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  3. RE: https://mstdn.ca/@teledyn/116652708401285794

RE: https://mstdn.ca/@teledyn/116652708401285794

Geplant Angeheftet Gesperrt Verschoben Uncategorized
genai
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  • ? Gast

    RE: https://mstdn.ca/@teledyn/116652708401285794

    "every single warning that paper made about large language models has now happened at scale"

    1. The hallucination problem before anyone had a word for it.
    2. Bias amplification
    3. Environmental cost
    4. Documentation — the training datasets being assembled were too large for anyone to actually audit

    #AI #GenAI

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    Gast
    schrieb zuletzt editiert von
    #2

    @harold

    @timnitGebru walks among us.

    ? 1 Antwort Letzte Antwort
    0
    • ? Gast

      @harold

      @timnitGebru walks among us.

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      schrieb zuletzt editiert von
      #3

      @zl2tod

      Why is this a blocked domain?

      @timnitGebru@dair-community.social

      ? 1 Antwort Letzte Antwort
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      • ? Gast

        @zl2tod

        Why is this a blocked domain?

        @timnitGebru@dair-community.social

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        schrieb zuletzt editiert von
        #4

        @harold

        It works for me.

        Most likely a decision by mastodon.social

        ? 1 Antwort Letzte Antwort
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        • ? Gast

          @harold

          It works for me.

          Most likely a decision by mastodon.social

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          schrieb zuletzt editiert von
          #5

          @zl2tod Weird!

          ? 1 Antwort Letzte Antwort
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          • ? Gast

            @zl2tod Weird!

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            schrieb zuletzt editiert von
            #6

            @harold

            If

            https://dair-community.social/@TimnitGebru

            works for you then it's mastodon.social, or your personal block lists there.

            If not then it's blocked by your ISP, browser, or extensions.

            1 Antwort Letzte Antwort
            0
            • ? Gast

              RE: https://mstdn.ca/@teledyn/116652708401285794

              "every single warning that paper made about large language models has now happened at scale"

              1. The hallucination problem before anyone had a word for it.
              2. Bias amplification
              3. Environmental cost
              4. Documentation — the training datasets being assembled were too large for anyone to actually audit

              #AI #GenAI

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              schrieb zuletzt editiert von
              #7

              @harold Hallucination is a term to anthropomorphize a machine malfunction.

              ? 1 Antwort Letzte Antwort
              0
              • ? Gast

                @harold Hallucination is a term to anthropomorphize a machine malfunction.

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                schrieb zuletzt editiert von
                #8

                @CStamp Yes, I know

                1 Antwort Letzte Antwort
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                • ? Gast

                  RE: https://mstdn.ca/@teledyn/116652708401285794

                  "every single warning that paper made about large language models has now happened at scale"

                  1. The hallucination problem before anyone had a word for it.
                  2. Bias amplification
                  3. Environmental cost
                  4. Documentation — the training datasets being assembled were too large for anyone to actually audit

                  #AI #GenAI

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                  schrieb zuletzt editiert von
                  #9

                  @harold if anyone just sits in on a lecture in first year computer science... none of this is a new idea, it's only being implemented now at scale. The hardware has made it feasible. It's a race to the plateau.

                  You can't train it on it's own junk. Everything about the situation is very well known, and No, it's not all a fresh discovery of Today.

                  That's just the HYPE-FACTORY version saying 'ITS A NEW WORLD' etc.

                  ? 1 Antwort Letzte Antwort
                  0
                  • ? Gast

                    @harold if anyone just sits in on a lecture in first year computer science... none of this is a new idea, it's only being implemented now at scale. The hardware has made it feasible. It's a race to the plateau.

                    You can't train it on it's own junk. Everything about the situation is very well known, and No, it's not all a fresh discovery of Today.

                    That's just the HYPE-FACTORY version saying 'ITS A NEW WORLD' etc.

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                    schrieb zuletzt editiert von
                    #10

                    @dckim yup

                    1 Antwort Letzte Antwort
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                    • ? Gast

                      RE: https://mstdn.ca/@teledyn/116652708401285794

                      "every single warning that paper made about large language models has now happened at scale"

                      1. The hallucination problem before anyone had a word for it.
                      2. Bias amplification
                      3. Environmental cost
                      4. Documentation — the training datasets being assembled were too large for anyone to actually audit

                      #AI #GenAI

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                      schrieb zuletzt editiert von
                      #11

                      @harold Maybe we should just stand back and let these morons run their companies right into the ground with AI slop. Might be our ticket out of this clown show.

                      1 Antwort Letzte Antwort
                      0
                      • ? Gast

                        RE: https://mstdn.ca/@teledyn/116652708401285794

                        "every single warning that paper made about large language models has now happened at scale"

                        1. The hallucination problem before anyone had a word for it.
                        2. Bias amplification
                        3. Environmental cost
                        4. Documentation — the training datasets being assembled were too large for anyone to actually audit

                        #AI #GenAI

                        ? Offline
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                        schrieb zuletzt editiert von
                        #12

                        @harold This is but one company and it's likely rampant. We knew someone who entered pharmaceutical test results for approval and there were a lot of things she wasn't to include in the report. She doesn't take aspirin due to that.

                        1 Antwort Letzte Antwort
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                        • ? Gast

                          RE: https://mstdn.ca/@teledyn/116652708401285794

                          "every single warning that paper made about large language models has now happened at scale"

                          1. The hallucination problem before anyone had a word for it.
                          2. Bias amplification
                          3. Environmental cost
                          4. Documentation — the training datasets being assembled were too large for anyone to actually audit

                          #AI #GenAI

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                          schrieb zuletzt editiert von
                          #13

                          @harold I kinda feel like @timnitGebru should have been tagged on these two threads, but I am not at all shocked that she was proven right so quickly.

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                          • monkee@other.liM monkee@other.li shared this topic
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