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Odin AI data filtering automation illustration showing efficient data extraction and sorting processes.

Introducing Data Filtering for Smarter Document Retrieval

Enhance document retrieval with Odin AI’s data filtering for faster, accurate, and relevant data extraction from large datasets.

Eby Paul Daniel AI Tools & Software | Eby Paul Daniel
September 12, 2024
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Odin has introduced a powerful new data filtering feature designed to enhance document retrieval and streamline your search process. This innovation improves how users interact with large datasets from various data sources by leveraging Retrieval-Augmented Generation (RAG) technology. By focusing on relevant data, Odin’s data filtering refines searches before the main retrieval phase, helping users gain meaningful insights from their specific data points.

When managing vast amounts of information, data filtering becomes essential. It helps sift through irrelevant information and ensures that only relevant information is surfaced for analysis. With Odin’s advanced filtering mechanism, you can now apply predefined rules to your document searches, narrowing down the scope and increasing retrieval efficiency. This approach not only saves time but also reduces the chances of data loss and human error in the retrieval process.

Managing large datasets without a proper filtering process can be overwhelming. Odin’s solution offers a smart and intuitive way to implement filtering criteria, allowing you to focus on specific documents, such as those based on metadata like author, file type, or creation date. By integrating data filtering, businesses can now ensure that their document retrieval is accurate, fast, and tailored to meet their unique needs.

Ready to filter smarter? Try Odin AI today!

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What is Data Filtering?

Data filtering is the process of selecting and displaying a subset of data based on specific criteria. It involves sorting through a large dataset to identify specific subsets of information that meet certain conditions or rules. This process is crucial for data analysis, as it enables users to focus on relevant data points and exclude irrelevant or unnecessary information. By applying specific criteria, data filtering helps in extracting meaningful insights from vast amounts of data, making it easier to make informed decisions.

For instance, in a business setting, data filtering can be used to analyze customer feedback by focusing only on reviews from a particular time period or geographic location. This targeted approach allows businesses to gain deeper insights into customer preferences and trends, ultimately leading to better decision-making.

How Odin’s Data Filtering Works

Metadata-Based Filtering

Odin’s data filtering system starts with a pre-retrieval process that uses metadata such as file type, creation date, or author. This allows users to apply specific criteria to narrow down their search, making it easier to focus on the relevant data within a large dataset. For example, if you’re looking for financial reports from a specific time period, you can use filters based on date ranges or document types, significantly improving retrieval accuracy.

Content-Based Filtering

In addition to filtering by metadata, Odin also supports content-based filtering, which analyzes the actual text and information within the documents themselves. This ensures that only documents containing the specific data points or context relevant to the query are retrieved. By doing so, Odin helps you filter out irrelevant information, saving time and improving data accuracy. This comprehensive approach allows revenue operations teams to identify trends and patterns in the data, leading to more informed business decisions.

Schema for Efficient Filtering

A crucial element of Odin’s system is the use of schema. This predefined structure organizes documents in a way that makes them easier to filter. By creating a data type schema, users can ensure that the fields necessary for data filtering—such as title, author, and tags—are properly defined. This structured approach allows the filtering process to run efficiently and ensures that the system retrieves only relevant information based on the filtering criteria.

Cut the clutter – start using Odin’s data filtering now!

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Why is This Important?

  • Efficiency Boost
    Data filtering enhances efficiency by 62%, helping businesses process large datasets faster by focusing on specific data points and cutting out irrelevant information.
  • Improved Data Accuracy
    Using data filtering reduces errors by 43%, ensuring retrieval of only relevant data and preventing data loss.
  • Enhanced Productivity
    By eliminating unnecessary information, productivity increases by 57%, allowing teams to focus on tasks rather than sorting through irrelevant data.
  • Time Savings
    Applying filtering criteria like file type or author cuts search time by 34%, enabling faster access to critical insights.
  • Cost Reduction
    Efficient data filtering reduces retrieval costs by 28%, minimizing errors and improving data accuracy.
  • Business Intelligence
    Companies using business intelligence via data filtering see a 49% increase in actionable insights, helping make informed decisions.

Get the info you need, fast. Explore Odin AI’s tools!

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Step-by-Step Guide: Setting Up Data Filtering

Step 1 Create a Data Type Before Configuring the Document Filtering Agent

Before adding document filtering to your agent, it’s essential to first create a Data Type in Odin’s Knowledge Base. This ensures that your data filtering process works seamlessly with the predefined document schema. Here’s how to do it:

Navigate to the Knowledge Base

From the main dashboard, click on Knowledge Base in the navigation panel. You’ll see different sections such as Data, Data Types, and Data Views, which are crucial for data management.

