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Marty R.



Joined: 12 Feb 2006
Posts: 5770
Location: Rochester, NY, USA
PostPosted: Tue Jul 25, 2017 11:12 pm    Post subject: Reply with quote
Ajò Dimonios wrote:
Hi JC

Perhaps the logic you described to me is also included in the following AIC, which first eliminates 1 in R5C456 and consequently also eliminates 5 in R8C7 and R6C4.

AIC
(1)R5C9=(1)R9C9-(1)R7C78=(1-5)R7C5=(5)R8C4-(5=1)R6C4=>-1R5C456=>R6C4=1;-5R6C4;R6C7=5 and -5R8C7=>solution stte.

Ciao a tutti
Paolo


Paolo,

Couldn't the chain be shortened by eliminating one more 1, as shown below, with the change to the term in red.

(1)R5C9=(1)R9C9-(1)R7C78=(1-5)R7C5=(5)R8C4-(5=1)R6C4=>-1R5C456,r6c7 stte
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Ajò Dimonios



Joined: 01 May 2017
Posts: 339
Location: Sassari Italy
PostPosted: Wed Jul 26, 2017 6:12 am    Post subject: Reply with quote
Hi Marty

Yes, of course Marty. I wrote this chain so long to point out that the AIC first eliminates 1 in R5C456 ,R6C7 and after 5 in R6C4 and R8C7 as JC indicated by another method that starts with the same constraints.

Ciao a tutti
Paolo
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