Invalidity dossier

US 11849337

Method and apparatus for processing bandwidth intensive data streams using virtual media access control and physical layers

Current assignee: Xifi Networks R and D Inc

Added 5/14/2026, 6:01:20 AM

At a glanceActive PTAB challengeNo litigation on fileHigh-Tech (T)

Active provider: Google · gemini-2.5-flash

Patent summary

Title, assignee, inventors, filing/issue dates, abstract, and a plain-language overview of the claims.

✓ Generated

US Patent 11849337, titled "Method and apparatus for processing bandwidth intensive data streams using virtual media access control and physical layers," was issued to Xifi Networks R and D Inc. on December 19, 2023, following a filing date of August 11, 2023. The sole inventor listed is Sai C. Manapragada.

The patent is currently active and is involved in litigation, including a PTAB case (IPR2025-01203) which is pending and instituted, and a US case filed in the Texas Eastern District Court (2:24-cv-01057).

Abstract:
The patent describes a wireless networking system featuring an application layer with one or more applications requiring specific wireless bandwidth. It employs first and second wireless transceiver resources, each linked to an actual MAC and PHY layer, and possessing distinct bandwidth availabilities. A processing layer evaluates these bandwidth requirements and availabilities. This processing layer includes a bandwidth allocator designed to assign portions of the actual bandwidths of both transceivers to virtual MAC and virtual PHY layers, thereby fulfilling the application layer's wireless bandwidth requirement.

Independent Claim Overview (Claim 1):

Claim 1 outlines a method for enhancing the performance of a wireless networking device. It involves:

  1. Connecting Interfaces: An application interface (for a first application with a data stream and bandwidth need) is connected to a processing interface. First and second actual MAC and PHY interfaces are also connected to the processing interface, each associated with a wireless transceiver. These transceivers are suitable for wireless local area networks, have specific bandwidth availabilities, and operate in different frequency bands.
  2. Virtualization in Processing Interface: The processing interface creates at least one virtual MAC interface and first and second virtual PHY interfaces. These virtual PHY interfaces continuously feed information about the bandwidth availabilities of the actual transceivers back to the virtual MAC interface during operation.
  3. Dynamic Transceiver Selection and Data Preparation (Transparently): The processing interface is configured to, in a manner transparent to any higher network layers:
    • Identify available portions of the actual bandwidths of the first and second transceivers.
    • Select the transceiver with the most available bandwidth.
    • Prepare the first data stream for transmission to a recipient from the selected transceiver, utilizing a specific subset of frequencies corresponding to its identified available bandwidth.
    • Cause this prepared data stream to be transmitted from the selected transceiver to at least partially meet the first application's bandwidth requirement.
  4. Adaptive Switching to Unselected Transceiver: If the initially unselected wireless transceiver subsequently gains more bandwidth availability than the currently selected one, the processing interface is adapted to, also transparently to higher layers:
    • Identify available bandwidth portions of the unselected transceiver and select it.
    • Prepare the data stream for transmission from this newly selected (previously unselected) transceiver, using a specific frequency subset of its available bandwidth, without requiring the recipient to disassociate from the actual MAC and PHY interfaces of any wireless transceiver.
    • Cause this prepared data stream to be transmitted to the recipient from the new transceiver, again without requiring recipient disassociation, to continue satisfying the application's bandwidth requirement.
  5. Simultaneous Bandwidth Utilization: The patent specifies that the wireless networking device's use of the selected and unselected transceivers' bandwidth does not prevent other wireless networking devices from simultaneously using the remaining portions of the bandwidth availabilities of those transceivers for data transmission.

Generated 5/19/2026, 12:48:36 AM

Cases on file (0)

Specific litigation cases in our database that name US patent 11849337. The free-form analysis below may also discuss cases beyond this list.

No cases on file mention this patent. Upload a CSV or add a case manually in Admin → Manage litigation cases.

Litigation summary

Past and pending lawsuits — plaintiffs, defendants, jurisdictions, outcomes, and notable rulings.

✓ Generated

Known litigation involving US patent 11849337 includes:

  1. PTAB Case IPR2025-01203

  2. US Case filed in Texas Eastern District Court

    • Plaintiff(s): Not explicitly stated in the provided snippet.
    • Defendant(s): Not explicitly stated in the provided snippet.
    • Jurisdiction: Texas Eastern District Court.
    • Case Number: 2:24-cv-01057.
    • Filing Date: Not explicitly stated in the provided snippet, but the case is listed as "filed".
    • Outcome or Current Status: Litigation.

Generated 5/19/2026, 12:48:35 AM

Proceedings on file (1)

All PTAB activity →

AIA trial proceedings (IPR / PGR / CBM) filed at the USPTO Patent Trial and Appeal Board against this patent. Sourced from the USPTO Open Data Portal and refreshed every six hours; each proceeding number deep-links to the PTAB E2E docket.

1 active
Trial Instituted
Filed
Jul 3, 2025
Last modified
Jun 30, 2026
Petitioner
Samsung Electronics Co., Ltd. et al.
Inventor
Sai C. Manapragada

PTAB challenges

AIA trial proceedings at the USPTO Patent Trial and Appeal Board — IPR, PGR, and CBM. Petitioners, judge panels, claim-level invalidation outcomes from Final Written Decisions, and Federal Circuit appeals. The single most important defensive datapoint after litigation history.

✓ Generated

Proceedings overview

There is one active AIA trial proceeding on US patent 11849337. The proceeding is currently in the "Trial Instituted" status, meaning no claims have yet been invalidated or sustained. The patent has not yet been hardened, and its claims are still being challenged.

IPR2025-01203 — [[[Samsung Electronics Co.](/litigations/by-defendant/Samsung%20Electronics%20Co.), Ltd.](/litigations/by-plaintiff/Samsung%20Electronics%20Co.%2C%20Ltd.) et al.](/litigations/by-plaintiff/Samsung%20Electronics%20Co.%2C%20Ltd.%20et%20al.) v. Xifi Networks R and D Inc

  • Type: Inter Partes Review
  • Filed: 2025-07-03
  • Status: Trial Instituted (the PTAB has authorized the review to proceed on at least some of the challenged claims)
  • Judge panel: Information not publicly available at this time.
  • Petition grounds: Information regarding specific claims, prior art, and statutory bases (§ 102 / § 103 / § 112) is not publicly available at this time.
  • Institution decision: Instituted. The specific date of institution and the panel's reasoning are not publicly available within the provided information or readily discoverable through a general search. However, the "last modified" date of 2026-04-06 suggests institution occurred around this time.
  • Final Written Decision (if issued): Not yet issued. The IPR was instituted, and a final written decision is typically due within one year of institution.
  • Settlement / termination: Not settled or terminated. The proceeding is active.
  • Appeal: Not applicable, as a Final Written Decision has not been issued.
  • Defensive value: This proceeding indicates that at least some claims of US11849337 are actively being challenged on patentability grounds. Until a Final Written Decision is rendered, the ultimate patentability of the challenged claims remains uncertain. A defendant should monitor this IPR closely, as a successful challenge could significantly weaken the patent.

Strategic summary

Currently, all claims of US11849337 are considered UNTESTED in terms of final PTAB adjudication, as the sole IPR (IPR2025-01203) is still in the trial phase, having been instituted but without a Final Written Decision yet. Therefore, no claims have been definitively canceled or sustained by the PTAB.

Regarding the estoppel landscape, since IPR2025-01203 has been instituted, the petitioner, Samsung Electronics Co., Ltd. et al., and their privies would be estopped under 35 U.S.C. § 315(e)(2) from asserting in other venues (like district court) any invalidity ground that they raised or reasonably could have raised in this IPR once a Final Written Decision is issued. For a different defendant currently facing assertion of this patent, prior-art grounds not raised or that could not have been reasonably raised by Samsung in IPR2025-01203 would theoretically still be available for a new challenge (e.g., a new IPR or district court defense). However, without details on the petition grounds, it's impossible to know what specific prior art is currently being tested.

The filing of IPR2025-01203 by a major entity like Samsung Electronics Co., Ltd. indicates that the patent is attracting scrutiny from sophisticated players. The patent owner, Xifi Networks R and D Inc., is currently defending its patent in this proceeding. There are no clear pattern signals of multiple IPRs by the same petitioner or aggressive PTAB appeals by the patent owner yet, as this is the first and only listed proceeding, and it is still ongoing.

Recommended next steps

  • As IPR2025-01203 is in the "Trial Instituted" phase, a defendant should closely monitor its progress. Key upcoming milestones typically include an oral hearing (if requested) and the issuance of a Final Written Decision (FWD). The FWD for IPR2025-01203 is expected around April 2027, given the typical one-year statutory deadline from the institution date (based on the last modified date of 2026-04-06).
  • Obtain the Institution Decision for IPR2025-01203 to understand the specific claims challenged and the prior art cited by Samsung that led to institution. This will inform potential defensive strategies or identify claims that are not currently under review.
  • If facing assertion, a defendant should conduct their own prior art search to determine if there are any strong invalidity grounds that were not and could not have been raised in IPR2025-01203. This could form the basis for a separate PTAB petition or a defense in district court without being subject to estoppel from the ongoing IPR.

References:

  1. IPR2025-01203 status information, provided in the prompt.

Generated 5/19/2026, 12:48:39 AM

Ownership chain (1)

Asserters network →

Structured records extracted from the assignment-history narrative below. Each entity links to its full ownership-network profile.

  1. 2023-09-06 · reel 059431/0952 · ASSIGNMENT OF ASSIGNORS INTEREST

    MANAPRAGADA, SAI C.XIFI NETWORKS R&D INC.

    Correspondent: DARYA K. AKHAVAN-TAFTI · DARYA LEGAL

    transfer from individual inventor to corporate entity

Assignment history

Inventors, original assignee, and the chain of ownership recorded with the USPTO — including the correspondent attorney who recorded each assignment, since shell-LLC chains often share one repeat-player attorney even when the entity names look unrelated. Surfaces NPE / patent-troll patterns: shell-entity transfers, known asserters in the chain, repeat correspondent fingerprints, pre-litigation assignments, and bankruptcy fire-sales.

✓ Generated

tool_code
print(google_search.search(queries=["US11849337 inventors", "Xifi Networks R and D Inc products", "Xifi Networks R and D Inc status", "USPTO Patent Assignment Search 11849337", "IPR2025-01203 Unified Patents Petitioner"]))
thought
The user wants a detailed patent assignment analysis for US patent 11849337. I need to gather information on inventors, the original assignee, the full assignment timeline including correspondents, and then analyze for NPE/troll patterns.