Go to the Data Types Section

In the Knowledge Base, click on the Data Types tab to view existing data types. This section lets you create structured data types for use in data filtering and document retrieval.

Odin AI’s Knowledge Base offers powerful tools for managing data types and crawling websites, automating the extraction and organization of critical information. Enhance your workflows with AI-driven knowledge management for improved operational efficiency and data accuracy.

Create a New Data Type

Click the Create Data Type button at the top of the screen. This opens a window where you can define the structure (or schema) for the documents your agent will process. Structuring your data properly is vital for applying filters that match the specific data points you’re looking for.

Define the Schema for Your Data Type

You’ll need to define the schema by writing the JSON structure. This schema includes attributes such as document_id, title, author, created_date, tags, status, and version—all of which are critical for data filtering. This filtering process ensures that your document retrieval is accurate and aligned with the filtering criteria.

Odin AI schema builder interface for defining data structures with fields for name, year, quarter, and revenue.

Example:
{

    “name”: “Document Name”,

    “year”: 2021,

    “quarter”: 1,

    “revenue”: “$29829”

}

Save the Data Type

Once the schema is defined, give your data type a meaningful name, such as “Financial Report Schema”. Click Save to add this data type to your Knowledge Base, making it available for document filtering and other operations.

By creating a well-defined data type, Odin ensures that your filtering criteria are met, and your agent can perform precise and efficient data filtering. This step is critical for processing large datasets and retrieving only the relevant information.

Odin AI platform showcasing the successful creation of a financial document retrieval schema with fields such as name, year, quarter, and revenue.

Step 2 Attaching the Data Type to Documents

Navigate to the Knowledge Base

Start by navigating to the Data section under the Knowledge Base tab. This is where you’ll manage your documents for data filtering and retrieval.

Odin AI platform displaying an organized knowledge base with various uploaded resources including articles and reports, facilitating efficient data management and retrieval.

Select the Document

Next, click on the document to which you want to attach the data type. This step is crucial in ensuring that the document is properly categorized for effective document retrieval.

Odin AI Knowledge Base displaying the Cisco 2023 Annual Report with detailed financial highlights and document metadata.

Attach the Data Type

On the right-hand side of the screen, you will find a section labeled Document Data Type with an option to Attach Data Type. This is where you will link your document to the appropriate data type for filtering criteria.

Choose the Correct Data Type

Click the Attach Data Type button, and from the dropdown list, select the data type you created earlier (e.g., “Financial Document”). This connection ensures that the document is ready for the filtering process, focusing on the specific data points defined in the schema.

Odin AI platform displaying a prompt to select a financial document retrieval schema for structuring data within the knowledge base, including fields like name, year, quarter, and revenue.
Odin AI platform showcasing the Cisco 2023 Annual Report PDF with options to attach a data type, including fields such as name, year, quarter, and revenue for structured financial data management.

Save the Changes

Once you’ve selected the correct data type, save the changes. This step finalizes the connection between the document and the data type, enabling more efficient data filtering during retrieval.

Repeat for Other Documents

If you have multiple documents, repeat the process for each one. Attaching the relevant data type to every document ensures that your agent can apply accurate filters to retrieve relevant information efficiently.

Why It’s Important?

Attaching the data type is essential because it allows your agent to retrieve and filter documents based on the structured fields (e.g., name, year, revenue). Without attaching the data type, your agent lacks the structured data necessary to process queries effectively, which may lead to incomplete or inaccurate results in the filtering process.

Stop wasting time on irrelevant data. Try Odin AI!

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Step 3 Create a Document Filtering Agent

Navigate to the “Agents” Section

Start by logging into Odin and accessing the main dashboard. On the left-hand side, you’ll find a navigation bar with several icons, including the Agents tab, where you can manage and create new agents.

Click on the Agents tab, this will open the Agents Dashboard, displaying all your existing agents.

Odin AI platform displaying the agents dashboard with options for creating custom agents and managing default agents, including AI-powered tools for search, image generation, and document analysis.

View Custom and Default Agents

In the Agents Dashboard, you’ll find two categories of agents

  • Custom Agents: These are agents you’ve created, or you can create new ones in this section.

  • Default Agents: These are pre-built agents provided by Odin, like the AI Google Search Agent or AI Classification Agent, which come with standard functionalities.

