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  1. Home
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  3. HeardThat
HeardThat logo

HeardThat

Smart Hearing Technology Revolutionizes Speech Clarity in Noisy Environments

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In the age of smartphones, hearing technology has evolved dramatically, extending beyond basic amplification to incorporate sophisticated signal processing. While significant advances have been made, traditional hearing devices still struggle with a fundamental challenge: separating speech from background noise. This technical limitation affects millions of people worldwide who rely on hearing aids or assistive devices to maintain their quality of life. In this article, we explore a groundbreaking solution that's redefining speech clarity for hearing device users. Developed through machine learning techniques that teach computers to recognize and enhance human speech, this technology represents a major step forward in making conversations—and life in general—clearer and more accessible for those with hearing impairments. Through detailed technical analysis and user testimonials, we'll examine how this innovative approach is transforming everyday experiences for people who struggle with traditional hearing aids in noisy environments.

The Problem of Speech in Noise

Traditional hearing devices face a significant challenge in noisy environments, where they amplify all sound equally. This approach, while effective for some aspects of hearing, makes it extremely difficult to distinguish speech from background noise. The cocktail party problem—a well-known phenomenon in auditory perception—illustrates how challenging it is for the human brain to focus on a specific speaker in a crowded room.

To address this limitation, hearing assistive devices typically amplify everything, including unwanted noise. However, this approach often results in audio that's equally difficult to understand, if not more so, than the original input. The issue is particularly pronounced when multiple speakers are present or when the background noise is complex and variable.

HeardThat represents a significant advancement in this area by leveraging machine learning technology specifically focused on speech enhancement. By training neural networks on thousands of hours of recorded speech, the system learns to distinguish between useful speech signals and ambient noise. This targeted approach allows the app to amplify speech while reducing or eliminating other sounds, resulting in audio that's more natural and easier to understand than what traditional amplification methods provide.

The technology works through a straightforward process that connects existing hearing devices to a smartphone running the HeardThat app. By processing audio through a smartphone's powerful computing capabilities, the system can perform real-time analysis of incoming sound, separating speech from noise with greater precision than conventional devices allow. This capability preserves the integrity of the original audio while significantly improving the user's ability to understand and engage with spoken communication in challenging acoustic environments.

How HeardThat Works

HeardThat's core technology relies on machine learning algorithms trained on extensive datasets of speech and noise. Unlike conventional approaches that mathematically define noise, this neural network-based system learns distinctions through pattern recognition in large audio collections. The result is significantly improved speech clarity without indiscriminate noise cancellation.

The app operates seamlessly with existing hearing aids and headphones by turning a smartphone into a sophisticated microphone. Key to its functionality is accurate microphone positioning, with users instructed to point their phone's top edge towards the speaker. This placement helps the app's algorithms focus on the intended audio source while minimizing interference from other directions.

The technology supports a wide range of devices, including traditional headphones, wireless earbuds like AirPods, and nearly all major Bluetooth-compatible hearing aid brands. Installation requires basic technical knowledge for Bluetooth-enabled devices, though the app automatically detects hearing aids and guides users through manual selection if needed.

The app presents two primary modes: Directional and All voices. Directional mode allows precise focus on single speakers, while All voices mode captures ambient audio. Both modes demonstrate significant improvements over traditional hearing devices, with users reporting reduced difficulty in understanding speech in noisy environments. The app's effectiveness has been backed by user feedback, including reported reductions in background noise while preserving clear speech.

Getting Started with HeardThat

The app requires users to connect their hearing devices to their phone via Bluetooth, with the connection needing to support both phone calls and general audio. Users should adjust their phone's microphone settings to their lowest possible level to prevent additional noise pickup.

The process begins with selecting the appropriate hearing device type in the app's Settings menu. The app automatically detects hearing aids connected via Bluetooth, but users can manually select their device if automatic detection fails. The system is compatible with a wide array of devices, including traditional headphones, wireless earbuds, and nearly all major Bluetooth-compatible hearing aid brands.

After setting up the device connection, users position their phone to capture the desired audio. The app provides clear instructions to help users achieve the best results. For most applications, users should point the top edge of their phone toward the speaker while maintaining a distance of about one foot. This optimal positioning helps the app's algorithms focus on the intended audio source while minimizing interference from other directions.

The app offers two primary operation modes: Directional and All voices. Directional mode allows users to concentrate on single speakers by eliminating their own voice from the mix. To activate this feature, users set noise removal to 100% and select Directional mode, following the top-of-phone orientation for optimal audio capture.