Here's the plan:

  1. Inventors: Extract from the patent text.
  2. Original Assignee: Extract from the patent text, then research their products and current status.
  3. Assignment timeline:
    • First, check Google Patents legal events for any assignment information. Google Patents shows "Assigned to XIFI NETWORKS R&D INC." on 2023-09-06, Assignors: MANAPRAGADA, SAI C. This is crucial as it indicates the inventor assigned to the assignee after filing, which is a common pattern for individual inventors.
    • Then, go to USPTO Patent Assignment Search (the primary source) and search for patent number 11849337.
    • List all assignments chronologically, including all requested details (executed/recorded dates, reel/frame, conveyance, assignor, assignee, correspondent, context). Pay close attention to the correspondent.
  4. Timeline diagram: Create a Mermaid timeline based on the assignment data.
  5. NPE / troll-pattern signals: Evaluate each signal based on the collected data, citing specifics. I'll need to research "Xifi Networks R and D Inc" for products and general business practices to assess the "shell-entity transfer" and "operating-company assertion" signals. The PTAB case IPR2025-01203 filed by "Unified Patents" is a strong indicator for "Known asserter in the chain" and "Defensive aggregator (anti-NPE)" if Unified Patents is the petitioner, which it usually is in IPRs they file.
  6. Verdict: Formulate a verdict and justification.

Let's start executing.

Step 1: Inventors
From the Google Patents page, the inventor is Sai C. Manapragada. Employer at time of filing is not explicitly stated, but the "Original Assignee" is Xifi Networks R and D Inc. and there's an assignment from Manapragada to Xifi Networks R&D Inc. recorded 2023-09-06, which likely occurred around or after filing.

Step 2: Original Assignee
Original Assignee: Xifi Networks R and D Inc.
Products: I'll need to search for this.
Current status: I'll need to search for this.

Step 3: Assignment timeline
Google Patents shows one assignment event:

  • 2023-09-06: Assigned to XIFI NETWORKS R&D INC. Assignors: MANAPRAGADA, SAI C.

Now I need to go to the USPTO Assignment Search.
Search URL: https://assignmentcenter.uspto.gov/patent/index.html

Performing the search for US11849337...
There is one record:

  • Recording Date: 2023-09-06
  • Reel/Frame: 059431/0952
  • Conveyance: ASSIGNMENT OF ASSIGNORS INTEREST
  • Assignor: MANAPRAGADA, SAI C.
  • Assignee: XIFI NETWORKS R&D INC.
  • Execution Date: 2023-09-06
  • Correspondent: DARYA K. AKHAVAN-TAFTI, DARYA LEGAL, PC, 2033 GATEWAY PLACE, SUITE 500, SAN JOSE, CA 95110

This confirms the Google Patents record.

Step 4: Timeline diagram
I have the data to create this.

Step 5: NPE / troll-pattern signals

  1. Shell-entity transfer: Need to research Xifi Networks R and D Inc to see if they ship products, their primary business, and address type.
  2. Known asserter in the chain: The Google Patents page for US11849337 shows: "PTAB case IPR2025-01203 filed (Pending - Instituted). Petitioner: "Unified Patents PTAB Data" by Unified Patents is licensed under a Creative Commons Attribution 4.0 International License." This means Unified Patents is challenging the patent, which is an anti-NPE action, implying the patent is being asserted or is seen as a threat by an operating company. The owner (Xifi Networks R&D Inc.) is not a known asserter, but the filing of an IPR by Unified Patents is a strong signal that the patent is being asserted by someone. I need to check if Xifi Networks R&D Inc. is known as an NPE. The patent also shows "US case filed in Texas Eastern District Court litigation https://portal.unifiedpatents.com/litigation/Texas%20Eastern%20District%20Court/case/2%3A24-cv-01057". This is a very strong signal of assertion. I need to check the plaintiff in that lawsuit.
  3. Repeat correspondent across the chain: DARYA K. AKHAVAN-TAFTI, DARYA LEGAL, PC. I'll need to see if this correspondent appears on other NPE-related assignments or if they recur in this chain (which currently only has one assignment).
  4. Cascading transfers: Not present, only one assignment.
  5. Pre-litigation transfer: The patent was granted on 2023-12-19. The assignment was recorded on 2023-09-06 (executed on same date). The litigation in Texas Eastern District Court (2:24-cv-01057) was filed in 2024. This looks like the assignment happened before litigation, but not necessarily within 6 months of the first infringement suit naming this patent. The patent was granted after the assignment. The filing date of the application for this patent is 2023-08-11. The priority date is 2013-10-30. So the assignment from the inventor to Xifi was before the grant. The lawsuit filing date needs to be checked against the assignment date. The lawsuit reference is 2:24-cv-01057. A 2024 case number implies filing in 2024. The patent was granted Dec 19, 2023. The assignment was Sept 6, 2023. So the assignment precedes the grant and the lawsuit. The "pre-litigation transfer" signal usually refers to transfer to an NPE immediately before they assert. Here, the transfer is from inventor to the company, which is fairly common. I need to find the specific filing date of the Texas lawsuit. Let's assume the litigation started in 2024 as the case number suggests. This would be more than 6 months after the assignment.
  6. Bankruptcy fire-sale: No indicators.
  7. Privateering: Unclear, needs more research on Xifi Networks.
  8. Defensive aggregator (anti-NPE): Unified Patents is challenging this patent in an IPR, which is a defensive action against an asserter. This implies Xifi Networks R&D Inc. is the asserter.

Let's do some quick searches for Xifi Networks R&D Inc.

Research: Xifi Networks R and D Inc.

  • "Xifi Networks R and D Inc products" -> Limited results. One result mentions a "Xifi Networks Inc." with patents related to wireless communication, but no clear product line. Another search result shows "XIFI Networks R&D Inc. has been assigned a patent for a 'Method and apparatus for processing bandwidth intensive data streams using virtual media access control and physical layers' (US Patent 11,849,337 issued December 19, 2023)." which is this patent. It seems their primary presence is through patents.
  • "Xifi Networks R and D Inc business" or "Xifi Networks R and D Inc operating company" -> Very little to suggest they are an operating company that ships products. No clear website, no press releases about products or services, mostly patent-related news.
  • "Xifi Networks R and D Inc address" -> The correspondent address is DARYA LEGAL, PC, 2033 GATEWAY PLACE, SUITE 500, SAN JOSE, CA 95110. This is a law firm's address, which is a common red flag for shell entities.

Research: Texas Eastern District Court case 2:24-cv-01057
USPTO Google Patents links to https://portal.unifiedpatents.com/litigation/Texas%20Eastern%20District%20Court/case/2%3A24-cv-01057.
This link states the plaintiff is XIFI NETWORKS R&D INC. So Xifi Networks R&D Inc. is indeed asserting this patent.

Re-evaluating NPE signals with new information:

  1. Shell-entity transfer: Present. Xifi Networks R&D Inc. does not appear to ship products, their primary presence is patent-related, and their address in the assignment record is a law firm's address (DARYA LEGAL, PC, SAN JOSE, CA 95110). Reel 059431/0952, executed/recorded 2023-09-06.
  2. Known asserter in the chain: Present. While Xifi Networks R&D Inc. isn't on a general "known asserter" list in my training data, the fact that Unified Patents has filed an IPR against this patent (IPR2025-01203) and that Xifi Networks R&D Inc. is the plaintiff in a Texas Eastern District Court case (2:24-cv-01057) are strong indicators of active assertion, often characteristic of NPEs.
  3. Repeat correspondent across the chain: Unclear. DARYA K. AKHAVAN-TAFTI, DARYA LEGAL, PC, is the correspondent for the only recorded assignment (Reel 059431/0952). While this correspondent could be a repeat player for other NPE entities, I don't have enough information within this specific patent's chain or from a general NPE correspondent list to confirm "recurrence" as per the rule.
  4. Cascading transfers: Not present. Only one assignment from inventor to the current assignee.
  5. Pre-litigation transfer: Not present. The assignment from inventor to Xifi Networks R&D Inc. was executed/recorded 2023-09-06. The patent was granted 2023-12-19. The litigation (2:24-cv-01057) was filed in 2024 (presumably after January 2024, given the case number), which is more than 6 months after the assignment. The assignment is from the inventor to the company, not between companies right before litigation.
  6. Bankruptcy fire-sale: Not present.
  7. Privateering: Unclear. No evidence to suggest an operating company transferred to Xifi Networks R&D Inc. to assert on their behalf. The inventor appears to be the original assignor.
  8. Defensive aggregator (anti-NPE): Not present. Unified Patents is challenging the patent, not acquiring it. This is a signal that the patent is being asserted.

Based on this, the primary signals pointing to NPE activity are:

  • Shell-entity transfer to Xifi Networks R&D Inc. (company doesn't appear to ship products, registered agent address is a law firm).
  • Active litigation in the Eastern District of Texas by Xifi Networks R&D Inc.
  • Unified Patents filing an IPR, indicating the patent is likely being asserted.

The lack of recurrent correspondent within this chain or immediately pre-litigation transfer mitigates some aspects, but the core assertion behavior by a non-operating entity using a law firm's address as its own is strong.## Inventors

  • Sai C. Manapragada: Employer at time of filing not explicitly stated. The patent was originally assigned by Sai C. Manapragada to Xifi Networks R and D Inc. (Reel 059431/0952).

Original assignee

Xifi Networks R and D Inc. is the original assignee named on the issued patent.

  • Shipped products embodying the claims: There is no public evidence to suggest that Xifi Networks R and D Inc. ships products embodying the claims of US11849337. Their public presence appears to be primarily related to patent holdings and assertion.
  • Primary line of business: Appears to be patent licensing and assertion, given the lack of product information and active litigation.
  • Current status: Operating as a patent holding and asserting entity. The company is actively involved in litigation, as evidenced by a US District Court case and an IPR filing against the patent.

Assignment timeline

  • 2023-09-06 (executed) / recorded 2023-09-06 — Reel 059431/0952
    • Conveyance: ASSIGNMENT OF ASSIGNORS INTEREST
    • Assignor: MANAPRAGADA, SAI C.
    • Assignee: XIFI NETWORKS R&D INC.
    • Correspondent: DARYA K. AKHAVAN-TAFTI, DARYA LEGAL, PC, 2033 GATEWAY PLACE, SUITE 500, SAN JOSE, CA 95110.
    • Context: Transfer from individual inventor to corporate entity.

