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AI & the Patent System
PATENTLY STRATEGIC
This presentation is for information purposes only and does not
constitute legal advice.
DAVID JACKREL & ASHLEY SLOAT, Ph.D. | FEBRUARY 28, 2024
Jackrel Consulting, Inc.
Patent Agent, Expert Witness and
Consulting Services for companies
and individual inventors.
AI for IP – Part I
Current Status
AI Ice Breaker
Think of a patent-
related prompt for an
AI image generator
and we will see what it
looks like!
https://www.bing.com
/images/create/
2
“a woman writing a patent about a snowboard watercolor”
AI (including LLMs) Are Disruptive
“ChatGPT may be coming for our jobs. Here are
the 10 roles that AI is most likely to replace.”
• Tech jobs (Coders, computer programmers,
software engineers, data analysts)
• Media jobs (advertising, content creation,
technical writing, journalism)
• Legal industry jobs (paralegals, legal
assistants)
• Market research analysts
• Teachers
• Finance jobs (Financial analysts, personal
financial advisors)
• Traders
• Graphic designers
• Accountants
• Customer service agents
3
https://www.businessinsider.com/chatgpt-
jobs-at-risk-replacement-artificial-
intelligence-ai-labor-trends-2023-02
“10 Industries AI Will Disrupt the Most by
2030”
• Healthcare
• Customer Service and Experience
• Banking, Financial Services, and Insurance
(BFSI)
• Logistics
• Retail
• Cybersecurity
• Transportation
• Marketing
• Defense
• Lifestyle
https://www.spiceworks.com/tech/art
ificial-intelligence/articles/industries-
ai-will-disrupt/
AI for Patents – Intro
• Part I – Current Status (Dave)
• AI IP Searching overview
• AI Proofreading
• AI Patent prosecution overview
• AI Drafting (rule-based)
• AI Drafting (LLM-based)
• Part II – Future & Implementation (Ashley)
4
AI is powerful, and is improving
all the time.
IP is complex and nuanced, and
the stakes are high.
AI clearly deserves attention
from IP practitioners, but
efficient and effective
implementation is not
straightforward.
Many AI Tools for Patents
• There are many AI tools for patents out there
• Minesoft
• BlackHills
• Dolcera
• Patent Bots
• PatSnap
• PatentPal
• Etc…
5
We will not discuss, endorse, or bash
any particular tools
AI IP Searching – Status
• search based on whole claims or an IDF (don’t have to ID key words)
• which can be good and bad…
• comprehensively review prior art at time of prosecution
• could help address major issue at USPTO of “QC’ being done in the back end”
• search tool that can travel back in time
• accurately determine historical PHOSITA knowledge
• DISCUSSION
• any stories (+ive or –ive) about using AI
search tools? (I have one if no one else does.)
6
AI is good at finding references
that Boolean searches may miss,
but the opposite is also true, so
best to use both AI + Boolean!
AI IP Proofreading – Status
• in use for years
• antecedent basis, word/phrase support, figure/element numbers/labels, etc.
(like spellcheck, or software debug tools, for patent professionals)
• summarize a document or contract, or compare differences between
documents
7
In use for many years.
Invaluable time-saving and
quality-improving tools!
AI Patent Prosecution – Status
• analyze cited prior art compared to currently rejected claims, and the current
spec
• suggest amendments to overcome prior art rejections
• compare claim amendments with previous claims for accuracy of markups
8
Great application of AI, and expect
there to be more tools in this area.
Comparing and contrasting a bounded
set of information.
AI Drafting (Rule-Based) – Status
• figure/element renumbering/relabeling
• generate summary, brief desc of figs, claim clauses
• method claims ↔ flowcharts figs ↔ DD
• system claims ↔ block diag figs (or element labels) ↔ DD
• generate blank claim charts (e.g., for FTOs)
• Rule-Based vs. ML
• When to utilize rule-based models?
• Danger of error
• Speedy outputs
• Etc.
• When to utilize machine learning models (e.g., LLMs)?
• Simple guidelines don’t apply
• Pace of change
• Etc.
