Expand training datasets by using synthetic data based on existing datasets

Expand training datasets by using synthetic data based on existing datasets.

Interested in this service? Contact us at agrifoodtef@ri.se 

Overview

This service can, together with the company, expand training datasets with synthetic data. If required or appropriate, methodology and expanded data sets will also be a part of the service. By deploying synthetic data, companies can overcome some of the limitations of their existing datasets, leading to improved model performance, reduced costs, and enhanced operational efficiency. The service empowers businesses to innovate and adapt in an increasingly competitive landscape.

More about the service

Discover more about our service, including how it can benefit you, the delivery process, and the options for customisation tailored to your specific needs!

The service "Expand Training Datasets by Using Synthetic Data Based on Existing Datasets (S00030)” addresses challenges relating to limited data availability, data management complexity, and operational inefficiencies, enabling organisations to enhance their machine learning models and achieve better outcomes.

Before the service: As an illustration, a company has a limited dataset of their robot operating in a factory setting.
The dataset captures only a restricted and narrow range of conditions, such as lighting or object placement. As a result, the robot’s performance is suboptimal, with a high error rate during testing.

After the service: The company receives a detailed assessment and customised recommendations for how to best supplement existing datasets. For example, the company expands its dataset to include synthetic images generated from the original dataset. These images simulate various lighting conditions, object placements, and even unexpected obstacles.

Post-implementation, the robot’s error rate drops, leading to superior reliability and efficiency in real-world operations.Additionally, the service can assist you in connecting with complementary services, such as methodology development, data integration support, and industry collaborations, further enhancing the likelihood of success in leveraging synthetic data for your operations.

Logistics: The AgrifoodTEF project offers the following facilities and support for the company:

Access to Diverse Data Environments: Utilize various simulated conditions for testing your models, including different scenarios reflecting real-world applications.
Data Preparation Support: Assistance in preparing and managing existing datasets to ensure readiness for synthetic data integration.
Expert Guidance: Personnel are available to support your experimentation and help you navigate the complexities of data generation.
Delivery Period: The service is available throughout the year, ensuring access support when required.Duration: Service execution can span several weeks and is dependent on the complexity of the task.
Location: The service is executed at RISE, Sweden, but can be provided remotely.Customer Requirements:The company must provide access to relevant data or resources needed for the tests.
The company’s personnel will be responsible for following all instructions provided by RISE.A document titled “Service description” must describe the details of service setup in collaboration with the RISE customer team, experts, and the client. It must be approved before starting the service.

Deliverables:
Output: The company will receive a summary report detailing the tests conducted and the benefits of the service. Results will also be presented in a final review meeting. If appropriate, the company will also receive the expanded dataset(s).

The service can be adapted to specific customer needs.

The assessment journey starts with a joint meeting where the customer discusses different alternatives with a technical team from agrifoodTEF, supplemented with domain experts from RISE or Asta Zero and members from the internal customer support team.
A roadmap for the service is established, and the service can commence.
Location
Remote
Sweden
Type of Sector
Arable farming
Food processing
Horticulture
Livestock farming
Tree Crops
Type of service
Data augmentation
Provision of datasets
Accepted type of products
Data
Other

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