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Page Properties

Target release

Type // to add a target release date

Document status

Status
titleDRAFT

Document owner

Matthew Kutugata

Tech lead

Matthew Kutugata Boscosylvester John (Unlicensed)

Technical writers

Navjot Singh

QA

Maria Laura Cangiano

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The primary goal is to extract detailed vegetation segments from field images. These images include additional tools like gray mats and color cards to enhance the accuracy of segmentation. The segments extracted are intended to be used directly for detailed analysis or to create synthetic image data, facilitating diverse machine learning tasks.

  1. Explore the dataset

    check the status of the backlog

  2. Process Images

  3. Monitor

Images Sample Examples

Weeds

Gallery
columns5
excludePicture0.jpg, NCB05413.JPG, NCB05414.JPG, TXB05162.JPG, TXB05163.JPG, TXB05161.JPG
sortname

Cover crops

Gallery
includeTXB05163.JPG, TXB05162.JPG, TXB05161.JPG
columns3

Cash Crops

Gallery
includeNCB05413.JPG, NCB05414.JPG
columns2
sortname

Key Features

Feature

Description

Reporting

clean and organize backlogged data, understand it deficiencies, and review issues with current collection and data upload

  • output: organize the contents of various tables and blob containers into a single working table (.csv).

  • output 2: generate report of missing data, current status of the dataset and collection across locations, species, and plant types. Generate report about an major issues like the discrepency between uploaded jpgs, raws, and table entries.

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Color correction

organzie data by state, capture date, and 3 hour time intervals

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Develop Pipeline roadmap

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Semi-Automatic

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Key Features

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Feature

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Description

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Metric

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Semi-Automatic

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satisfaction score

Validation

\uD83E\uDD14 Assumptions

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Utilize a combination of classical digital image processing, and deep learning to generate multiple types of labels for the images, such as bounding boxes and segmentation masks. These labels are critical for training machine learning models and for validating the accuracy of computer vision algorithms.

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Automate

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Document

image quality classification

Verify label accuracy

Validation

Timeline

Roadmap Planner
maplinks
timelinetrue
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pagelinks
titleRoadmap%20Planner
hash0fd62e7e85390a5e83b027e86ab2a6a7d8bab6b49cf0999c5768bba8b64e834e

\uD83D\uDDD2 Outputs

ID

Requirement

Category

Description

Format

Notes

A.1

weed semantic mask

dataset

PNG

A.2

cover crop semantic mask

dataset 

PNG

 

A.3

cash crop semantic mask

dataset

PNG

A.4

bounding box detection

dataset

JSON object

A.5

Metadata

dataset

JSON

B.5

Report

Monitoring

PNG/CSV

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