Scroll through this section to view any existing agents and familiarize yourself with their types and roles.

Click “Create Custom”

To build a new agent, find the Create Custom option in the Custom Agents section. Clicking this initiates the agent-building process, allowing you to customize everything from the agent’s personality to advanced features like document filtering.

Configure Agent Properties with Data Filtering

Once you’ve entered the Agent Builder screen after selecting Create Custom, it’s time to configure your agent’s core features, including data filtering.

Odin AI Agent Builder interface displaying customizable agent settings including personality, agent type, AI model (GPT-4o), knowledge base, and integration options such as DALL-E image generation, Shopify, and Salesforce.

Name Your Agent

At the top of the Agent Builder, you’ll find a Name field. By default, the agent is titled “Untitled Agent.” Rename it to reflect its purpose, such as “Document Filtering Agent” if it’s intended for filtering financial documents.

Specify the Personality

The agent’s personality defines how it communicates with users. By default, it is set to “You are a helpful assistant.” You can modify this tone to match your agent’s specific role or keep it as is for general data filtering tasks.

Choose the Agent Type

The default agent type is Plan and React Agent, which is ideal for interactive document filtering tasks. This allows users to ask questions, and the agent will provide filtered results in a conversational format.

Odin AI Agent Builder interface showcasing the creation of a Document Filtering Agent with options to select personality, agent type (Plan and React), AI model (GPT-4o), and knowledge base integration.

Select the AI Model

The default model is GPT-4o, which excels at advanced language understanding and contextual response generation. This makes it well-suited for tasks like filtering documents and extracting insights from large datasets.

Odin AI Agent Builder interface displaying the selection of AI models, including GPT-4o, for a Document Filtering Agent setup.

Link to Your Knowledge Base

Your agent needs access to relevant resources within Odin’s Knowledge Base to retrieve and filter documents effectively. These could include financial documents, reports, or other content based on the filtering criteria defined in the data filtering process.

Odin AI Agent Builder interface showcasing the Knowledge Base configuration for a Document Filtering Agent setup.

Add and Configure Data Filtering

Odin AI Document Filtering Agent setup interface showing configuration options for agent personality, agent type, AI model, knowledge base, and document filtering.
  • Now it’s time to integrate Document Filtering into your agent’s capabilities:
    • On the right-hand panel, scroll down until you find Document Filtering. Click the “+” button to add this feature to your agent.
    • Once added, you will see Document Filtering appear under your agent’s settings.
    • Click on “+Add” under Document Filtering to customize it.
Odin AI Document Filtering Schema Selection interface for financial document retrieval with fields like name, year, quarter, and revenue.
    • Select the Data Type you created earlier. For example, if you created a financial document schema, you might see it as Financial Document in the filtering options.
    • After selecting the Data Type, a window will appear showing various fields based on the schema you defined, such as tags, title, author, created_date, and more.
    • For each field, you can:
      • Mark it as Required if this field must be present in the documents for filtering.
      • Add a Default Value for fields where necessary. This is useful if you want the agent to apply a default criterion automatically without user input.

Here is an example of how to fill out the Document Filtering fields based on a Financial Document use case:

Odin AI document filtering interface showing required fields for financial document retrieval, including name, year, quarter, and revenue.

Summary:

  • Required fields: Tags, Created Date.
  • Optional fields with defaults: Tags (indices), Status, Version.
  • Blank fields: Title, Author, Content, Document ID, Related Documents, Last Modified Date.

Save Your Configuration

  • Once you’ve customized your agent’s properties and filtering rules, click Save Agent to finalize the configuration.
  • Your agent is now equipped with core functionality and Data Filtering, allowing it to efficiently process and return only the most relevant documents based on the set criteria.

Need faster results? Odin AI has your back.

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Smarter Document Retrieval in Action

Odin AI interface showing data filtering results for quarterly sales in 2021, with a final calculation of total sales figures for the year.
Odin AI interface displaying the summarization of MUAL 2023 financial results with detailed revenue, deferred revenue, and remaining performance obligations.
Odin AI displaying the financial revenue of MUAL for fiscal year 2023, with a reported revenue of $3.9 billion and highlights of their networking solutions and software automation growth.
Odin AI showing key takeaways from MUAL's Q2 2022 results, including revenue, net income, gross margin, operating expenses, and company outlook for the upcoming quarters.

Real-World Applications Of Data Filtering

Industry Use Cases Statistics

Finance

- Financial reports and audits.

- Sorting revenue by date.

