• WebDev Arena is a real-time AI coding competition where models go head-to-head in web development challenges, developed by LMArena. We always welcome contributions from the community. If you're interested in collaboration, we'd love to hear from you!

    https://web.lmarena.ai/
    #webdev_arena #bolt #lovable #replit #nocode #aiagent #coding_agent
    WebDev Arena is a real-time AI coding competition where models go head-to-head in web development challenges, developed by LMArena. We always welcome contributions from the community. If you're interested in collaboration, we'd love to hear from you! https://web.lmarena.ai/ #webdev_arena #bolt #lovable #replit #nocode #aiagent #coding_agent
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  • OpenAl's President, Greg Brockman, has shared a four-pillar framework to help users craft effective Al prompts. This approach aims to enhance the clarity and precision of Al-generated responses. The four pillars are:

    Define a Clear Goal: A specific objective ensures the Al focuses on relevant details. Instead of asking, “Tell me about cars,” a better prompt would be, “Compare electric and gasoline cars in terms of cost, maintenance, and environmental impact.”

    Specify the Return Format: Indicating the desired output format-such as bullet points, tables, or paragraphs-helps streamline responses. For instance, requesting a table for comparisons ensures organized and easy-to-read results.

    Adding Warnings: Incorporate instructions to enhance the accuracy of the response. For example, "List the top five safest car brands based on 2024 crash test ratings, excluding outdated information."

    Provide Context: Supplying background information or preferences personalizes the response. For example, clarifying that you need a fuel-efficient car for long highway drives can refine recommendations.

    By applying this framework, users can guide Al models to deliver more precise, structured, and relevant outputs.

    #AI #Automation #WebDev #DigitalMarketing #gregbrockman #openai #promptframework
    OpenAl's President, Greg Brockman, has shared a four-pillar framework to help users craft effective Al prompts. This approach aims to enhance the clarity and precision of Al-generated responses. The four pillars are: ✅Define a Clear Goal: A specific objective ensures the Al focuses on relevant details. Instead of asking, “Tell me about cars,” a better prompt would be, “Compare electric and gasoline cars in terms of cost, maintenance, and environmental impact.” ✅Specify the Return Format: Indicating the desired output format-such as bullet points, tables, or paragraphs-helps streamline responses. For instance, requesting a table for comparisons ensures organized and easy-to-read results. ✅Adding Warnings: Incorporate instructions to enhance the accuracy of the response. For example, "List the top five safest car brands based on 2024 crash test ratings, excluding outdated information." ✅Provide Context: Supplying background information or preferences personalizes the response. For example, clarifying that you need a fuel-efficient car for long highway drives can refine recommendations. By applying this framework, users can guide Al models to deliver more precise, structured, and relevant outputs. #AI #Automation #WebDev #DigitalMarketing #gregbrockman #openai #promptframework
    ·300 Views ·0 Reviews