahti HEINLA, Anti VEERANNA, Antti MAKELA, Imre TERAS, Kalle-Rasmus VOLKOV, Kitty MAMERS, Lauri VAIN, Madis MERILA, Markus ZIMMERMANN, Vahur LAAS, Kadri PARIKAS
  • Publication number: 20200086757
    Abstract: A flexural joint, preferably for use in a battery station, comprising: a first group of rigid members configured to mount a first group of elements to the flexural joint; a second group of rigid members configured to mount a second group of elements to the flexural joint; a third group of elastic members configured to provide flexibility; a first flexural mechanism configured to allow rotational motion of at least one of the first group of rigid members with respect to the second group of rigid members and the second group of rigid members with respect to the first group of rigid members; and a second flexural mechanism configured to allow linear motion of at least one of the first group of rigid members with respect to the second group of rigid members and second group of rigid members with respect to the first group of rigid members.
    Type: Application
    Filed: November 21, 2019
    Publication date: March 19, 2020
    Inventors: Lauri VÄIN, Viljar VALDEK, Märt LIIVIK, Henri LEND, Sergii KHARAGORGIIEV, Markus JÄRVE, Henrik HERRANEN, Ahti HEINLA, Veigo EVARD, Tommy BIENE
  • Publication number: 20200091744
    Abstract: A battery station, for use by at least one mobile robot, includes a battery charging unit configured to perform at least one of: holding at least one battery, and charging at least one battery. A battery load/unload position is configured to facilitate loading and unloading of a battery to and from a mobile robot. A battery handling mechanism is configured to operate on a reaching range, comprising at least one of the following: (i) the battery of the mobile robot positioned in the battery load/unload position, and (ii) the battery charging unit. A localization element is configured to at least one of detect and locate at least one of: at least one battery of the mobile robot, wherein the mobile robot is positioned in the battery load/unload position, and/or at least one battery positioned in the battery charging unit.
    Type: Application
    Filed: November 20, 2019
    Publication date: March 19, 2020
    Inventors: Lauri VÄIN, Viljar VALDEK, Märt LIIVIK, Henri LEND, Sergii KHARAGORGIIEV, Markus JÄRVE, Henrik HERRANEN, Ahti HEINLA, Veigo EVARD, Tommy BIENE