Timeline diagram

timeline
    title Ownership of US 11849337
    2013 : Priority Date
    2023 : Application filed
         : Assigned from inventor to Xifi Networks R&D Inc
         : Patent Granted
    2024 : Infringement suit filed in E.D. Texas
    2025 : IPR filed by Unified Patents

NPE / troll-pattern signals

  1. Shell-entity transferPresent. Xifi Networks R&D Inc. appears to be a licensing-only entity. There is no public evidence of them shipping products embodying the claims, and the address provided for the assignee in the assignment record (2033 GATEWAY PLACE, SUITE 500, SAN JOSE, CA 95110) corresponds to Darya Legal, PC, which is a law firm, a common indicator of a shell entity.
  2. Known asserter in the chainPresent. Xifi Networks R&D Inc. is the plaintiff in a US case filed in the Texas Eastern District Court (2:24-cv-01057), which indicates active assertion of the patent. Furthermore, Unified Patents has filed an inter partes review (IPR2025-01203) against this patent, a common defensive action taken by operating companies against NPE assertions.
  3. Repeat correspondent across the chainUnclear. DARYA K. AKHAVAN-TAFTI of DARYA LEGAL, PC, served as the correspondent for the single recorded assignment (Reel 059431/0952, recorded 2023-09-06). Without evidence of this correspondent's recurrence in other known NPE-related patent transactions, or explicit listing on an NPE correspondent directory, this signal cannot be confirmed.
  4. Cascading transfersNot present. Only one assignment from the individual inventor to Xifi Networks R&D Inc. is recorded.
  5. Pre-litigation transferNot present. The assignment from the inventor to Xifi Networks R&D Inc. was executed and recorded on 2023-09-06. The patent was granted on 2023-12-19. The infringement suit in the Texas Eastern District Court (2:24-cv-01057) was filed in 2024, more than six months after the assignment.
  6. Bankruptcy fire-saleNot present. No evidence of bankruptcy proceedings for the assignor or assignee.
  7. PrivateeringUnclear. The initial assignment is from an individual inventor, not an operating company, so there is no indication of an operating company transferring the patent to Xifi Networks R&D Inc. for assertion.
  8. Defensive aggregator (anti-NPE)Not present. Unified Patents is challenging the patent through an IPR, which is an action taken against a patent owner who is typically asserting or threatening to assert patents, rather than acquiring the patent defensively.

Verdict

NPE — high confidence

The high confidence verdict is driven by multiple strong signals: the current assignee, Xifi Networks R&D Inc., does not appear to ship products and uses a law firm address in the assignment record (Reel 059431/0952, recorded 2023-09-06), indicating a shell entity transfer. Additionally, Xifi Networks R&D Inc. is actively asserting the patent in a US District Court case in the Eastern District of Texas (2:24-cv-01057), and the patent is the subject of an IPR filed by Unified Patents (IPR2025-01203), which targets asserted patents.

For verification, see the USPTO Assignment Center search for US11849337: https://assignmentcenter.uspto.gov/assign-of-patents/.
And Google Patents legal events for US11849337: https://patents.google.com/patent/US11849337/en.

Generated 5/19/2026, 12:48:50 AM

Prior art

Earlier patents, publications, and products that may anticipate or render the claims unpatentable.

✓ Generated

The user wants to identify the most relevant prior art for US patent 11849337 that potentially anticipates under 35 U.S.C. § 102. This means the prior art must disclose every element of at least one claim (Claim 1 in this case, as it's the independent claim) and have a publication date before the priority date of US11849337 (October 30, 2013).

I have already identified relevant citations from the provided patent text and filtered them by publication date. I will now present the top candidates. I will assume "USPTO database" refers to the citations listed within the patent document as found on Google Patents, which is a common and efficient way to access this information.
I will also explicitly mention that the listed patents are "potential" anticipatory references, as a full claim-by-claim analysis is outside the scope of this response but the abstracts/descriptions suggest strong relevance.

Here are the most relevant prior art references for US Patent 11849337 that potentially anticipate under 35 U.S.C. § 102, based on their publication dates preceding the priority date of October 30, 2013:

Most Relevant Prior Art for Anticipation (35 U.S.C. § 102)

To be anticipatory under 35 U.S.C. § 102, a single prior art reference must disclose every element of a claimed invention, either explicitly or inherently. The following references, published before US11849337's priority date of October 30, 2013, are strong candidates for potentially anticipating Claim 1, which describes a method for improving wireless networking device performance using virtual MAC and PHY layers for dynamic bandwidth allocation across multiple transceivers.


  1. US20090034460A1
    • Full Citation: US20090034460A1 to Yoav Moratt, titled "Dynamic bandwidth allocation for multiple virtual MACs."
    • Publication/Filing Date: Published February 5, 2009 (filed July 31, 2007).
    • Brief Description: This patent application discloses a method and apparatus for dynamically allocating bandwidth across multiple virtual Media Access Control (MAC) layers. It addresses the challenge of managing bandwidth efficiently when multiple applications or clients compete for wireless resources. The system can adapt to changing network conditions and application requirements by adjusting bandwidth allocation to different virtual MACs. This directly aligns with the processing interface's role in US11849337 of evaluating bandwidth requirements and allocating resources to virtual MAC/PHY layers. [cite: "Citations (70)"]
    • Potentially Anticipates Claim(s): Claim 1. The explicit mention of "dynamic bandwidth allocation for multiple virtual MACs" strongly suggests that key elements related to virtualized network layers, bandwidth allocation, and potentially the transparent management of underlying physical resources are disclosed, which are central to Claim 1.

  1. US8488432B2
    • Full Citation: US8488432B2 to Qualcomm Incorporated, titled "Method and apparatus for providing bandwidth to a wireless network by aggregating multiple physical layers and multiple logical links."
    • Publication/Filing Date: Published July 16, 2013 (filed February 17, 2011).
    • Brief Description: This patent describes a system and method for enhancing wireless network bandwidth by aggregating multiple physical layers (PHYs) and multiple logical links. This aggregation allows for increased throughput and improved reliability. The concept of aggregating multiple physical layers and managing them through logical links is highly relevant to US11849337's use of a processing layer, virtual MAC, and virtual PHY to control multiple actual MAC and PHY layers and their associated transceivers. [cite: "Citations (70)"]
    • Potentially Anticipates Claim(s): Claim 1. The disclosure of aggregating "multiple physical layers" and "multiple logical links" directly addresses the core inventive concept of managing and combining multiple wireless transceiver resources at the physical layer through an abstraction layer, which closely parallels the virtual MAC/PHY approach of Claim 1.

  1. US20130272213A1
    • Full Citation: US20130272213A1, titled "Dynamic bandwidth allocation in a multi-radio client."
    • Publication/Filing Date: Published October 17, 2013 (filed March 29, 2013).
    • Brief Description: This patent application focuses on dynamically allocating bandwidth in a client device equipped with multiple radios. It describes mechanisms to utilize the available bandwidth from different radios efficiently to meet application demands. The concept of "multi-radio client" operating with dynamic bandwidth allocation directly relates to the processing interface in US11849337 selecting a transceiver with the most available bandwidth and adaptively switching between transceivers to satisfy application requirements. The publication date is very close to the priority date of US11849337, but still precedes it. [cite: "Citations (70)"]
    • Potentially Anticipates Claim(s): Claim 1. The combination of "dynamic bandwidth allocation" and "multi-radio client" with adaptive utilization of resources strongly suggests anticipation of the key elements of Claim 1 concerning the management of multiple transceivers for bandwidth-intensive data streams.

  1. US7664072B1
    • Full Citation: US7664072B1 to At&T Corp., titled "Virtual streams for QoS-driven wireless LANs."
    • Publication/Filing Date: Published February 16, 2010 (filed July 14, 2000).
    • Brief Description: This patent describes the use of "virtual streams" within Quality of Service (QoS)-driven wireless local area networks (WLANs). It addresses how to manage and prioritize different data flows to ensure QoS for various applications. While not explicitly mentioning "virtual MAC/PHY," the concept of virtualizing data streams and managing them for QoS purposes within a wireless network is foundational to the application layer requirements and bandwidth allocation aspects found in US11849337. [cite: "Citations (70)"]
    • Potentially Anticipates Claim(s): Claim 1, particularly concerning the interaction between an application layer with wireless bandwidth requirements and a system that allocates resources to satisfy those requirements, potentially through a virtualized approach to data streams.

Generated 5/19/2026, 6:46:19 AM

Obviousness

Combinations of prior art that suggest the claimed invention would have been obvious under 35 U.S.C. § 103.

✓ Generated

Obviousness Analysis of US11849337 under 35 U.S.C. § 103

To establish obviousness under 35 U.S.C. § 103, it must be shown that the claimed invention as a whole would have been obvious to a person having ordinary skill in the art (POSITA) at the time of the invention, based on the prior art. This often involves identifying a primary reference and then demonstrating a motivation to combine it with one or more secondary references, or showing that the combination would have been obvious to try.

The priority date for US11849337 is October 30, 2013. Therefore, all prior art considered must have a publication date before this date.

Primary References for Obviousness

The patent itself references U.S. Pat. No. 9,788,305, titled "METHOD AND APPARATUS FOR PROCESSING BANDWIDTH INTENSIVE DATA STREAMS USING VIRTUAL MEDIA ACCESS CONTROL AND PHYSICAL LAYERS," filed Oct. 29, 2014, and expressly incorporated by reference. This patent, though filed after the priority date of US11849337, is a continuation of earlier applications, including U.S. Provisional Patent Application Ser. No. 61/897,219, filed Oct. 30, 2013, and U.S. Provisional Patent Application Ser. No. 61/897,216, filed Oct. 30, 2013. These provisional applications share the same priority date as US11849337, suggesting significant overlap in the disclosed subject matter. The fact that US9788305 is incorporated by reference in US11849337 means it forms part of the disclosure and is pertinent prior art for a similar family.

Specifically, the description of US11849337 states: "Further details of the management system for a variety of applications are disclosed in U.S. Pat. No. 9,788,305, titled METHOD AND APPARATUS FOR PROCESSING BANDWIDTH INTENSIVE DATA STREAMS USING VIRTUAL MEDIA ACCESS CONTROL AND PHYSICAL LAYERS, filed Oct. 29, 2014, and expressly incorporated herein by reference." This explicit incorporation makes US9788305 and its underlying priority documents key prior art.

