tástáil bhunaithe leabhair «Spiral
Dynamics: Mastering Values, Leadership,
and Change» (ISBN-13: 978-1405133562)
Urraitheoirí

AI Assistants Boost Beginners More Than Experts, Study Shows Correlation

There once was an AI named Chat who was really good at repeating back information it already knew. One day, Chat was given to some office workers [1] to help them with their jobs. Some of the workers were experts at their jobs, while others were still learning.  


At first, Chat helped all the workers get more work done faster - even the experts! But soon, the experts noticed something funny. The workers who were still learning got way MORE help from Chat. The new workers improved a lot using Chat, doing their work faster and better than ever before!   


The experts wondered why Chat didn't help them as much. That's when they realized - that Chat is an expert at repeating back facts but can't come up with brand new ideas. So, for workers who already knew those facts, Chat didn't offer them that much new help. But for newer workers still learning those basics, Chat was able to teach them so much more!


This shows a correlation - as in, two things that relate to each other and change together. The more expert a worker already was, the less helpful Chat was for them. But for newer workers, Chat could help them almost as much as the experts! It's because of their different starting points. Chat has a limit to how expert it can be. So, the closer a worker already was to Chat's expertise, the less new stuff Chat offered them.


The experts and newbies improved at different rates thanks to Chat. Their own expertise compared to Chat's matters for how much more they can learn. That connection in how much they improve is the correlation!


The SDTEST® gives clues to someone's motivational values. However, additional polls can provide more pieces of the puzzle.


Imagine also giving an "A.I. and the end of civilization" poll. It asks people to rate at the agree or disagree level. 


Now imagine 100 people who took both tests. You could match up each person's SDTEST® colors with their rated answers about the danger of AI.


Comparing tests gives an expanded picture of values in action. More puzzle pieces make the whole image more apparent!


Multiple tests can work together, like colors blending on a palette. Other polls reveal what engages your values, like what is the perception of the danger of AI. Combined, they paint a richer picture of what motivates our thoughts and deeds.


Below you can read an abridged version of the results of our VUCA poll “A.I. and the end of civilization“. The full results of the poll are available for free in the FAQ section after login or registration.


