Market Context — Why This Technology, Why Now

The increasing complexity of digital interfaces across industries, coupled with rising user expectations for personalized and context-aware information, is driving a global push for more adaptable UI/UX solutions. Regulatory pressures for enhanced safety in automotive and industrial sectors also necessitate clearer, more efficient information delivery. This technology provides a critical advantage by enabling dynamic display optimization, reducing development costs, and improving operational safety and user satisfaction in a rapidly evolving digital landscape.

Key Competitive Advantages
01

Enables intuitive display customization with simple operations, allowing instantaneous changes to the number and size of meters.

02

Maximizes information visibility and efficiency by optimally sizing and positioning meters, especially with multi-row bar meter configurations.

03

Offers robust, examined patent protection, registered after overcoming 6 prior art references and 2 office actions.

Market Opportunity
🚗 Automotive Infotainment
$20B globally (AI est.)
The evolution of autonomous driving technology and the widespread adoption of connected cars are rapidly increasing demand for multi-functional and personalized in-car information displays.
Tier 1 automotive infotainment system suppliers Electric vehicle manufacturers Autonomous driving software developers Automotive display panel manufacturers
🏭 Industrial Equipment HMI
$10B globally (AI est.)
Investments in intuitive and highly visible Human-Machine Interfaces (HMI) are growing, driven by the smart factory trend and the goal of improving operator efficiency in manufacturing environments.
Industrial control system manufacturers Factory automation solution providers Heavy machinery and equipment OEMs Process control software developers
🏠 Smart Home Devices
$3.5B globally (AI est.)
As smart home devices become more multifunctional, there is increasing demand for UIs that efficiently display information and allow for simple operation to meet user needs.
Smart home hub and controller manufacturers IoT device developers for home automation Consumer electronics brands Home security system providers
IP Defensibility — Why Competitors Can't Replicate This
What This Patent Covers

This patent protects the core control logic for dynamically customizing display meters, specifically the ability to change the total number and size of meters based on user input. Its robustness is evidenced by successfully overcoming two office actions and six prior art references during examination, indicating a strong and stable intellectual property foundation.

Competitive White Space

While this patent covers dynamic display control, it does not extend to advanced sensor integration for environmental awareness or augmented reality overlays. Licensees could develop additional IP in haptic feedback systems or predictive UI based on user behavior without conflict.

Economic Impact
~$130K/year estimated development cost savings per project (est.)
estimated ROI · USD · AI analysis
ROI Calculation Logic

Implementing this technology could significantly reduce person-hours for complex UI screen design, development, and user testing. For example, a UI/UX development team of 5 members (average annual personnel cost of $53K/person (AI est.)) achieving a 25% reduction in annual person-hours could realize $65K/year (AI est.) in direct personnel cost savings. Additionally, shortening prototype creation and reducing rework could yield approximately $65K/year (AI est.) in indirect cost savings, totaling over $130K/year (AI est.) in cost reductions.

Speed to Market
5× faster than in-house development
Developing this technology in-house would typically require approximately 2.5 years, encompassing UI/UX design, software implementation, and integration testing with various devices. However, by licensing this patent, companies can leverage an established technical concept and structure, potentially integrating it as a software module into existing systems within approximately 6 months. This significantly accelerates time-to-market, enabling licensees to launch products and services ahead of competitors.
Competitive Positioning

X: UI Customizability
Y: Information Visibility & Efficiency

Business Models & Applications
📝 Software Licensing
Offers the display control algorithm as a software module to automotive and industrial equipment manufacturers, contributing to shorter development cycles.
🤝 UI/UX Co-Development
Collaborates with customers in specific industries to jointly develop custom UI/UX solutions based on this technology, enabling rapid market entry for optimized products.
📦 Embedded Module Provision
Provides display control modules with this technology embedded to hardware vendors, enabling integration into diverse devices and expanding product lineups.
Adjacent Application Opportunities
🏥 Medical Devices
Optimized Vital Sign Monitoring Displays
In operating rooms or ICUs, dynamically changing and optimizing the display of critical patient vital signs could reduce cognitive load for medical professionals and support faster decision-making, potentially improving patient outcomes by 15-20%.
✈️ Aviation Cockpits
Dynamic Flight Information Display Reconfiguration
Automatically reconfiguring the layout and size of various meters and indicators on flight information displays based on pilot flight status or phase (takeoff, cruise, landing) could enhance visibility and operability, reducing pilot workload by an estimated 25%.
🏗️ Construction & Heavy Machinery
Context-Aware Operation Panels for Heavy Equipment
For construction machinery like bulldozers or cranes, optimizing the display of essential gauges (e.g., hydraulic pressure, load meters) on the operation panel according to work mode (excavation, transport, lifting) could support safer and more efficient operation, potentially boosting productivity by 10-15%.
Integration Roadmap — Estimated 9-Month Deployment
Phase 1: Requirements & Compatibility Assessment
Duration: 2 months
Evaluate technical compatibility with the licensee's existing systems (e.g., in-vehicle ECUs, HMI platforms) and define detailed integration requirements for this technology. Design the linkage with existing display frameworks.
Phase 2: Prototype Development & Functional Validation
Duration: 4 months
Develop a prototype incorporating this display control module based on the defined requirements. Conduct verification of dynamic display changes and operability in a testbed environment closely simulating real-world conditions.
Phase 3: Production Implementation & Optimization
Duration: 3 months
Based on prototype validation results, implement this technology into the product for production and perform final adjustments and optimization for mass production. Incorporate user feedback for continuous UI/UX improvement.
Technical Feasibility
This technology pertains to the control logic for meters displayed on a screen and can be easily integrated as a software module without requiring extensive hardware modifications to existing systems. The patent claims clearly define functions such as receiving input from an operating unit, changing the total number of meters, and modifying their size, all based on general-purpose UI control techniques achievable on existing OS and frameworks. Therefore, adopting companies can integrate this technology with relatively low technical hurdles, adding it to their current display systems or ECUs.
Success Scenario
Upon integration, the UI of in-vehicle displays could dynamically optimize based on driving conditions or user preferences. For instance, detailed navigation and fuel economy data might be prominently displayed during city driving, while speed and ACC status could be highlighted on highways. This would allow drivers to intuitively grasp essential information, enhancing safety, and could reduce UI design and testing efforts for development teams by an estimated 66%.
Patent Record
APPLICATION NO.
特願2023-001494
REGISTRATION NO.
7542877
FILING DATE
2023/01/10
GRANT DATE
2024/08/23
EXPIRATION DATE
2043/01/10
PATENT HOLDER
株式会社ユピテル
Examination History
2023年02月07日
手続補正書(自発・内容)
2023年02月07日
出願審査請求書
2023年10月03日
拒絶理由通知書
2023年12月01日
意見書
2023年12月01日
手続補正書(自発・内容)
2024年02月13日
拒絶理由通知書
2024年04月03日
意見書
2024年04月03日
手続補正書(自発・内容)
2024年07月16日
特許査定