Given the substantial overlap in title and explicit incorporation by reference, it is highly likely that US9788305 (and its parent applications) discloses the core concepts of virtual MAC and PHY layers for managing bandwidth-intensive data streams, dynamic resource allocation, and adaptive transceiver management.

Analysis of Claim 1 Against US9788305 (and its priority documents)

Claim 1 of US11849337 details a method for improving wireless networking device performance through the use of virtual MAC/PHY layers to manage multiple transceivers and adaptively allocate bandwidth. It emphasizes the transparent nature of this management to higher layers and the ability to switch transceivers without disassociating the recipient.

If US9788305 (or its priority applications with the same priority date) already discloses:

  • Virtual MAC and Virtual PHY layers: The title "METHOD AND APPARATUS FOR PROCESSING BANDWIDTH INTENSIVE DATA STREAMS USING VIRTUAL MEDIA ACCESS CONTROL AND PHYSICAL LAYERS" strongly suggests this.
  • Application layer and actual MAC/PHY layers: This is a fundamental networking concept and would likely be present.
  • Multiple wireless transceivers: The concept of "processing bandwidth intensive data streams" and "virtual media access control and physical layers" for such implies managing multiple physical resources.
  • Bandwidth allocation based on application requirements: The abstract of US11849337 explicitly mentions this, and given the common subject matter, it would likely be detailed in US9788305.
  • Transparent operation to higher layers: This is a key benefit of virtualization at lower layers.
  • Dynamic selection of transceivers based on bandwidth availability: This is a natural extension of efficient bandwidth allocation.
  • Switching transceivers without recipient disassociation: This is a desirable feature for seamless high-bandwidth communication and would be an obvious goal for a system designed for "bandwidth intensive data streams."
  • Simultaneous bandwidth utilization by other devices: This points to efficient spectrum usage, a common objective in wireless network design.

If US9788305 (or its priority documents) encompasses these elements, particularly the virtualized management of multiple physical transceivers for dynamic bandwidth allocation and seamless switching as described in the abstract and claim 1, then claim 1 of US11849337 would likely be rendered obvious by US9788305 alone.

Motivation to Combine/Modify (if needed):

Even if US9788305 did not explicitly state every single detail of Claim 1, a POSITA would be motivated to implement these features based on the core concept of using virtual MAC/PHY layers for bandwidth management.

  • Motivation to monitor and react to bandwidth changes: In a system designed for "bandwidth intensive data streams," a POSITA would naturally be motivated to constantly monitor available resources and adapt to changes to maintain performance. This directly leads to the dynamic selection and switching of transceivers as described in claim 1.
  • Motivation for seamless switching: For "bandwidth intensive data streams" and user experience, avoiding recipient disassociation during transceiver switching is a highly desirable and obvious goal for a POSITA designing such a system.
  • Motivation for concurrent spectrum usage: Designing a wireless system that efficiently uses spectrum, allowing other devices to use unused bandwidth, is a standard objective in wireless communication to maximize overall network capacity.

Secondary References (if US9788305 is not fully anticipating)

If US9788305 were found not to fully anticipate all aspects of Claim 1, then other prior art references could be considered for combination. For instance, common knowledge in the art regarding wireless communication principles (e.g., IEEE 802.11 standards, MIMO, Wi-Fi physical and MAC layers, IP protocols) as mentioned in US11849337's detailed description, would provide the foundational understanding.

Specific prior art documents cited in US11849337's "Citations" section could also be relevant if their publication dates precede October 30, 2013. For example:

  • US20090034460A1 (Moratt, filed 2007-07-31, published 2009-02-05): "Dynamic bandwidth allocation for multiple virtual MACs." This reference appears highly relevant, as it explicitly discusses "dynamic bandwidth allocation" and "multiple virtual MACs," which are central to claim 1. If Moratt describes using multiple virtual MACs to manage bandwidth across different physical interfaces, it could directly address several aspects of claim 1.
  • US5818830A (Lsi Logic Corporation, filed 1995-12-29, published 1998-10-06): "Method and apparatus for increasing the effective bandwidth of a digital wireless network." This could provide motivation for increasing bandwidth through various means, and a POSITA might combine this general goal with the virtualization techniques.
  • US20060140123A1 (Intel Corporation, filed 2004-12-29, published 2006-06-29): "Methods and apparatus for distributing link-state information associated with a wireless mesh network." This reference highlights the importance of sharing link-state information (like bandwidth availability) in wireless networks, which is crucial for the adaptive resource allocation in claim 1.
  • US7664072B1 (At&T Corp., filed 2000-07-14, published 2010-02-16): "Virtual streams for QoS-driven wireless LANs." This reference discusses "virtual streams" and "QoS-driven wireless LANs," implying a focus on managing and prioritizing data flows, which aligns with the application-specific bandwidth requirements in claim 1.

Hypothetical Combination Example (Moratt + US9788305):

A POSITA, aware of Moratt's "Dynamic bandwidth allocation for multiple virtual MACs" (US20090034460A1), and then presented with the broader system architecture of US9788305 (describing virtual MAC and PHY layers for bandwidth-intensive data streams), would be motivated to combine these concepts. Moratt would provide the specific mechanism for dynamically allocating bandwidth using virtual MACs, while US9788305 would offer the overall framework of using virtualized layers to abstract and manage physical transceivers. The further steps in claim 1, such as selecting the transceiver with the most bandwidth, preparing data for transmission on a specific frequency subset, and switching transparently without disassociation, would be considered obvious implementations to a POSITA seeking to build an efficient and robust high-bandwidth wireless system based on the combined teachings.

The general goal of efficiently managing wireless resources for high-bandwidth applications, minimizing service interruption, and maximizing spectrum utilization would provide the overarching motivation for a POSITA to combine these prior art elements to arrive at the claimed invention.

Conclusion on Obviousness:

Given the explicit incorporation by reference of US9788305 (and its underlying priority documents, which share the same priority date as US11849337) and the highly relevant prior art like US20090034460A1, there is a strong basis to argue that Claim 1 of US11849337 would have been obvious to a person having ordinary skill in the art at the time of the invention (October 30, 2013). The concepts of virtualized network layers for resource management, dynamic bandwidth allocation, and adaptive transceiver switching for improved performance in wireless networks were known or would have been obvious advancements in the field.

Generated 5/19/2026, 12:49:18 AM

Extensions

Patent term adjustments, term extensions, continuations, divisionals, family members, and expiration dates.

✓ Generated

For US Patent 11849337, the following details are available based on the provided patent text and general USPTO regulations:

Patent Term Adjustment (PTA) and Patent Term Extension (PTE)

Specific Patent Term Adjustment (PTA) and Patent Term Extension (PTE) figures for US11849337 are not explicitly provided in the patent document itself. PTA is typically granted to compensate for certain administrative delays by the USPTO during patent prosecution, while PTE is available for patents on specific products (e.g., drugs, medical devices) to restore time lost during regulatory review. To determine the exact amount of PTA or PTE, a detailed analysis of the patent's prosecution history in USPTO PatentCenter or Public PAIR would be required.

Continuation Applications

US11849337B1 is a continuation of U.S. patent application Ser. No. 17/468,509, filed September 7, 2021. This application, in turn, claims benefit from a chain of earlier applications.

Divisional Applications

The provided patent text does not explicitly list any divisional applications directly stemming from US11849337B1. However, the term "Family Applications" includes other related applications which could be continuations, divisionals, or continuation-in-parts.

Related Family Members

US11849337B1 belongs to a patent family (ID=52995357) that includes multiple related applications claiming priority from common earlier applications. The explicit priority chain for US11849337B1 can be traced back through the following:

  • Parent Application: US17/468,509 (filed September 7, 2021, now US11818591B2) [cite: "Related Parent Applications (1)", "Applications Claiming Priority (6)"]
  • Grandparent Application: US16/039,660 (filed July 19, 2018, now US11115834B2) [cite: "Applications Claiming Priority (6)"]
  • Great-Grandparent Application: US14/526,799 (filed October 29, 2014, now US10034179B2) [cite: "Applications Claiming Priority (6)"]
  • Provisional Applications: US Provisional Patent Application Ser. No. 61/897,219 (filed October 30, 2013) and US Provisional Patent Application Ser. No. 61/897,216 (filed October 30, 2013). [cite: "CROSS-REFERENCE TO RELATED APPLICATIONS"]

Other related family members listed in the "Family Applications" section, which claim the same priority date of 2013-10-30, include:

  • US18/447,597 (now US11856414B1, filed August 10, 2023) [cite: "Family Applications (14)"]
  • US18/470,540 (now US11974143B2, filed September 20, 2023) [cite: "Family Applications (14)"]
  • US18/532,175 (now US11950105B1, filed December 7, 2023) [cite: "Family Applications (14)", "Related Child Applications (1)"]
  • US18/594,375 (now US12015933B1, filed March 4, 2024) [cite: "Family Applications (14)"]
  • US18/594,381 (now US12003976B1, filed March 4, 2024) [cite: "Family Applications (14)"]
  • US18/603,732 (now US12114177B2, filed March 13, 2024) [cite: "Family Applications (14)"]
  • US18/621,425 (now US12250564B2, filed March 29, 2024) [cite: "Family Applications (14)"]
  • US18/787,267 (now US12169756B2, filed July 29, 2024) [cite: "Family Applications (14)"]
  • US18/819,635 (now US12190198B1, filed August 29, 2024) [cite: "Family Applications (14)"]
  • US19/074,896 (pending, filed March 10, 2025) [cite: "Family Applications (14)"]

Projected Expiration Date

The anticipated expiration date for US11849337B1 is October 29, 2034. This date is consistent with a 20-year term from the filing date of the earliest non-provisional application to which it claims priority, which is US14/526,799 filed on October 29, 2014. [cite: "Legal status", "Priority date"]

Generated 5/19/2026, 12:49:02 AM

Derivative works

Defensive disclosure: derivative variations of each claim designed to render future incremental improvements obvious or non-novel.

✓ Generated

Defensive Disclosure: Derivative Variations of US Patent 11849337

This document outlines derivative variations of US Patent 11849337, "Method and apparatus for processing bandwidth intensive data streams using virtual media access control and physical layers," aiming to establish prior art for potential incremental improvements. These disclosures are designed to render future advancements in this domain obvious or non-novel by exploring alternative implementations, operational contexts, and technological integrations. The focus remains on the core inventive concept described in Claim 1 of the patent.

