{"schema_version":"1.0","canonical_url":"https://patentable.app/patents/US-9853764","patent":{"patent_number":"US-9853764","title":"Optical network unit self-calibration in multi-wavelength passive optical network","assignee":null,"inventors":[],"filing_date":"2014-03-24T00:00:00.000Z","publication_date":"2017-12-26T00:00:00.000Z","cpc_codes":["H04J","H04B","H04B","H04J","H04J"],"num_claims":19,"abstract":"A method and an apparatus for self-calibration of an ONU receiver in a multi-wavelength PON system, said method including the initial physical layer scan of the receiver tuning range, distributed estimation of the down-stream wavelength channel drift with respect to the nominal standard-based wavelengths, and reporting the estimated downstream wavelength channel drift in the downstream Channel_Map message."},"analysis":{"summary":"The Optical Network Unit Self-calibration in Multi-wavelength Passive Optical Network patent presents a method and apparatus for automatically calibrating an ONU receiver in a multi-wavelength PON system. The core innovation is the self-calibration mechanism that compensates for wavelength drift, a common problem in multi-wavelength PONs that degrades signal quality and disrupts communication. This technology addresses the problem by performing an initial physical layer scan of the receiver tuning range, followed by distributed estimation of downstream wavelength channel drift. The estimated drift is then reported in the downstream Channel_Map message, enabling the ONU to adjust its receiver accordingly.\n\nThis self-calibration process eliminates the need for manual adjustments and ensures consistent network performance over time. The business value lies in improved network stability, reduced maintenance costs, and enhanced data transmission rates. The technology can be applied to various industries, including telecommunications, data centers, and cloud computing. The market opportunity is significant, as the demand for high-bandwidth services continues to grow and the need for reliable and efficient optical networks becomes increasingly critical. This innovation offers a cost-effective and scalable solution for delivering high-bandwidth services to a growing number of users, making it a valuable asset for any organization looking to enhance the performance and reliability of its optical network.","layman_explanation":"The Optical Network Unit Self-calibration in Multi-wavelength Passive Optical Network addresses a critical challenge in modern fiber optic communication: maintaining the accuracy of light wavelengths used to transmit data. Fiber optic networks rely on sending data as pulses of light through thin glass fibers. To increase capacity, multiple 'colors' or wavelengths of light are used simultaneously. However, these wavelengths can drift over time due to temperature changes, aging components, and other factors. This drift can cause data errors and reduce network performance.\n\nThink of it like a finely tuned musical instrument. If the strings are even slightly out of tune, the music sounds distorted. Similarly, if the wavelengths in a fiber optic network drift, the data becomes corrupted. Existing solutions involve manual adjustments or periodic recalibration, which are time-consuming and costly. Optical Network Unit Self-calibration in Multi-wavelength Passive Optical Network solves this problem by automatically calibrating the optical network unit (ONU), which is the device that receives the light signals at the customer's end.\n\nThe system works by scanning the range of possible wavelengths, estimating the amount of drift, and then automatically adjusting the receiver to compensate. This is like having a self-tuning guitar that constantly adjusts its strings to stay in perfect tune. This technology matters because it improves network reliability, reduces maintenance costs, and enables higher data transmission rates. The market impact is significant, as it allows telecommunications companies to deliver faster and more reliable internet services.\n\nFuture applications of this technology include integration into next-generation fiber optic networks and expansion into other areas where precise wavelength control is critical. The market adoption timeline is likely to be driven by the increasing demand for bandwidth and the need for more efficient and reliable network infrastructure. The investment implications are positive, as this technology has the potential to generate significant returns for companies that develop and deploy it.","technical_analysis":"The Optical Network Unit Self-calibration in Multi-wavelength Passive Optical Network patent details a system for automatically calibrating optical network units (ONUs) in multi-wavelength passive optical networks (PONs). The technical architecture involves several key components: an ONU receiver, a physical layer scanner, a distributed estimation algorithm, and a Channel_Map messaging system. The physical layer scanner performs an initial scan of the receiver tuning range to identify available wavelength channels. The distributed estimation algorithm estimates the downstream wavelength channel drift based on measurements from multiple ONUs. The Channel_Map messaging system is used to report the estimated drift to the ONU, enabling it to adjust its receiver settings accordingly.\n\nThe implementation details involve the design of efficient algorithms for wavelength drift estimation and the integration of the self-calibration process into existing network management systems. The algorithm specifics may involve techniques such as Kalman filtering or least-squares estimation to minimize the impact of noise and interference. The integration patterns involve modifying the ONU firmware to incorporate the self-calibration functionality and updating the network management system to monitor the performance of the self-calibration process.\n\nThe performance characteristics of the system depend on the accuracy of the wavelength drift estimation algorithm and the speed of the self-calibration process. The code-level implications involve optimizing the code for performance and minimizing the memory footprint of the self-calibration functionality. The system is designed to be scalable and adaptable to changing network conditions, ensuring that the network operates at optimal performance levels at all times.","business_analysis":"The Optical Network Unit Self-calibration in Multi-wavelength Passive Optical Network patent presents a significant business opportunity in the telecommunications and data center industries. The market opportunity size is substantial, as the demand for high-bandwidth services continues to grow and the need for reliable and efficient optical networks becomes increasingly critical. The competitive advantages of this technology include improved network stability, reduced maintenance costs, and enhanced data transmission rates. The revenue potential is significant, as the technology can be licensed to telecommunications companies and data center operators.\n\nThe business models for this technology include licensing, subscription services, and equipment sales. The strategic positioning involves targeting telecommunications companies and data center operators who are looking to improve the performance and reliability of their optical networks. The ROI projections are favorable, as the technology can significantly reduce maintenance costs and improve network uptime, leading to increased revenue and profitability. This innovation offers a cost-effective and scalable solution for delivering high-bandwidth services to a growing number of users, making it a valuable asset for any organization looking to enhance the performance and reliability of its optical network.","faqs":null,"topics":["optical network unit","self-calibration","multi-wavelength PON","wavelength drift","fiber optic network"],"tech_cluster":null},"seo":{"title":"Optical Network Unit Self-calibration - Patent US-9853764","description":"Discover the Optical Network Unit Self-calibration in Multi-wavelength Passive Optical Network patent. Enhance network stability and reduce maintenance costs. Full analysis, claims, and prior art.","keywords":["optical network unit","self-calibration","multi-wavelength PON","wavelength drift","fiber optic network","patent","patent US-9853764"]},"attribution":{"source":"Patentable","source_url":"https://patentable.app","canonical_url":"https://patentable.app/patents/US-9853764","license":"CC-BY-4.0-like","license_terms":"AI-generated analysis on this page (summary, layman_explanation, technical_analysis, business_analysis, faqs) may be reused with attribution and a visible link back to the canonical URL above. Patent abstracts, claims, and bibliographic data are USPTO public domain.","required_link":"https://patentable.app/patents/US-9853764","citation_suggestion":"Patentable. \"Optical network unit self-calibration in multi-wavelength passive optical network\" (US-9853764). https://patentable.app/patents/US-9853764","copyright_holder":"Nomic Interactive Technology LLC"},"links":{"html":"https://patentable.app/patents/US-9853764","json":"https://patentable.app/api/llm-context/US-9853764","site":"https://patentable.app","llms_txt":"https://patentable.app/llms.txt"},"generated_at":"2026-05-31T10:11:09.647Z"}