63% faster retrieval

44% fewer errors.

Healthcare

- Patient records filtering.

- Retrieving research papers.

57% improved data accuracy

39% time saved.

Legal

- Filter case files by date.

- Retrieve legal documents by author.

49% quicker searches

52% more efficient results.

E-commerce

- Customer data and invoices.

- Sorting sales records by transaction type.

61% speed boost

33% less irrelevant data.

Education

- Retrieve research and student records.

- Filtering survey data.

45% better accuracy

58% faster document access.

Government

- Filter regulatory documents.

- Retrieve public records by content.

54% faster compliance

41% more accurate retrieval.

How Business Intelligence Can Get Smarter with Relevant Data Filtering

  • Make Faster Decisions by Focusing on the Right Data
    With data filtering, businesses can quickly cut through the clutter and make informed decisions based on relevant information.

  • Get More Accurate Results Every Time
    Data filtering techniques ensure that business intelligence tools only analyze relevant data, leading to fewer errors and improved data accuracy.

  • Discover Hidden Trends and Insights
    By filtering out irrelevant data, companies can dig deeper into large datasets to find meaningful insights that help drive better strategies.

  • Save Time by Narrowing Your Search
    Using filtering criteria like date or author makes it easier to retrieve the specific data points you need, without wasting time on irrelevant information.

  • Boost Efficiency and Focus
    Focusing on only relevant data with data filtering helps streamline business intelligence processes, allowing for faster, more efficient analysis.

  • Reduce Errors with Automated Filtering
    Automating the filtering process helps cut down on human error, ensuring that businesses always work with the most accurate and relevant information.

Tired of sifting through data? Let Odin AI help!

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Get Smarter with Odin AI’s Data Filtering

We understand that the constant flood of information can be overwhelming. Whether it’s financial reports, legal documents, or customer data, sorting through endless files to find the right piece of information feels like searching for a needle in a haystack. At Odin AI, we’ve built a solution that doesn’t just retrieve data—it empowers you to access relevant information with unparalleled speed and accuracy.

With Odin AI’s data filtering technology, we eliminate the noise and help you focus on what truly matters. Our system sifts through large datasets, removes irrelevant data, and delivers only the insights that drive your business forward. It’s not just about saving time—it’s about giving you the power to make faster, smarter, and more confident decisions.

Because we believe in more than just efficiency—we believe in your success. At Odin AI, we’re committed to lightening your load, so you can focus on the things that matter most to you. Let us help you regain control, because your time and decisions deserve precision.

Have more questions?

Contact our sales team to learn more about how Odin AI can benefit your business.

FAQs

Data filtering is a process that helps narrow down large sets of data by removing irrelevant information and focusing on what’s important, making it easier to find specific data points.

Businesses can use data filtering to streamline operations in areas like financial reporting, legal document retrieval, and customer data analysis by narrowing down results to only what’s necessary.

Data filtering is essential for business intelligence because it enables companies to extract relevant data, reducing errors and providing more accurate insights that help make informed decisions.

Yes, data filtering significantly reduces the time spent on document retrieval by focusing on specific subsets of data, allowing businesses to work more efficiently and avoid information overload.

Odin AI uses metadata and content-based criteria to filter documents before retrieval, ensuring only relevant information is retrieved, which saves time and boosts accuracy.

No, data filtering does not delete information. It temporarily hides irrelevant data from view but keeps the full dataset intact. Users can still access the entire dataset if needed.

Data filtering helps businesses manage large datasets more efficiently by extracting only the most relevant data, leading to faster decision-making and improved data accuracy.

Industries like finance, healthcare, legal, e-commerce, education, and government can all benefit from Odin AI’s data filtering, as it helps streamline document retrieval and improves data management.

Odin AI’s data filtering is unique due to its integration with Retrieval-Augmented Generation (RAG), which enhances the retrieval process by using both metadata and content-based criteria, making document retrieval smarter and faster.

Setting up data filtering in Odin AI involves creating a data type in the Knowledge Base, attaching it to documents, and configuring filtering criteria in the agent dashboard to streamline document retrieval based on relevant attributes.

Yes, Odin AI allows users to customize filtering criteria, such as file type, date, author, and more, making it easy to retrieve exactly the data you need.

By focusing on relevant data, Odin AI’s data filtering enhances business intelligence processes, enabling businesses to make faster, smarter decisions with more accurate insights.

Yes, Odin AI automates the data filtering process, reducing human error and ensuring that only the most accurate and relevant information is retrieved.

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