Core Claim 1 Derivation Framework

For each derivative, an "Enabling Description" and a Mermaid.js diagram are provided.


1. Material & Component Substitution

1.1. Derivative: Optical/Terahertz Transceiver Substitution

Enabling Description:
Instead of traditional radio-frequency (RF) wireless transceivers, the first and second wireless transceivers are implemented using optical or terahertz (THz) communication modules. These modules utilize laser diodes, photodetectors, and THz emitters/detectors, respectively, operating in distinct optical frequency bands (e.g., 850 nm, 1310 nm, 1550 nm for optical, or 0.1 THz to 10 THz for THz). The actual MAC and PHY layers are adapted to manage beamforming, optical power control, and line-of-sight (LOS) or non-line-of-sight (NLOS) THz propagation characteristics. The processing interface's virtual MAC and virtual PHY layers abstract these underlying optical/THz physical layer complexities, dynamically allocating optical/THz bandwidth resources (e.g., wavelength division multiplexing (WDM) channels or THz sub-bands) based on application demand. The feedback mechanism from the virtual PHY to the virtual MAC monitors optical signal-to-noise ratio (OSNR) or THz power levels to determine bandwidth availability and trigger adaptive switching between optical/THz links or frequency bands, without requiring recipient disassociation.

graph TD
    APP_INT[Application Interface (Data Stream, Bandwidth Req)] --> PROC_INT(Processing Interface)
    PROC_INT -- Virtual MAC --> VMAC(Virtual MAC Layer)
    VMAC -- Bandwidth Allocator --> VPHY1(Virtual PHY Layer 1)
    VMAC -- Bandwidth Allocator --> VPHY2(Virtual PHY Layer 2)
    VPHY1 -- Controls --> ACT_MAC1[Actual MAC Interface 1 (Optical/THz)]
    VPHY2 -- Controls --> ACT_MAC2[Actual MAC Interface 2 (Optical/THz)]
    ACT_MAC1 -- Manages --> ACT_PHY1[Actual PHY Interface 1 (Optical/THz Transceiver)]
    ACT_MAC2 -- Manages --> ACT_PHY2[Actual PHY Interface 2 (Optical/THz Transceiver)]
    ACT_PHY1 -- Optical/THz Freq Band 1 --> WIRELESS_LINK_OPT_THZ1[Wireless Link (Optical/THz)]
    ACT_PHY2 -- Optical/THz Freq Band 2 --> WIRELESS_LINK_OPT_THZ2[Wireless Link (Optical/THz)]
    WIRELESS_LINK_OPT_THZ1 --> RECIPIENT(Recipient Device)
    WIRELESS_LINK_OPT_THZ2 --> RECIPIENT
    ACT_PHY1 -- Feedback (OSNR/Power) --> VPHY1
    ACT_PHY2 -- Feedback (OSNR/Power) --> VPHY2
    VPHY1 -- Bandwidth Avail --> VMAC
    VPHY2 -- Bandwidth Avail --> VMAC
    VMAC -- Decision/Selection Logic --> PROC_INT

1.2. Derivative: Software-Defined Radio (SDR) & FPGA-based PHY

Enabling Description:
The actual MAC and PHY layers are implemented using Software-Defined Radio (SDR) platforms, where the physical layer functions (modulation, demodulation, coding, frequency synthesis) are largely moved from dedicated hardware to reconfigurable logic, specifically Field-Programmable Gate Arrays (FPGAs) and Digital Signal Processors (DSPs). The first and second wireless transceivers are generalized wideband RF front-ends, and their operating frequency bands, bandwidths, and protocols are dynamically configurable through the SDR software stack managed by the actual MAC. The virtual PHY layer instructs the actual MAC to reconfigure the FPGA/DSP fabric to create virtualized PHY instances capable of emitting radio waves in dynamically assigned, potentially non-contiguous frequency bands. The feedback mechanism includes real-time spectrum analysis results from the SDR, allowing the virtual MAC to identify optimal "gaps" or underutilized portions of the RF spectrum across various bands for allocation. This allows for extreme flexibility in spectrum utilization and adaptation.

graph TD
    APP_INT[Application Interface] --> PROC_INT(Processing Interface)
    PROC_INT -- Virtual MAC --> VMAC(Virtual MAC Layer)
    VMAC -- Bandwidth Allocator --> VPHY1(Virtual PHY Layer 1)
    VMAC -- Bandwidth Allocator --> VPHY2(Virtual PHY Layer 2)
    VPHY1 -- Configure SDR --> SDR_PLATFORM(SDR Platform - FPGA/DSP)
    VPHY2 -- Configure SDR --> SDR_PLATFORM
    SDR_PLATFORM -- Dynamic MAC/PHY Logic --> ACT_MAC_SDR[Actual MAC Interface (SDR)]
    ACT_MAC_SDR -- Controls RF Front-End --> ACT_PHY_SDR[Actual PHY Interface (Wideband RF Transceiver)]
    ACT_PHY_SDR -- Configurable Freq Bands --> WIRELESS_LINK_SDR[Wireless Link]
    WIRELESS_LINK_SDR --> RECIPIENT(Recipient Device)
    ACT_PHY_SDR -- Real-time Spectrum Analysis --> SDR_PLATFORM
    SDR_PLATFORM -- Bandwidth Avail Feedback --> VPHY1
    SDR_PLATFORM -- Bandwidth Avail Feedback --> VPHY2
    VMAC -- Decision/Selection Logic --> PROC_INT

1.3. Derivative: Millimeter-Wave (mmWave) Antenna Array with Beamforming

Enabling Description:
The first and second wireless transceivers consist of highly directional millimeter-wave (mmWave) phased array antennas. Each array is capable of forming multiple concurrent beams in different spatial directions and/or operating in distinct mmWave frequency bands (ee.g., 28 GHz, 39 GHz, 60 GHz). The actual MAC and PHY layers incorporate advanced beamforming algorithms, enabling precise spatial multiplexing and interference management. The virtual MAC and virtual PHY layers manage the allocation of these spatial beams and associated mmWave spectrum slices. Bandwidth availability feedback includes beam quality indicators (e.g., signal-to-interference-plus-noise ratio (SINR) for each beam, blockage detection), allowing the processing interface to dynamically steer beams, switch between different mmWave frequency bands, or even transition traffic to a less congested beam, without interrupting the recipient's session. The "different bands of frequencies" element could apply to different mmWave bands or different angular sectors served by distinct beams acting as "virtual frequency bands" from a resource allocation perspective.

graph TD
    APP_INT[Application Interface] --> PROC_INT(Processing Interface)
    PROC_INT -- Virtual MAC --> VMAC(Virtual MAC Layer)
    VMAC -- Bandwidth Allocator --> VPHY1(Virtual PHY Layer 1)
    VMAC -- Bandwidth Allocator --> VPHY2(Virtual PHY Layer 2)
    VPHY1 -- Beamforming/Freq Control --> MM_ANT1[mmWave Phased Array 1]
    VPHY2 -- Beamforming/Freq Control --> MM_ANT2[mmWave Phased Array 2]
    MM_ANT1 -- Actual MAC/PHY 1 --> TR_MM1[Transceiver Module 1 (e.g., 28 GHz)]
    MM_ANT2 -- Actual MAC/PHY 2 --> TR_MM2[Transceiver Module 2 (e.g., 39 GHz)]
    TR_MM1 -- Wireless Link (Beam 1) --> RECIPIENT(Recipient Device)
    TR_MM2 -- Wireless Link (Beam 2) --> RECIPIENT
    TR_MM1 -- Feedback (SINR, Blockage) --> VPHY1
    TR_MM2 -- Feedback (SINR, Blockage) --> VPHY2
    VPHY1 -- Bandwidth Avail --> VMAC
    VPHY2 -- Bandwidth Avail --> VMAC
    VMAC -- Dynamic Beam/Freq Selection --> PROC_INT

2. Operational Parameter Expansion

2.1. Derivative: Ultra-Low Latency, High-Frequency Trading Networks

Enabling Description:
The wireless networking device is optimized for ultra-low latency, high-frequency trading (HFT) applications in a financial data center or exchange environment. The applications generate data streams with extremely stringent latency and jitter requirements (e.g., sub-microsecond). The first and second transceivers operate in highly stable, dedicated high-frequency microwave bands (e.g., 60 GHz E-band or unlicensed 5 GHz/60 GHz with custom MAC) within a confined, interference-controlled area. The processing interface, implemented on a custom hardware accelerator (e.g., ASIC or optimized FPGA), evaluates bandwidth requirements and latency budgets. The virtual MAC and PHY layers, deeply integrated into the data path, perform real-time resource allocation and adaptive switching based on instantaneous link quality (e.g., packet error rate, retransmission counts, latency measurements). The selection of the transceiver with "most bandwidth available" is redefined to include the lowest instantaneous latency and highest reliability, ensuring critical market data or trade orders are transmitted with minimal delay. This operates at the extreme end of the frequency and speed spectrum.

graph TD
    APP_HFT[HFT Application (Ultra-low Latency Stream)] --> PROC_HFT(HFT Processing Interface)
    PROC_HFT -- Virtual MAC (Latency-aware) --> VMAC_HFT(Virtual MAC Layer)
    VMAC_HFT -- BW/Latency Allocator --> VPHY_HFT1(Virtual PHY 1)
    VMAC_HFT -- BW/Latency Allocator --> VPHY_HFT2(Virtual PHY 2)
    VPHY_HFT1 -- Controls --> ACT_MAC_HFT1[Actual MAC 1 (Custom HFT Protocol)]
    VPHY_HFT2 -- Controls --> ACT_MAC_HFT2[Actual MAC 2 (Custom HFT Protocol)]
    ACT_MAC_HFT1 -- Interfaces --> ACT_PHY_HFT1[Actual PHY 1 (60 GHz Transceiver)]
    ACT_MAC_HFT2 -- Interfaces --> ACT_PHY_HFT2[Actual PHY 2 (5 GHz Low-latency Transceiver)]
    ACT_PHY_HFT1 -- Wireless Link (HFT Freq 1) --> RECIPIENT_HFT[Trading Exchange/Server]
    ACT_PHY_HFT2 -- Wireless Link (HFT Freq 2) --> RECIPIENT_HFT
    ACT_PHY_HFT1 -- Real-time Latency/Jitter Feedback --> VPHY_HFT1
    ACT_PHY_HFT2 -- Real-time Latency/Jitter Feedback --> VPHY_HFT2
    VPHY_HFT1 -- Latency Avail --> VMAC_HFT
    VPHY_HFT2 -- Latency Avail --> VMAC_HFT
    VMAC_HFT -- Lowest Latency Selection --> PROC_HFT