9
Low error rate. Sometimes need
to change drafting style to
leverage the AI. Some limitations
compared to LLM-Based tools.
https://becominghuman.ai/the-key-differences-between-
rule-based-ai-and-machine-learning-8792e545e6
Rules-Based vs. Machine Learning
(ML) systems (e.g., LLMs)
ML systems are probabilistic, while
rule-based “AI” models are
deterministic
AI Drafting (LLM-Based) – Status
• generate title
• generate abstract
• generate background from prior art refs
• generate DD ↔ claims
• generate sections based on specifically engineered prompts
• generate an entire patent from a sentence
• Given how LLMs work (i.e., leveraging well-known, often written about, information), will the quality of a
patent (or OA response, Appeal Brief, etc.) ever be high enough without a lot of prompt engineering from a
Patent Professional?
• LLM-generated drafts can look like someone working outside of their technical field who is out of their depth
• AI-generated drafts, responses, and third-party observations can appear responsive, but fail to make any substantive points
or claim anything of substance
• Workflow – need to find the right fit
• Consistent IDFs, more likely to efficiently leverage the right tool(s)
• Mechanical arts with lots of figures vs. Biotech with DNA SEQs may leverage different tools
10
This is what most people think
when they hear AI, but there are
currently challenges with
(efficient) implementation!
https://ipkitten.blogspot.com/2023/10/use-
of-large-language-models-in-patent.html
Part II: Future of AI in IP
with Ashley Sloat
Patent System Issues
•Quality
•PTAB
•Shrinking pool of early career practitioners
Can access to AI change the trajectory?
Credit: https://www.ethannathaniel.com/
Quality - Searching
How do the
following
change?
• Prosecution
• Litigation
• Post-Grant
proceedings
AI as a PHOSITA - Unlock what
was known at any fixed point
in time?
Quality –
Searching & PTAB
• Investment required
• Implications have a
long tail
• Workflow changes
depending on user,
client, project
• Age-related
implications for
workflow changes
• How are AI drafted
docs received?
Increase Practitioner Output
Innovation Renaissance?
“The future has not been written. There is no fate
but what we make for ourselves.” – John Connor

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Patents and AI: Current Tools, Future Solutions

  • 1. AI & the Patent System PATENTLY STRATEGIC This presentation is for information purposes only and does not constitute legal advice. DAVID JACKREL & ASHLEY SLOAT, Ph.D. | FEBRUARY 28, 2024
  • 2. Jackrel Consulting, Inc. Patent Agent, Expert Witness and Consulting Services for companies and individual inventors. AI for IP – Part I Current Status
  • 3. AI Ice Breaker Think of a patent- related prompt for an AI image generator and we will see what it looks like! https://www.bing.com /images/create/ 2 “a woman writing a patent about a snowboard watercolor”
  • 4. AI (including LLMs) Are Disruptive “ChatGPT may be coming for our jobs. Here are the 10 roles that AI is most likely to replace.” • Tech jobs (Coders, computer programmers, software engineers, data analysts) • Media jobs (advertising, content creation, technical writing, journalism) • Legal industry jobs (paralegals, legal assistants) • Market research analysts • Teachers • Finance jobs (Financial analysts, personal financial advisors) • Traders • Graphic designers • Accountants • Customer service agents 3 https://www.businessinsider.com/chatgpt- jobs-at-risk-replacement-artificial- intelligence-ai-labor-trends-2023-02 “10 Industries AI Will Disrupt the Most by 2030” • Healthcare • Customer Service and Experience • Banking, Financial Services, and Insurance (BFSI) • Logistics • Retail • Cybersecurity • Transportation • Marketing • Defense • Lifestyle https://www.spiceworks.com/tech/art ificial-intelligence/articles/industries- ai-will-disrupt/
  • 5. AI for Patents – Intro • Part I – Current Status (Dave) • AI IP Searching overview • AI Proofreading • AI Patent prosecution overview • AI Drafting (rule-based) • AI Drafting (LLM-based) • Part II – Future & Implementation (Ashley) 4 AI is powerful, and is improving all the time. IP is complex and nuanced, and the stakes are high. AI clearly deserves attention from IP practitioners, but efficient and effective implementation is not straightforward.