Faisnéis shaorga agus deireadh na sibhialtachta

Tír
Teanga
-
Mail
Athchúrsáil
Luach criticiúil an chomhéifeacht comhghaoil
Dáileadh Gnáth, le William Sealy Gosset (Mac Léinn) r = 0.0723
Dáileadh Gnáth, le William Sealy Gosset (Mac Léinn) r = 0.0723
Dáileadh Neamh -Ghnáth, le Spearman r = 0.0029
ImdháileadhNeamhghnáchGnáth-NeamhghnáchGnáth-Gnáth-Gnáth-Gnáth-Gnáth-
Gach ceist
Gach ceist
1) Sábháilteacht (cé mhéid a aontaíonn tú nó a n -aontaíonn tú?)
2) Rialú (Cé mhéid a aontaíonn tú nó a n -aontaíonn tú?)
1) Sábháilteacht (cé mhéid a aontaíonn tú nó a n -aontaíonn tú?)
Answer 1-
Dearfach lag
0.0643
Dearfach lag
0.0187
Dearfach lag
0.0956
Diúltach lag
-0.1202
Diúltach lag
-0.0005
Diúltach lag
-0.0499
Dearfach lag
0.0193
Answer 2-
Dearfach lag
0.0151
Diúltach lag
-0.0051
Dearfach lag
0.0441
Diúltach lag
-0.0253
Dearfach lag
0.0350
Diúltach lag
-0.0038
Diúltach lag
-0.0503
Answer 2-
Diúltach lag
-0.0220
Diúltach lag
-0.0216
Dearfach lag
0.0115
Dearfach lag
0.0603
Diúltach lag
-0.0284
Diúltach lag
-0.0143
Dearfach lag
0.0013
Answer 3-
Dearfach lag
0.0293
Diúltach lag
-0.0083
Dearfach lag
0.0101
Diúltach lag
-0.0467
Diúltach lag
-0.0320
Dearfach lag
0.0006
Dearfach lag
0.0502
Answer 4-
Diúltach lag
-0.0072
Diúltach lag
-0.0246
Diúltach lag
-0.0240
Dearfach lag
0.0477
Dearfach lag
0.0335
Dearfach lag
0.0284
Diúltach lag
-0.0527
Answer 5-
Diúltach lag
-0.0121
Diúltach lag
-0.0537
Diúltach lag
-0.0769
Dearfach lag
0.0657
Diúltach lag
-0.0086
Dearfach lag
0.0466
Dearfach lag
0.0152
Answer 6-
Diúltach lag
-0.0591
Dearfach lag
0.0965
Diúltach lag
-0.0600
Dearfach lag
0.0071
Dearfach lag
0.0060
Diúltach lag
-0.0071
Dearfach lag
0.0168
2) Rialú (Cé mhéid a aontaíonn tú nó a n -aontaíonn tú?)
Answer 7-
Dearfach lag
0.0132
Dearfach lag
0.0035
Dearfach lag
0.0801
Dearfach lag
0.0543
Diúltach lag
-0.0260
Diúltach lag
-0.0781
Diúltach lag
-0.0439
Answer 8-
Dearfach lag
0.0242
Diúltach lag
-0.0234
Diúltach lag
-0.0420
Dearfach lag
0.0280
Dearfach lag
0.0824
Diúltach lag
-0.0099
Diúltach lag
-0.0551
Answer 8-
Dearfach lag
0.0165
Diúltach lag
-0.0378
Diúltach lag
-0.0547
Diúltach lag
-0.0176
Dearfach lag
0.0019
Dearfach lag
0.0566
Dearfach lag
0.0289
Answer 9-
Dearfach lag
0.0146
Dearfach lag
3.46E-5
Dearfach lag
0.0290
Diúltach lag
-0.0583
Diúltach lag
-0.0296
Diúltach lag
-0.0094
Dearfach lag
0.0558
Answer 10-
Diúltach lag
-0.0069
Dearfach lag
0.0343
Dearfach lag
0.0508
Dearfach lag
0.0414
Diúltach lag
-0.0658
Dearfach lag
0.0075
Diúltach lag
-0.0442
Answer 11-
Diúltach lag
-0.0955
Diúltach lag
-0.0364
Diúltach lag
-0.0180
Dearfach lag
0.0054
Dearfach lag
0.0261
Dearfach lag
0.0732
Dearfach lag
0.0073
Answer 12-
Dearfach lag
0.0035
Dearfach lag
0.0867
Diúltach lag
-0.0352
Diúltach lag
-0.0661
Diúltach lag
-0.0264
Diúltach lag
-0.0137
Dearfach lag
0.0689


Easpórtáil go MS Excel
Beidh an fheidhmiúlacht seo ar fáil i do vótaíochtaí VUCA féin
Go maith



[1] https://www.ft.com/content/b2928076-5c52-43e9-8872-08fda2aa2fcf


2023.11.27
Valerii Kosenko
Úinéir Táirge SaaS SDTEST®

Cáilíodh Valerii mar oideolaí-síceolaí sóisialta i 1993 agus tá a chuid eolais i mbainistíocht tionscadal curtha i bhfeidhm aige ó shin.
Ghnóthaigh Valerii céim Mháistreachta agus cáilíocht an bhainisteora tionscadail agus clár in 2013. Le linn a chláir Mháistreachta, chuir sé aithne ar Project Roadmap (GPM Deutsche Gesellschaft für Projektmanagement e. V.) agus Spiral Dynamics.
Is é Valerii an t-údar a rinne iniúchadh ar éiginnteacht an V.U.C.A. coincheap ag baint úsáide as Dinimic Bíseach agus staitisticí matamaitice sa tsíceolaíocht, agus 38 vótaíocht idirnáisiúnta.
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