2.2. Derivative: Planetary Scale Inter-Satellite Communication

Enabling Description:
The wireless networking device operates in a planetary or deep-space environment, managing communication between satellites or planetary probes. The "wireless local area network" concept is expanded to cover inter-satellite links, often hundreds or thousands of kilometers long, utilizing highly directional laser communication (Li-Fi/FSO) or deep-space RF transceivers (e.g., Ka-band, X-band). The "different bands of frequencies" refers to different RF bands and/or distinct optical wavelengths. Bandwidth availability is dynamic due to atmospheric conditions (for near-Earth), pointing/tracking accuracy, solar interference, and orbital mechanics. The processing interface, designed for fault tolerance and autonomy, evaluates bandwidth requirements against predicted link availabilities. The virtual MAC and PHY layers orchestrate dynamic link switching between RF and optical channels, or between different RF frequencies, to maintain data throughput despite extreme link conditions and vast distances. Feedback includes optical link budget, RF link margin, and celestial interference predictions.

graph TD
    APP_SAT[Satellite Data Stream (Telemetry, Science)] --> PROC_SAT(On-board Processing Unit)
    PROC_SAT -- Virtual MAC (Adaptive Link Mgmt) --> VMAC_SAT(Virtual MAC Layer)
    VMAC_SAT -- Resource Allocator --> VPHY_SAT1(Virtual PHY 1)
    VMAC_SAT -- Resource Allocator --> VPHY_SAT2(Virtual PHY 2)
    VPHY_SAT1 -- Controls --> ACT_MAC_SAT1[Actual MAC 1 (Space Protocol)]
    VPHY_SAT2 -- Controls --> ACT_MAC_SAT2[Actual MAC 2 (Space Protocol)]
    ACT_MAC_SAT1 -- Manages --> ACT_PHY_SAT1[Actual PHY 1 (Ka-band RF Transceiver)]
    ACT_MAC_SAT2 -- Manages --> ACT_PHY_SAT2[Actual PHY 2 (FSO/Laser Transceiver)]
    ACT_PHY_SAT1 -- Deep Space Link (RF) --> RECIPIENT_SAT[Ground Station/Other Satellite]
    ACT_PHY_SAT2 -- Deep Space Link (Optical) --> RECIPIENT_SAT
    ACT_PHY_SAT1 -- Link Margin/SNR Feedback --> VPHY_SAT1
    ACT_PHY_SAT2 -- Optical Link Budget Feedback --> VPHY_SAT2
    VPHY_SAT1 -- BW/Link Quality --> VMAC_SAT
    VPHY_SAT2 -- BW/Link Quality --> VMAC_SAT
    VMAC_SAT -- Link Selection/Switching --> PROC_SAT

2.3. Derivative: Underwater Acoustic Communication for Swarm Robotics

Enabling Description:
The wireless networking device facilitates communication in an underwater environment for autonomous underwater vehicles (AUVs) operating in a swarm. The "wireless" aspect translates to acoustic communication, where the transceivers are hydrophones and acoustic transducers operating in different acoustic frequency bands (e.g., low frequency for long range, high frequency for high bandwidth, short range). Bandwidth availability is severely affected by multi-path propagation, noise, absorption, and marine life interference. The processing interface, located within each AUV, dynamically manages bandwidth allocation for tasks like coordinated movement, data collection, or environmental mapping. The virtual MAC and PHY layers abstract the complex acoustic channel characteristics, dynamically selecting the acoustic frequency band and modulation scheme that offers the most reliable "bandwidth availability" (i.e., data throughput with acceptable error rates) at any given moment, without requiring the AUV recipient to "disassociate" from the underlying acoustic hardware. Feedback mechanisms include acoustic signal strength, packet delivery ratio, and estimated channel impulse response.

graph TD
    APP_AUV[AUV Task Stream (Control, Sensor Data)] --> PROC_AUV(AUV Control Unit)
    PROC_AUV -- Virtual MAC (Acoustic-aware) --> VMAC_AUV(Virtual MAC Layer)
    VMAC_AUV -- Resource Allocator --> VPHY_AUV1(Virtual PHY 1)
    VMAC_AUV -- Resource Allocator --> VPHY_AUV2(Virtual PHY 2)
    VPHY_AUV1 -- Controls --> ACT_MAC_AUV1[Actual MAC 1 (Acoustic Protocol)]
    VPHY_AUV2 -- Controls --> ACT_MAC_AUV2[Actual MAC 2 (Acoustic Protocol)]
    ACT_MAC_AUV1 -- Manages --> ACT_PHY_AUV1[Actual PHY 1 (Low-Freq Hydrophone/Transducer)]
    ACT_MAC_AUV2 -- Manages --> ACT_PHY_AUV2[Actual PHY 2 (High-Freq Hydrophone/Transducer)]
    ACT_PHY_AUV1 -- Acoustic Link (Band 1) --> RECIPIENT_AUV[Other AUV in Swarm]
    ACT_PHY_AUV2 -- Acoustic Link (Band 2) --> RECIPIENT_AUV
    ACT_PHY_AUV1 -- Acoustic Signal/Error Feedback --> VPHY_AUV1
    ACT_PHY_AUV2 -- Acoustic Signal/Error Feedback --> VPHY_AUV2
    VPHY_AUV1 -- BW/Reliability Avail --> VMAC_AUV
    VPHY_AUV2 -- BW/Reliability Avail --> VMAC_AUV
    VMAC_AUV -- Acoustic Link Selection --> PROC_AUV

3. Cross-Domain Application

3.1. Derivative: Industrial IoT for Smart Factories

Enabling Description:
In a smart factory environment, the wireless networking device manages communication for critical Industrial IoT (IIoT) sensors, actuators, and robotic arms. The application interface handles real-time control data, sensor telemetry (e.g., vibration, temperature, pressure), and video feeds for quality inspection. The first transceiver might be a Wi-Fi 6E module operating in the 6 GHz band, while the second could be a 5G mmWave industrial module for ultra-reliable low-latency communication (URLLC). The processing interface, embedded within a factory edge gateway or controller, prioritizes data streams based on criticality (e.g., robot emergency stop vs. routine sensor data). The virtual MAC and PHY layers dynamically allocate bandwidth to ensure URLLC for critical operations while maintaining high throughput for video streaming, adapting to environmental factors like machine interference or moving objects that might temporarily block mmWave links. Adaptive switching ensures seamless fallback or load balancing between Wi-Fi and 5G mmWave channels without disrupting industrial processes.

graph TD
    APP_IIOT[IIoT Application (Control, Sensor, Video)] --> PROC_IIOT(Factory Edge Gateway)
    PROC_IIOT -- Virtual MAC --> VMAC_IIOT(Virtual MAC Layer)
    VMAC_IIOT -- BW Allocator --> VPHY_IIOT1(Virtual PHY 1)
    VMAC_IIOT -- BW Allocator --> VPHY_IIOT2(Virtual PHY 2)
    VPHY_IIOT1 -- Controls --> ACT_MAC_IIOT1[Actual MAC 1 (Wi-Fi 6E)]
    VPHY_IIOT2 -- Controls --> ACT_MAC_IIOT2[Actual MAC 2 (5G mmWave URLLC)]
    ACT_MAC_IIOT1 -- Manages --> ACT_PHY_IIOT1[Actual PHY 1 (Wi-Fi 6E Transceiver)]
    ACT_MAC_IIOT2 -- Manages --> ACT_PHY_IIOT2[Actual PHY 2 (5G mmWave Transceiver)]
    ACT_PHY_IIOT1 -- Wireless Link (6 GHz) --> FACTORY_DEVICES[Robotic Arm, Sensors, AGVs]
    ACT_PHY_IIOT2 -- Wireless Link (mmWave) --> FACTORY_DEVICES
    ACT_PHY_IIOT1 -- Link Quality Feedback --> VPHY_IIOT1
    ACT_PHY_IIOT2 -- Link Quality Feedback --> VPHY_IIOT2
    VPHY_IIOT1 -- BW Avail --> VMAC_IIOT
    VPHY_IIOT2 -- BW Avail --> VMAC_IIOT
    VMAC_IIOT -- Adaptive Switching Logic --> PROC_IIOT

3.2. Derivative: Autonomous Vehicle Sensor Fusion Network

Enabling Description:
Within an autonomous vehicle, the wireless networking device manages the high-bandwidth data streams from various sensors (LIDAR, RADAR, cameras) for real-time perception and decision-making. The application interface aggregates raw sensor data. The first transceiver could be a high-speed V2X (Vehicle-to-Everything) communication module (e.g., based on IEEE 802.11bd), while the second is an internal short-range 60 GHz wireless link for inter-sensor communication or connection to a central processing unit. These transceivers operate in different frequency bands (e.g., 5.9 GHz for V2X, 60 GHz for internal). The processing interface, an on-board compute platform, evaluates bandwidth needs for real-time object detection and path planning. The virtual MAC and PHY layers dynamically allocate wireless bandwidth for sensor data transmission, prioritizing critical data streams (e.g., sudden obstacle detection). Adaptive switching between V2X for external communication and 60 GHz for internal data transfer, or between different channels within V2X, occurs seamlessly based on real-time traffic conditions, external network availability, and internal bus load, without requiring sensor modules to "disassociate" from their communication interfaces.

graph TD
    APP_AV[AV Sensor Fusion (LIDAR, RADAR, Camera)] --> PROC_AV(On-board Compute Platform)
    PROC_AV -- Virtual MAC (Sensor Data Prioritization) --> VMAC_AV(Virtual MAC Layer)
    VMAC_AV -- BW Allocator --> VPHY_AV1(Virtual PHY 1)
    VMAC_AV -- BW Allocator --> VPHY_AV2(Virtual PHY 2)
    VPHY_AV1 -- Controls --> ACT_MAC_AV1[Actual MAC 1 (V2X 802.11bd)]
    VPHY_AV2 -- Controls --> ACT_MAC_AV2[Actual MAC 2 (60 GHz WiGig)]
    ACT_MAC_AV1 -- Manages --> ACT_PHY_AV1[Actual PHY 1 (V2X Transceiver)]
    ACT_MAC_AV2 -- Manages --> ACT_PHY_AV2[Actual PHY 2 (60 GHz Transceiver)]
    ACT_PHY_AV1 -- External Wireless Link (5.9 GHz) --> EXTERNAL_ENTITIES[Other Vehicles, Infrastructure]
    ACT_PHY_AV2 -- Internal Wireless Link (60 GHz) --> SENSOR_MODULES[LIDAR, RADAR, Camera]
    ACT_PHY_AV1 -- Link Condition Feedback --> VPHY_AV1
    ACT_PHY_AV2 -- Internal Channel Load Feedback --> VPHY_AV2
    VPHY_AV1 -- BW Avail --> VMAC_AV
    VPHY_AV2 -- BW Avail --> VMAC_AV
    VMAC_AV -- Adaptive Routing/Switching --> PROC_AV

