A01M21/00

Method and apparatus for capsular delivery to plants

A method of controlling the growth of a plant is provided, the method including the steps of: (a) inserting a capsule containing an agent into an opening formed in a plant; and (b) closing the opening formed in the plant into which the capsule is inserted. The agent may be a chemical agent. The plant may be a woody plant, such as a woody weed or a woody cultivated plant. Also provided is a capsule containing an agent for insertion into a plant, and an apparatus for insertion of a capsule into a plant.

Method and apparatus for capsular delivery to plants

A method of controlling the growth of a plant is provided, the method including the steps of: (a) inserting a capsule containing an agent into an opening formed in a plant; and (b) closing the opening formed in the plant into which the capsule is inserted. The agent may be a chemical agent. The plant may be a woody plant, such as a woody weed or a woody cultivated plant. Also provided is a capsule containing an agent for insertion into a plant, and an apparatus for insertion of a capsule into a plant.

Agricultural plant detection and control system

A computing system includes image receiving logic configured to receive image data indicative of an image of a field, ground identification logic configured to identify a first image portion of the image representing ground in the field, image segmentation logic configured to identify a remaining image portion that omits the first image portion from the image, and crop classification logic configured to apply a crop classifier to the remaining image portion and identify a second image portion of the image that represents locations of crop plants in the field. The computing system also includes weed identification logic configured to identify locations of weed plants in the field based on the identification of the first and second image portions and control signal generation logic configured to generate a machine control signal based on the identified locations of the weed plants.

AUTONOMOUS SPRAY SHIP AND METHOD

An airship and method of providing thrust to an airship are shown. Examples include a number of turbine thrusters coupled to a number of electric motor/generators that supplement thrust from the turbine thrusters. Systems and methods are described that include surveying an agricultural area, and spraying an amount of an agricultural supply on only selected portion of the agricultural area.

APPARATUSES AND TECHNIQUES FOR SUBTERRANEOUS PLACEMENT OF ONE OR MORE ITEMS
20170325446 · 2017-11-16 ·

Apparatuses and techniques for subterranean placement or positioning of one or more items are provided. In one aspect, an apparatus is configured to form a hole in the ground and subsequently provide a pathway for positioning one or more items in the hole. In one form, the items that may subterraneously placed or positioned using the apparatus may include agricultural products such as seeds or delivery vehicles that include one or more fertilizers or pesticides or combinations of these materials.

APPARATUSES AND TECHNIQUES FOR SUBTERRANEOUS PLACEMENT OF ONE OR MORE ITEMS
20170325446 · 2017-11-16 ·

Apparatuses and techniques for subterranean placement or positioning of one or more items are provided. In one aspect, an apparatus is configured to form a hole in the ground and subsequently provide a pathway for positioning one or more items in the hole. In one form, the items that may subterraneously placed or positioned using the apparatus may include agricultural products such as seeds or delivery vehicles that include one or more fertilizers or pesticides or combinations of these materials.

Mechanical Phragmites Non-Chemical Rain Collection Invasive Plant Species Biologic Activation Removal Method
20170238469 · 2017-08-24 ·

It is new in the art to mechanically expose Phragmites to continual rain water internal intrusion and retention. Man-made water reservoirs made from the Phragmites living stalk is a new mechanical removal method. Rapid destruction in one season of entire clones occurs with simply one or two cuttings and is effective in any season. Maintaining minimum ⅓ of stalk height leaves the ground shaded and water-logged continually inhibiting seedling growth and causing Phragmites destruction without soil disturbance. Phragmites coding does not have a repair system to overcome mid-section stalk cutting collecting water. It fails to send out new rhizomes as it sends new suckers from the top ligule instead. A second sucker is easily removed below the ligule and the stalk fails to support it's life and dies. Increased insect and fungal activity from the man-made water-logging Phragmites stalk reservoir further reduces Phragmites function and suppresses seedling growth.

Plant Weed Preventer Enhancing Water and Heat Retention
20170223906 · 2017-08-10 ·

A substantially rectangular and open bottom shield configured to be fitted around an in-ground plant at ground level as enabled by an elongated slit and central aperture. A peripheral wall perpendicular to an opaque top panel extends downward around at least 75% of the perimeter of the top panel. The top panel is inclined toward the central aperture through which water and fertilizer can flow toward the plant root system.

Plant Weed Preventer Enhancing Water and Heat Retention
20170223906 · 2017-08-10 ·

A substantially rectangular and open bottom shield configured to be fitted around an in-ground plant at ground level as enabled by an elongated slit and central aperture. A peripheral wall perpendicular to an opaque top panel extends downward around at least 75% of the perimeter of the top panel. The top panel is inclined toward the central aperture through which water and fertilizer can flow toward the plant root system.

INFERRING MOISTURE FROM COLOR
20220036070 · 2022-02-03 ·

Techniques are described herein for using artificial intelligence to predict crop yields based on observational crop data. A method includes: obtaining a first digital image of at least one plant; segmenting the first digital image of the at least one plant to identify at least one seedpod in the first digital image; for each of the at least one seedpod in the first digital image: determining a color of the seedpod; determining a number of seeds in the seedpod; inferring, using one or more machine learning models, a moisture content of the seedpod based on the color of the seedpod; and estimating, based on the moisture content of the seedpod and the number of seeds in the seedpod, a weight of the seedpod; and predicting a crop yield based on the moisture content and the weight of each of the at least one seedpod.