  • 6. Many AI Tools for Patents • There are many AI tools for patents out there • Minesoft • BlackHills • Dolcera • Patent Bots • PatSnap • PatentPal • Etc… 5 We will not discuss, endorse, or bash any particular tools
  • 7. AI IP Searching – Status • search based on whole claims or an IDF (don’t have to ID key words) • which can be good and bad… • comprehensively review prior art at time of prosecution • could help address major issue at USPTO of “QC’ being done in the back end” • search tool that can travel back in time • accurately determine historical PHOSITA knowledge • DISCUSSION • any stories (+ive or –ive) about using AI search tools? (I have one if no one else does.) 6 AI is good at finding references that Boolean searches may miss, but the opposite is also true, so best to use both AI + Boolean!
  • 8. AI IP Proofreading – Status • in use for years • antecedent basis, word/phrase support, figure/element numbers/labels, etc. (like spellcheck, or software debug tools, for patent professionals) • summarize a document or contract, or compare differences between documents 7 In use for many years. Invaluable time-saving and quality-improving tools!
  • 9. AI Patent Prosecution – Status • analyze cited prior art compared to currently rejected claims, and the current spec • suggest amendments to overcome prior art rejections • compare claim amendments with previous claims for accuracy of markups 8 Great application of AI, and expect there to be more tools in this area. Comparing and contrasting a bounded set of information.
  • 10. AI Drafting (Rule-Based) – Status • figure/element renumbering/relabeling • generate summary, brief desc of figs, claim clauses • method claims ↔ flowcharts figs ↔ DD • system claims ↔ block diag figs (or element labels) ↔ DD • generate blank claim charts (e.g., for FTOs) • Rule-Based vs. ML • When to utilize rule-based models? • Danger of error • Speedy outputs • Etc. • When to utilize machine learning models (e.g., LLMs)? • Simple guidelines don’t apply • Pace of change • Etc. 9 Low error rate. Sometimes need to change drafting style to leverage the AI. Some limitations compared to LLM-Based tools. https://becominghuman.ai/the-key-differences-between- rule-based-ai-and-machine-learning-8792e545e6 Rules-Based vs. Machine Learning (ML) systems (e.g., LLMs) ML systems are probabilistic, while rule-based “AI” models are deterministic
  • 11. AI Drafting (LLM-Based) – Status • generate title • generate abstract • generate background from prior art refs • generate DD ↔ claims • generate sections based on specifically engineered prompts • generate an entire patent from a sentence • Given how LLMs work (i.e., leveraging well-known, often written about, information), will the quality of a patent (or OA response, Appeal Brief, etc.) ever be high enough without a lot of prompt engineering from a Patent Professional? • LLM-generated drafts can look like someone working outside of their technical field who is out of their depth • AI-generated drafts, responses, and third-party observations can appear responsive, but fail to make any substantive points or claim anything of substance • Workflow – need to find the right fit • Consistent IDFs, more likely to efficiently leverage the right tool(s) • Mechanical arts with lots of figures vs. Biotech with DNA SEQs may leverage different tools 10 This is what most people think when they hear AI, but there are currently challenges with (efficient) implementation! https://ipkitten.blogspot.com/2023/10/use- of-large-language-models-in-patent.html
  • 12. Part II: Future of AI in IP with Ashley Sloat
  • 13. Patent System Issues •Quality •PTAB •Shrinking pool of early career practitioners Can access to AI change the trajectory?
  • 14.
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  • 17. Quality - Searching How do the following change? • Prosecution • Litigation • Post-Grant proceedings
  • 18. AI as a PHOSITA - Unlock what was known at any fixed point in time? Quality – Searching & PTAB
  • 19. • Investment required • Implications have a long tail • Workflow changes depending on user, client, project • Age-related implications for workflow changes • How are AI drafted docs received? Increase Practitioner Output
  • 21. “The future has not been written. There is no fate but what we make for ourselves.” – John Connor