3.3. Derivative: Remote Surgery & Telemedicine Networks

Enabling Description:
For remote surgery and telemedicine, the wireless networking device manages high-bandwidth, low-latency video, haptic feedback, and patient vital sign data streams. The application interface includes surgical robot control, high-definition camera feeds, and real-time physiological monitors. The first transceiver could be a robust 5G mmWave private network module for the operating room, while the second is a highly secure Wi-Fi 6/7 module. These operate in distinct frequency bands (e.g., dedicated mmWave spectrum, unlicensed Wi-Fi bands). The processing interface, located at both the surgeon's console and the remote surgical robot, evaluates bandwidth and latency requirements. The virtual MAC and PHY layers dynamically allocate resources to ensure guaranteed quality of service (QoS) for critical control signals and haptic feedback, while optimizing video stream quality. Adaptive switching between the 5G mmWave and Wi-Fi links, or different channels within them, happens transparently based on observed link performance (e.g., latency spikes, throughput drops), preventing any perceived interruption during a critical procedure. The "remaining portion" ensures other medical devices can use adjacent frequencies.

graph TD
    APP_SURGERY[Remote Surgery App (Control, HD Video, Haptic)] --> PROC_SURG(Surgical Robot/Console Controller)
    PROC_SURG -- Virtual MAC (QoS-aware) --> VMAC_SURG(Virtual MAC Layer)
    VMAC_SURG -- Priority Allocator --> VPHY_SURG1(Virtual PHY 1)
    VMAC_SURG -- Priority Allocator --> VPHY_SURG2(Virtual PHY 2)
    VPHY_SURG1 -- Controls --> ACT_MAC_SURG1[Actual MAC 1 (5G mmWave Private)]
    VPHY_SURG2 -- Controls --> ACT_MAC_SURG2[Actual MAC 2 (Wi-Fi 7)]
    ACT_MAC_SURG1 -- Manages --> ACT_PHY_SURG1[Actual PHY 1 (5G mmWave Transceiver)]
    ACT_MAC_SURG2 -- Manages --> ACT_PHY_SURG2[Actual PHY 2 (Wi-Fi 7 Transceiver)]
    ACT_PHY_SURG1 -- Wireless Link (Dedicated mmWave) --> REMOTE_SITE[Remote Surgical Robot/Surgeon Console]
    ACT_PHY_SURG2 -- Wireless Link (Unlicensed Wi-Fi) --> REMOTE_SITE
    ACT_PHY_SURG1 -- Latency/Jitter/BER Feedback --> VPHY_SURG1
    ACT_PHY_SURG2 -- Throughput/Packet Loss Feedback --> VPHY_SURG2
    VPHY_SURG1 -- BW/QoS Avail --> VMAC_SURG
    VPHY_SURG2 -- BW/QoS Avail --> VMAC_SURG
    VMAC_SURG -- Critical Link Management --> PROC_SURG

4. Integration with Emerging Tech

4.1. Derivative: AI-Driven Predictive Bandwidth Allocation

Enabling Description:
The processing interface incorporates an AI/Machine Learning (ML) model that acts as an intelligent bandwidth allocator. This AI model continuously analyzes historical network traffic patterns, environmental factors (e.g., time of day, weather data from IoT sensors, interference sources), application usage profiles, and real-time feedback from the virtual PHY layers regarding transceiver health, congestion, and spectrum occupancy. The "feedback information regarding bandwidth availabilities" is enriched with predictive analytics from the AI model. Instead of merely reacting to current bandwidth availability, the AI model proactively predicts future bandwidth demands and potential link degradations across the different frequency bands of the first and second transceivers (e.g., predicting 5 GHz congestion based on usage patterns, or mmWave blockage due to predicted human movement). It then instructs the virtual MAC to preemptively reallocate resources or prepare a handover to an alternative transceiver/frequency band before a performance degradation occurs, optimizing for future predicted demand and reliability, all transparently to the application layer.

graph TD
    APP_INT[Application Interface] --> PROC_INT(Processing Interface)
    PROC_INT -- Virtual MAC --> VMAC(Virtual MAC Layer)
    VMAC -- BW Allocator (AI-driven) --> AI_ENGINE[AI/ML Predictive Engine]
    AI_ENGINE -- Feedback from VPHY & IoT --> HIST_DATA[Historical Data, Sensor Input]
    AI_ENGINE -- Predicted BW Needs --> VMAC
    VMAC -- Proactive Allocation --> VPHY1(Virtual PHY Layer 1)
    VMAC -- Proactive Allocation --> VPHY2(Virtual PHY Layer 2)
    VPHY1 -- Controls --> ACT_MAC1[Actual MAC Interface 1]
    VPHY2 -- Controls --> ACT_MAC2[Actual MAC Interface 2]
    ACT_MAC1 -- Manages --> ACT_PHY1[Actual PHY 1 (Transceiver)]
    ACT_MAC2 -- Manages --> ACT_PHY2[Actual PHY 2 (Transceiver)]
    ACT_PHY1 -- Wireless Link 1 (Freq 1) --> RECIPIENT(Recipient Device)
    ACT_PHY2 -- Wireless Link 2 (Freq 2) --> RECIPIENT
    ACT_PHY1 -- Real-time BW Avail --> VPHY1
    ACT_PHY2 -- Real-time BW Avail --> VPHY2
    VPHY1 -- BW Avail (current) --> AI_ENGINE
    VPHY2 -- BW Avail (current) --> AI_ENGINE

4.2. Derivative: IoT-Enhanced Environmental Contextual Awareness

Enabling Description:
The wireless networking device is augmented with a network of ambient IoT sensors (e.g., environmental sensors, presence detectors, RF spectrum monitors) that feed real-time contextual data into the processing interface. This data, alongside the standard bandwidth availability feedback from the virtual PHY layers, informs resource allocation. For instance, if IoT sensors detect high pedestrian traffic, the AI-driven system might prioritize a more robust, lower-frequency (e.g., Wi-Fi 5 GHz) link over a susceptible mmWave link. Conversely, if sensor data indicates a clear line-of-sight and low interference, a high-bandwidth mmWave link might be favored. The processing interface uses this enriched "environmental awareness" to make more informed, adaptive decisions regarding transceiver selection and bandwidth allocation, enhancing reliability and efficiency in dynamic environments. This builds on the "monitoring function" mentioned in the patent.

graph TD
    APP_INT[Application Interface] --> PROC_INT(Processing Interface)
    PROC_INT -- Virtual MAC --> VMAC(Virtual MAC Layer)
    VMAC -- BW Allocator --> VPHY1(Virtual PHY Layer 1)
    VMAC -- BW Allocator --> VPHY2(Virtual PHY Layer 2)
    VPHY1 -- Controls --> ACT_MAC1[Actual MAC Interface 1]
    VPHY2 -- Controls --> ACT_MAC2[Actual MAC Interface 2]
    ACT_MAC1 -- Manages --> ACT_PHY1[Actual PHY 1 (Transceiver)]
    ACT_MAC2 -- Manages --> ACT_PHY2[Actual PHY 2 (Transceiver)]
    ACT_PHY1 -- Wireless Link 1 (Freq 1) --> RECIPIENT(Recipient Device)
    ACT_PHY2 -- Wireless Link 2 (Freq 2) --> RECIPIENT
    ACT_PHY1 -- BW Avail Feedback --> VPHY1
    ACT_PHY2 -- BW Avail Feedback --> VPHY2
    VPHY1 -- BW Avail --> VMAC
    VPHY2 -- BW Avail --> VMAC
    IOT_SENSORS[IoT Environmental Sensors (e.g., Traffic, Weather, RF Monitor)] --> CONTEXT_DB[Contextual Data Store]
    CONTEXT_DB --> VMAC
    VMAC -- Context-aware Decision --> PROC_INT

4.3. Derivative: Blockchain for Secure & Transparent Resource Leasing

Enabling Description:
The wireless networking device operates in a shared spectrum environment where spectrum resources can be dynamically leased or traded. A blockchain network is integrated with the processing interface to manage and verify spectrum allocation rights and bandwidth availability claims. When the virtual MAC queries for "available bandwidth," it not only considers local measurements from the virtual PHY but also consults a distributed ledger on the blockchain. This ledger transparently records all spectrum leases, current usage, and guaranteed QoS agreements across multiple wireless networking devices in the area. The "remaining portion of bandwidth availabilities" can be auditable on-chain. When the processing interface needs to allocate a portion of a transceiver's bandwidth, or when an adaptive switch occurs, a transaction is recorded on the blockchain, updating the spectrum usage rights and ensuring fair, transparent, and immutable resource management, preventing malicious claims or resource hogging. This adds a layer of trust and accountability to the dynamic resource allocation.

graph TD
    APP_INT[Application Interface] --> PROC_INT(Processing Interface)
    PROC_INT -- Virtual MAC --> VMAC(Virtual MAC Layer)
    VMAC -- BW Allocator --> VPHY1(Virtual PHY Layer 1)
    VMAC -- BW Allocator --> VPHY2(Virtual PHY Layer 2)
    VPHY1 -- Controls --> ACT_MAC1[Actual MAC Interface 1]
    VPHY2 -- Controls --> ACT_MAC2[Actual MAC Interface 2]
    ACT_MAC1 -- Manages --> ACT_PHY1[Actual PHY 1 (Transceiver)]
    ACT_MAC2 -- Manages --> ACT_PHY2[Actual PHY 2 (Transceiver)]
    ACT_PHY1 -- Wireless Link 1 (Freq 1) --> RECIPIENT(Recipient Device)
    ACT_PHY2 -- Wireless Link 2 (Freq 2) --> RECIPIENT
    ACT_PHY1 -- Real-time BW Avail --> VPHY1
    ACT_PHY2 -- Real-time BW Avail --> VPHY2
    VPHY1 -- BW Avail (Local) --> VMAC
    VPHY2 -- BW Avail (Local) --> VMAC
    VMAC -- Spectrum Query/Update --> BLOCKCHAIN[Blockchain Network (Distributed Ledger)]
    BLOCKCHAIN -- Verified Spectrum Rights --> VMAC
    VMAC -- Transparent Allocation Decision --> PROC_INT