Users can initiate a session by pressing the "Start" button within the app. The system then processes incoming audio, using machine learning algorithms to separate speech from background noise. The effectiveness of this process has been widely praised by users, who report significant improvements in their ability to understand spoken communication in challenging acoustic environments.

For additional support, users can access comprehensive troubleshooting resources through the app's Feedback page. This feature allows users to submit detailed feedback, including audio recordings of their sessions, for further analysis. The app also provides a video walkthrough demonstrating proper usage, available via the YouTube link provided in the documentation.

The company continues to refine the user experience, expanding support for Directional mode across more phone models. Users who encounter issues can contact support through the app's built-in messaging system, email support@heardthat.com, or access additional resources through the Feedback page. The technology has demonstrated effectiveness in various applications, from personal conversations to listening to television, with numerous users reporting improved clarity and reduced background noise interference.

Using HeardThat

The HeardThat app provides two primary modes for managing audio in different listening situations: Directional and All voices. Directional mode, which serves as the default setting, closely emulates natural conversation by focusing on audio originating from the direction the phone is pointing. To prevent users from hearing their own voice in this mode, the app employs a simple yet effective procedure: users set Noise removal to 100% and select Directional mode, while ensuring the phone's top edge is oriented toward the speaker.

In contrast, All voices mode captures audio from all directions, including the user's own voice. This mode is particularly useful in environments with multiple speakers or complex acoustic conditions. Users can choose between these modes through the app's interface, which guides them through the process using a visual walkthrough video available on YouTube.

The app's operation requires minimal technical expertise, as it works with a wide range of devices including traditional headphones, wireless earbuds like AirPods, and nearly all major Bluetooth-compatible hearing aid brands. Users begin by connecting their preferred device to their phone, typically positioning the phone within about one foot of the speaker for optimal audio capture. The app automatically detects connected devices or guides users through manual selection if necessary.

After connecting the device and adjusting the microphone settings to the lowest possible level, users initiate a session by pressing the "Start" button. The app then processes incoming audio using proprietary machine learning algorithms to separate speech from background noise. This technical foundation enables the app to provide clear, intelligible audio while preserving the natural qualities of the original sound.

Mode-Specific Features:

  • Directional Mode: This feature isolates specific speakers by removing the user's own voice from the audio mix. To activate, users set Noise removal to 100%, select Directional mode, and orient the phone's top edge toward the intended speaker.

  • All Voices Mode: In this configuration, the app captures audio from all directions simultaneously. While more inclusive, this mode may retain ambient noise and multiple voices compared to Directional mode.

User Feedback and Support:

The app includes several features to enhance the user experience and facilitate troubleshooting. Users can submit feedback directly through the app, including recent audio session recordings, which can be crucial for technical support. Additionally, the app provides a video tutorial demonstrating proper usage and an automated support system through the built-in messaging platform.

Technical Requirements:

To use HeardThat effectively, phones must support both Bluetooth for device connections and audio streaming capabilities. Users should ensure their device's microphone settings are adjusted to minimize background noise interference. The app's compatibility extends to all major Bluetooth-compatible hearing aid brands, making it an accessible solution for various hearing device users.

Feedback and Support

The app's feedback mechanism is designed to be user-friendly and highly informative. When submitting feedback, users are encouraged to include their email address for follow-up and troubleshooting tips, though this step is not mandatory. For deeper technical analysis, users can attach recent audio session recordings, which become available through a simple file selection process. The system allows users to review previous submissions using arrow buttons next to recorded sessions, making it easy to track their interaction history.

Users can reach out through multiple channels. The built-in support system enables quick messaging directly within the app, while email support is available at support@heardthat.com. For users not currently using the app, support@heardthat.com remains operational, allowing questions and comments to be submitted even when the app is not active.

The technology has proven effective in various settings. Users report particularly positive experiences when watching television, with one reviewer noting, "Wonderful! I've never heard that before." The app's ability to manage background noise demonstrates particular strength in challenging environments, as this testimonial highlights: "Smart enough to recognize speech."

From a technical standpoint, the app operates seamlessly with a wide range of devices. It works with both wireless earbuds like AirPods and traditional headphones, requiring only basic technical setup. For those using Bluetooth hearing aids or implants, the app automatically detects connections, though users can manually select their device in the Settings menu. The technical foundation relies on machine learning algorithms trained on thousands of hours of speech data, all processed through the smartphone's powerful computing capabilities.

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