Market Context — Why This Technology, Why Now

The convergence of traditional broadcasting with IP networks is accelerating globally, driven by the demand for 4K/8K content, interactive services, and robust data backbones for smart cities and industrial IoT. This trend amplifies the need for transmission systems that can seamlessly integrate diverse data streams while maintaining high reliability and resilience against environmental interference, such as atmospheric attenuation in satellite links. This technology directly addresses these critical infrastructure requirements.

Key Competitive Advantages
01

Achieves highly stable frame synchronization in hybrid broadcast and IP network transmissions, enabling seamless content delivery and data integration.

02

Ensures communication quality with superior noise immunity, maintaining high reliability even in adverse environments like 21GHz satellite rain fade through energy spreading and bit averaging.

03

Secures long-term exclusivity until 2041 (14.4 years remaining), providing a stable business foundation. This robust patent overcame four prior art challenges and rigorous examiner objections.

Market Opportunity
Satellite Communication 🛰️
$350M domestically (AI est.)
Addresses the growing need for stable communication in harsh environments, such as mitigating rain attenuation in 21GHz band satellite broadcasting, directly improving reliability.
Satellite service providers Satellite equipment manufacturers Aerospace and defense contractors
Next-Generation Broadcast & Streaming 📺
$450M domestically (AI est.)
High-reliability frame synchronization is crucial for stable 8K/4K content distribution and expanding interactive services through IP network integration.
Broadcast network operators Streaming platform providers Consumer electronics OEMs
Industrial IoT/M2M 🏭
$200M domestically (AI est.)
Improving the stability of sensor data transmission for factory equipment and infrastructure monitoring significantly contributes to productivity gains and enhanced risk management.
Industrial automation solution providers Smart factory integrators Critical infrastructure monitoring companies
IP Defensibility — Why Competitors Can't Replicate This
What This Patent Covers

This patent protects the specific configurations of a receiving apparatus, clearly defined across three claims, for stabilizing frame synchronization and enhancing noise immunity in hybrid transmission systems. Its robustness is evidenced by successfully overcoming four prior art challenges and examiner rejections through strategic amendments.

Competitive White Space

This patent primarily covers reception-side signal processing for frame synchronization and noise immunity. White space exists in developing novel hybrid transmission protocols, advanced data encryption layers, or integrated network management systems for these environments.

Economic Impact
~$50K/year estimated operational cost reduction and opportunity loss mitigation per facility (est.)
estimated ROI · USD · AI analysis
ROI Calculation Logic

By stabilizing frame synchronization and improving noise immunity, this technology could reduce system failure rates by ~10%. This could cut ~20% of annual system operational costs, equating to ~$50K (AI est.) from a total ~$150K (AI est.) annual operational budget. Additionally, a ~5% reduction in opportunity loss from service interruptions is anticipated, leading to an estimated annual economic benefit of ~$50K (AI est.).

Speed to Market
4× faster than in-house development
This technology's detailed specifications for transmitting and receiving apparatus components and signal processing algorithms are fully described in the patent, allowing for immediate development without a conceptual proof-of-concept phase. Its design for integration into existing broadcast and IP communication infrastructure significantly shortens the development timeline, potentially reducing market entry by 2.2 years.
Competitive Positioning

X: Transmission Reliability
Y: Environmental Adaptability

Business Models & Applications
🤝 Product & System Licensing
License this technology to manufacturers of broadcast receiving devices and IP communication equipment, enhancing product competitiveness and adding value.
💡 Joint Development & Solution Provision
Collaborate with specific industries (e.g., satellite communication, broadcasters, infrastructure companies) to develop and provide high-reliability transmission solutions incorporating this technology.
🌐 High-Reliability Communication Platform Business
Establish a communication platform based on this technology, offering stable frame synchronization and noise immunity to service providers.
Adjacent Application Opportunities
Autonomous Driving & Connected Cars 🚗
Ultra-Stable V2X Communication
This technology could dramatically improve data transmission stability in vehicle-to-vehicle (V2V) and vehicle-to-infrastructure (V2I) communications, even amidst radio interference or adverse weather. This enhances safety and real-time control reliability for autonomous driving systems, potentially reducing critical communication failures by over 30%.
Drone & UAV Control 🚁
Enhanced Remote Control Communication Reliability
For remote-controlled unmanned aerial vehicles (UAVs) used in disaster monitoring or logistics, this technology could boost resistance to noise and signal interruption. This improves mission certainty and safety, ensuring critical control signals are maintained with over 99.9% reliability.
Telemedicine & Healthcare 🏥
High-Reliability Medical Data Transmission
In critical applications like remote surgical assistance and patient monitoring, this technology could minimize delays and errors in transmitting high-definition medical imagery and biometric data. This establishes a foundational technology to ensure the quality and safety of healthcare services, potentially reducing data loss to less than 0.1%.
Integration Roadmap — Estimated 18-Month Deployment
Phase 1: Technical Evaluation & Requirements Definition
Duration: 3 months
Evaluate the technical specifications of this technology and its compatibility with the licensee's existing systems, defining specific system requirements and target performance.
Phase 2: Prototype Development & Validation
Duration: 9 months
Develop a prototype incorporating this technology based on defined requirements. Conduct performance validation and optimization under near-real-world conditions.
Phase 3: Production Deployment & Operation Optimization
Duration: 6 months
Proceed with deployment to the production environment based on the validated prototype, performing final adjustments and performance optimization based on actual operational data.
Technical Feasibility
This technology can be implemented by integrating specific signal processing modules and software updates into existing broadcast receiving devices and IP communication equipment. The patent claims clearly specify encoding/modulation, demodulation/decoding, and time signal extraction means, making it compatible with general-purpose hardware. It does not require large-scale capital investment and can be introduced as an add-on to existing infrastructure, indicating high technical feasibility.
Success Scenario
Upon adoption, this technology could significantly enhance frame synchronization stability in transmission systems, even under adverse weather conditions like those affecting 21GHz band satellite broadcasting. This is expected to enable uninterrupted delivery of high-resolution content and ensure the reliability of mission-critical data transmission. Ultimately, it has the potential to improve customer satisfaction and foster the creation of new high-value-added services.
Patent Record
APPLICATION NO.
特願2020-151689
REGISTRATION NO.
7579090
FILING DATE
2020/09/09
GRANT DATE
2024/10/29
EXPIRATION DATE
2040/09/09
PATENT HOLDER
日本放送協会
Examination History
2023年08月08日
出願審査請求書
2024年07月23日
拒絶理由通知書
2024年07月29日
手続補正書(自発・内容)
2024年07月29日
意見書
2024年10月01日
特許査定