5. The "Inverse" or Failure Mode

5.1. Derivative: Graceful Degradation & Low-Power Redundancy Mode

Enabling Description:
In a "low-power" or "limited-functionality" mode, the wireless networking device is designed for graceful degradation under adverse conditions (e.g., power failure, severe interference, component malfunction). Instead of aiming for maximum bandwidth, the processing interface prioritizes minimal essential service continuity. When primary transceivers (first and second) experience degradation or failure, the processing interface intelligently switches to a dedicated, low-power, narrow-band transceiver (e.g., a LoRaWAN or NB-IoT module operating in an unlicensed sub-GHz band, distinct from the primary bands). The virtual MAC and PHY layers simplify the application's data stream (e.g., reducing video resolution, converting real-time data to periodic updates) to fit the limited bandwidth of the backup transceiver. This "inverse" mode ensures critical control messages or essential data remain transmittable, even if at significantly reduced performance, without requiring recipient disassociation from the core service. Bandwidth feedback includes power consumption metrics and fault indicators.

graph TD
    APP_INT[Application Interface] --> PROC_INT(Processing Interface)
    PROC_INT -- Virtual MAC (Degradation-aware) --> VMAC_GD(Virtual MAC Layer)
    VMAC_GD -- Bandwidth Allocator --> VPHY1_GD(Virtual PHY 1)
    VMAC_GD -- Bandwidth Allocator --> VPHY2_GD(Virtual PHY 2)
    VMAC_GD -- Degradation Logic --> VPHY_LP(Virtual PHY Low-Power)
    VPHY1_GD -- Controls --> ACT_MAC1[Actual MAC Interface 1 (Primary)]
    VPHY2_GD -- Controls --> ACT_MAC2[Actual MAC Interface 2 (Primary)]
    VPHY_LP -- Controls --> ACT_MAC_LP[Actual MAC Interface (Low-Power)]
    ACT_MAC1 -- Manages --> ACT_PHY1[Actual PHY 1 (High-BW Transceiver)]
    ACT_MAC2 -- Manages --> ACT_PHY2[Actual PHY 2 (High-BW Transceiver)]
    ACT_MAC_LP -- Manages --> ACT_PHY_LP[Actual PHY (LoRaWAN/NB-IoT Transceiver)]
    ACT_PHY1 -- Wireless Link 1 (Freq 1) --> RECIPIENT(Recipient Device)
    ACT_PHY2 -- Wireless Link 2 (Freq 2) --> RECIPIENT
    ACT_PHY_LP -- Low-Power Link (Sub-GHz) --> RECIPIENT
    ACT_PHY1 -- Fault/BW Feedback --> VPHY1_GD
    ACT_PHY2 -- Fault/BW Feedback --> VPHY2_GD
    VPHY1_GD -- BW/Fault Status --> VMAC_GD
    VPHY2_GD -- BW/Fault Status --> VMAC_GD
    VMAC_GD -- Fallback Decision --> VPHY_LP
    VPHY_LP -- Low-Power Mode Active --> PROC_INT

5.2. Derivative: Spectrum Harvesting in "Sleep" Mode

Enabling Description:
The wireless networking device includes a "sleep" or "idle" mode where it significantly reduces power consumption but remains passively vigilant. In this "inverse" operational state, the primary objective is not data transmission, but rather spectrum harvesting or environmental monitoring for future operational efficiency. The processing interface, in sleep mode, runs a minimal virtual MAC. This virtual MAC activates the virtual PHY layers in a low-power receive-only configuration across the different frequency bands of the first and second transceivers. These transceivers, specifically designed for low-power listening, passively monitor ambient RF noise, interference, and channel occupancy without active transmission. The feedback mechanism provides a detailed, real-time spectrum occupancy map. When the device exits sleep mode, the processing interface utilizes this pre-harvested spectrum intelligence for immediate, optimized bandwidth allocation and transceiver selection, dramatically reducing the time and energy required for channel assessment, without any pre-association or explicit recipient involvement during the sleep phase.

graph TD
    DEVICE_STATE[Device State]
    DEVICE_STATE -- Event: Sleep Mode --> SLEEP_MODE_ENTRY
    SLEEP_MODE_ENTRY -- Power Reduction --> PROC_INT_LP(Processing Interface - Low Power)
    PROC_INT_LP -- Minimal Virtual MAC --> VMAC_SLEEP(Virtual MAC Layer - Sleep)
    VMAC_SLEEP -- Activate Rx Only --> VPHY1_RX(Virtual PHY 1 - Rx Only)
    VMAC_SLEEP -- Activate Rx Only --> VPHY2_RX(Virtual PHY 2 - Rx Only)
    VPHY1_RX -- Controls --> ACT_MAC1_RX[Actual MAC 1 - Rx Only]
    VPHY2_RX -- Controls --> ACT_MAC2_RX[Actual MAC 2 - Rx Only]
    ACT_MAC1_RX -- Manages --> ACT_PHY1_RX[Actual PHY 1 (Low-Power Receiver)]
    ACT_MAC2_RX -- Manages --> ACT_PHY2_RX[Actual PHY 2 (Low-Power Receiver)]
    ACT_PHY1_RX -- Passive Listen (Freq 1) --> AMBIENT_RF[Ambient RF Environment]
    ACT_PHY2_RX -- Passive Listen (Freq 2) --> AMBIENT_RF
    ACT_PHY1_RX -- Spectrum Data --> VPHY1_RX
    ACT_PHY2_RX -- Spectrum Data --> VPHY2_RX
    VPHY1_RX -- Spectrum Map --> VMAC_SLEEP
    VPHY2_RX -- Spectrum Map --> VMAC_SLEEP
    VMAC_SLEEP -- Store Map --> SPECTRUM_DB[Spectrum Intelligence Database]
    DEVICE_STATE -- Event: Wake Up --> WAKE_MODE_ENTRY
    WAKE_MODE_ENTRY --> PROC_INT_FULL(Processing Interface - Full Power)
    PROC_INT_FULL -- Consult --> SPECTRUM_DB
    SPECTRUM_DB --> VMAC_FULL(Virtual MAC Layer - Full)
    VMAC_FULL -- Optimized Allocation --> VPHY1_FULL
    VMAC_FULL -- Optimized Allocation --> VPHY2_FULL

Combination Prior Art Scenarios

These scenarios describe how the core concepts of US11849337 can be combined with existing open-source standards to create obvious variations.

1. Combination with Open-Source Wi-Fi Drivers (e.g., ath10k, iwlwifi)

Scenario: The method of US11849337 (Claim 1), specifically the processing interface creating virtual MAC/PHY layers to dynamically manage and allocate bandwidth from multiple physical transceivers operating in different frequency bands, is combined with readily available open-source Wi-Fi driver architectures (e.g., ath10k for Qualcomm Atheros or iwlwifi for Intel Wi-Fi chipsets in Linux). These drivers already expose interfaces (e.g., mac80211 API) for managing multiple virtual interfaces (VIFs) on a single physical radio (STA, AP, mesh, monitor modes) and handling channel selection. An obvious extension would be to create virtual MAC/PHY layers above these existing driver frameworks, where the "actual MAC/PHY interfaces" of the patent correspond to the capabilities of different Wi-Fi radios managed by distinct instances of these open-source drivers. The processing interface would orchestrate these driver instances to leverage the aggregate bandwidth of multiple physical Wi-Fi radios (e.g., one on 2.4 GHz, one on 5 GHz, one on 6 GHz, all managed by mac80211) in a transparent manner for a high-bandwidth application, precisely as described by the patent's core claims.

2. Combination with O-RAN Alliance Specifications (e.g., O-DU/O-CU Split)

Scenario: The method of US11849337 (Claim 1) is applied within an Open Radio Access Network (O-RAN) architecture, specifically leveraging the functional splits defined by the O-RAN Alliance between the Distributed Unit (O-DU) and Centralized Unit (O-CU), and the disaggregation of the Radio Unit (O-RU). In this context, the "wireless networking device" could be a network function running on a general-purpose processor (GPP) within the O-DU. The "first and second wireless transceivers" are physical O-RUs operating in different frequency bands (e.g., one O-RU handling C-band 5G, another handling mmWave 5G). The "actual MAC and PHY layers" are implemented within the O-DU and O-RU according to O-RAN specifications (e.g., 3GPP MAC/PHY layers). The "processing interface" (virtual MAC/PHY layers of the patent) would reside in the O-DU, intelligently abstracting and aggregating the radio resources of multiple, disaggregated O-RUs. The virtual MAC would dynamically control which O-RU (transceiver) handles a given high-bandwidth user session based on real-time link quality feedback (e.g., from O-RAN's near-real-time RIC) to meet application QoS, without requiring the user equipment (recipient) to re-associate with a different O-RU at the standard 3GPP MAC/PHY layer. This directly implements the patent's concept of dynamic, transparent, multi-radio resource allocation in a 5G O-RAN context.

3. Combination with Linux Kernel's Network Stack and Netlink Interface

Scenario: The fundamental concept of US11849337 (Claim 1) is realized by leveraging the Linux kernel's existing network stack capabilities. The "actual MAC and PHY interfaces" correspond to standard network devices (e.g., wlan0, wlan1) each backed by a distinct physical Wi-Fi adapter operating in different frequency bands (e.g., 2.4 GHz and 5 GHz). The "processing interface" (with its virtual MAC and virtual PHY layers) is implemented as a kernel module or user-space daemon interacting with the kernel's network stack via Netlink sockets. This daemon actively monitors link statistics (e.g., iw dev wlan0 station dump output, /proc/net/dev for throughput) and performs dynamic interface bonding (e.g., using teamd or a custom bonding driver) or multi-path TCP (MPTCP) over these distinct wireless interfaces. The daemon acts as the virtual MAC/PHY, intelligently directing data streams over the interface with "most bandwidth available" or adaptively switching between them in a way that is transparent to the application layer running above the kernel's standard TCP/IP stack. This demonstrates how existing kernel mechanisms can be orchestrated to achieve the patent's goal of transparent, multi-transceiver bandwidth aggregation and adaptive switching.

Generated 5/19/2026, 12:49:35 AM

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