Company patents

CLIMATE LLC

CLIMATE LLC's patent strategy reveals a surprising shift away from its dominant "Business Methods & Fintech" category, which accounts for 47.5% of its portfolio but has seen a significant decline of 21.7% in 2025 and 83.3% so far in 2026. While most categories show a decline in recent years, the company had an emerging focus in "Material & Chemical Analysis" with a 133.3% YoY growth in 2025, though this has since reversed with a 100.0% decline so far in 2026, indicating a broad-based reduction in new patent filings across its portfolio.

Patent Trend by Technology Area

Yearly patent publications since 2023

Product themes

Product-level themes inferred from filings since 2023, with category chips showing where each theme appears. Select a theme to filter the patents below.

162 US filings (since 2023) · 12 categories · 7 themes

Machine Vision for Crop & Field Analysis

Utilizing optical sensors and image processing to detect, classify, and analyze crops, terrain features, or harvested material to inform automated machine actions and decision-making.

Harvesting & Mowing
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95since 2023
-52.8%YoY
Horticultural Sensing & Analytics

Technologies for monitoring plant health and environmental conditions using optical, chemical, or physical sensors, combined with data processing and informatics to provide insights and optimize cultivation workflows.

Horticulture & Forestry
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88since 2023
-43.3%YoY
Automated Climate & Irrigation

Systems employing sensors, controllers, and actuators to automatically regulate environmental factors such as water delivery, humidity, temperature, and light spectrum for optimal plant growth.

Horticulture & Forestry
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25since 2023
-66.7%YoY
Advanced Harvesting & Mowing Tool Design

Innovations in the mechanical design and functionality of cutting, collecting, or processing components directly interacting with crops or ground cover.

Harvesting & Mowing
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9since 2023
n/a
Personalized Recommendations

Systems that use user data, preferences, and machine learning to generate tailored advice, product recommendations, goal-setting plans, or contextual information for individuals across different domains.

Business Methods & Fintech
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6since 2023
+100.0%YoY
Post-Harvest Material Handling & Quality

Technologies for efficiently collecting, conveying, separating, and managing harvested materials, including quality control, blending for desired parameters, and processing of biomass.

Harvesting & Mowing
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6since 2023
-33.3%YoY
AI for Medical Diagnostics

Utilizing machine learning, particularly deep learning, to analyze medical data such as images, sensor readings, or physiological signals for disease prediction, diagnosis, or treatment assessment.

Machine Learning & AIComputer Vision
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1since 2023
n/a

Patents

Showing 141-150 of 200

Page 15 of 20
US 11596119 B2GRANTED
A01G25/16

Digital nutrient models using spatially distributed values unique to an agronomic field

Filed:2018-08-13Pub:2023-03-07
Applicant:CLIMATE LLC

In an embodiment, an agricultural intelligence computing system stores a digital model of crop growth, the digital model of crop growth being configured to compute nutrient requirements in soil to produce particular yield values based, at least in part, on data unique to an agricultural field. The system receives agronomic field data for a particular agronomic field, the agronomic field data comprising one or more input parameters for each of a plurality of locations on the agronomic field, nutrient application values for each of the plurality of locations, and measured yield values for each of the plurality of locations. The system computes, for each location of the plurality of locations, a required nutrient value indicating a required amount of nutrient to produce the measured yield values. The system identifies a subset of the plurality of locations where the computed required nutrient value is greater than the nutrient application value. The system computes, for each of the subset of the plurality of locations, a residual value comprising a difference between the required nutrient value and the nutrient application value. The system generates a residual map comprising the residual values at the subset of the plurality of locations. Using the residual map and the one or more input parameters for each of the plurality of locations, the system generates and stores particular model correction data for the particular agronomic field.

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